SYSTEM AND METHOD FOR MANAGING AND MONITORING LIFTING SYSTEMS AND BUILDING FACILITIES
20190023529 ยท 2019-01-24
Inventors
Cpc classification
B66B5/0012
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66B5/00
PERFORMING OPERATIONS; TRANSPORTING
G01R11/00
PHYSICS
Abstract
It is provided interactive system and method for monitoring and reporting building facilities' life cycle, maintenance, and metrics audit, comprising: sensing modules for collecting operation data of the building facilities; processors configured to: receive and store the collected operation data; simulate a building information model (BIM) of the building using the collected operation data; construct a three-dimensional model of the building using the collected operation data; generate the building facilities' life cycle, maintenance, and metrics audit reports using the collected operation data; compute a present carbon dioxide emission of the building; and predict a future carbon dioxide emission of the building; communication modules, each electrically connected to one of the processors, for communicating with a control center; wherein the control center comprising networked user interfaces, for accessing and retrieving data from the processors and data tracking systems for automatic, intelligent, remote report re-test and retro-commissioning (RCx).
Claims
1. An interactive system for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit, comprising: one or more sensing modules for collecting operation data of the one or more building facilities; one or more processors configured to: receive and store the collected operation data; simulate a building information model (BIM) of the building using the collected operation data; construct a three-dimensional model of the building using the collected operation data; generate the one or more building facilities' life cycle, maintenance, and metrics audit reports using the collected operation data; compute a present carbon dioxide emission of the building; and predict a future carbon dioxide emission of the building; one or more communication modules, each electrically connected to one of the processors, for communicating with a control center; wherein the control center comprising one or more networked user interfaces, for accessing and retrieving data from the processors and one or more data tracking systems for automatic, intelligent, remote report re-test and retro-commissioning (RCx).
2. The interactive system of claim 1, wherein the sensing modules further comprise: one or more three-dimensional space measuring sensors installed inside and outside the building for collecting building geographic construction data.
3. The interactive system of claim 1, wherein the sensing modules further comprise one or more load sensors, each installed on a suspension means in at least one of the buildings' lifts for collecting lift operation data comprising cable tension profile and loading of the buildings' lift; and one or more noise sensors, each installed on a suspension means in at least one of the buildings' lifts for collecting noise data for determination of the load distribution evenness of the cables in the suspension means.
4. The interactive system of claim 1, wherein the sensing modules further comprise one or more elevator sensors, each installed on a suspension means in at least one of the buildings' lifts for collecting the operation data of the elevator, interacting with one or more users and combining media using Virtual Reality (VR), Augmented Reality (AR), Mixed Reality (MR), Substitutional Reality (SR) or Cinematic Reality (CR) technologies to enhance the current reality vision and information.
5. The interactive system of claim 1, wherein the sensing modules further comprise: one or more fire or smoke detectors, each installed in one of the one or more building lift shafts, for detecting presence of fire and transmitting a fire detection signal to the load control unit when the presence of fire is detected; a fire alarm system; wherein the fire alarm system operation comprises moving the lift cars to a safety floor when the fire detection signal is received and operating one or more of water pumps, drainage pumps and sewage pumps, fire pumps under the lift shafts; wherein the fire alarm system comprises: one or more ventilation ports located above the lift shafts, wherein the ventilation ports are caused to be opened when there is the presence of fire is detected.
6. The interactive system of claim 1, wherein the sensing modules further comprise: one or more fire sprinkler hose retractor buttons for collecting fire sprinkler hose retractor data and transmitting the data to the control center for integrating a fire extinguishing tracking data system.
7. The interactive system of claim 1, further comprising: an energy measuring device, in communication with the sensing modules, for measuring energy consumption of building equipment; wherein the processor is configured to receive energy consumption data of the building equipment from the energy measuring device; and simulate a energy consumption model of the building for developing a building equipment operation optimization plan.
8. The interactive system of claim 1, the sensing modules comprise: one or more air index sensors, each installed in one of the one or more building lift shafts for collecting air index data; and one or more microbial sensors for collecting and monitoring disease spread data of the elevator shaft and transmitting the disease spread data to control center for integrating a disease spread data tracking system.
9. The interactive system of claim 1, further comprise: one or more electrical transformers, each installed in an electrical power circuit of one of the building facilities for measuring electrical and/or voltage of the building facility's electricity consumption; and one or more electricity storage stations for storing electrical energy regenerated in one of the building facilities.
10. The interactive system of claim 9, further comprising one or more photovoltaic solar electricity generation units, comprising: one or more building windows and building glass wall coated with transparent photovoltaic material and electrically connected to the electricity storage station; a ventilation system comprising one or more ventilation ports located above at least one of the building lift shafts, wherein at least one of the ventilation ports is installed with one or more of the coated building windows which are caused to open for heat dissipation; excess electricity generated by the one or more photovoltaic solar electricity generation units is redistributed into an electricity distribution network; and the excess electricity and the present carbon dioxide emission are used in carbon trading computation.
11. The interactive system of claim 9, further comprising one or more solar thermal-energy exchange units comprising one or more building windows coated with transparent thermal absorbing material and connected to a thermal-electricity conversion layer which is a piezoelectric coating on the coated building window electrically connected to the electricity storage station; a ventilation system comprising one or more ventilation ports located above at least one of the building lift shafts; wherein at least one of the ventilation ports is installed with one or more of the coated building windows which are closed for energy generation from the lift shafts heat under normal condition and are caused to open for heat dissipation; excess electricity generated by the one or more solar thermal-energy exchange units is redistributed into an electricity distribution network; and the excess electricity and the present carbon dioxide emission are used in carbon trading computation.
12. The interactive system of claim 1, wherein the sensing modules further comprise: one or more garbage and kitchen energy storage conversion sensors for collecting and monitoring waste and kitchen energy storage data of the building and transmitting the data to the control center for integrating a garbage and kitchen waste energy storage tracking and data system; one or more regenerative energy sensors for collecting and monitoring regenerative energy data of the building, and transmitting the data to the control center for integrating a regenerative energy storage tracking and data system; one or more endothermic pressure layer conversion sensors for collecting and monitoring the endothermic pressure layer energy storage data of the building, and transmitting the data to the control center for integrating an endothermic pressure layer energy storage tracking and data system; one or more solar thermal absorption coating conversion sensors for collecting and monitoring the solar thermal absorption coating energy storage data of the building and transmitting the data to the control center for integrating a solar thermal absorption coating energy storage tracking and data system; one or more electroplating film thermal energy absorption coating conversion sensors for collecting and monitoring electroplating film thermal energy absorption coating energy storage data of the building and transmitting the data to the control center for integrating a electroplating film thermal energy coating energy storage tracking and data system; one or more anodized film thermal energy absorption coating conversion sensor for collecting and monitoring anodized film thermal energy absorption coating energy storage data of the building and transmitting the data to the control center for integrating a anodized film energy storage tracking and data system; one or more vacuum deposition thermal energy absorption coating conversion sensors for collecting and monitoring vacuum deposition thermal energy absorption coating energy storage data of the building and transmitting the data to the control center for integrating a vacuum deposition energy storage tracking and data system; and one or more solar selective absorption coating sensor for collecting and monitoring solar energy selective absorption coating energy storage data of the building and transmitting data to the control center for integrating a solar selective absorption coating energy storage tracking and data system.
13. The interactive system of claim 1, further comprising one or more cameras, installed in a lift shaft or a lift car in the lift shaft of the elevator, for capturing videos or images of the lift car or lift shaft; and an elevator controller for controlling the lift car; and an unintended car movement protection (UCMP) unit comprising a mechanical rope gripper; wherein the one or more processors are further configured to receive the captured videos or images of the lift car or lift shaft from the camera; process the received videos or images and detect, using artificial intelligence, abnormal incidents happening inside the lift car or lift shaft; and transmit an emergency call to the control center and an emergency instruction signal to the elevator controller or the UCMP unit when one or more abnormal incident is detected.
14. The interactive system of claim 13, wherein the abnormal incidents include: abnormal human body movements or gestures which are suspected to be caused by criminal actions or fatal accidents; unintended opening or close of lift door; unintended movement of the lift car; over-speeding of the movement of the lift car; breaking of cables in suspension means connected to the lift car; damaging of a main drive brake or existence of one or more obstacles in movement path of the lift car; and the emergency instruction signal sent to the elevator controller includes any one or a combination of: stopping the lift car immediately with the UCMP unit; moving the lift car to a safety floor; or activating an alarm in the lift car.
15. The interactive system of claim 1, further comprising a central device for accessing a cloud server by means of SSL, or HTML convergence, a centralized access platform (Masslink), and a connected network user interface to form an intelligent system.
16. A method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit, comprising: collecting, with one or more sensing modules, operation data of the one or more building facilities; receiving and storing, with one or more processors, the collected operation data; simulating, with the processers, a building information model (BIM) of the building and construct a three-dimensional model of the building using the collected operation data; generating, with the processers, the one or more building facilities' life cycle, maintenance, and metrics audit reports using the collected operation data; computing, with the processors, a present carbon dioxide emission of the building; predicting, with the processors, a future carbon dioxide emission of the building; communicating, with one or more communication modules respectively connected to one of the processors, for communicating with the processors and a control center; estimating the heat transfer between the building and external environments by calculating the overall thermal transfer value (OTTV) of surfaces of one or more exterior building walls and roofs including glass lift shafts; measuring, with one or more electrical transformers, electrical and/or voltage of the building facility's electricity consumption; storing, with one or more electricity storage stations, electrical energy regenerated in one of the building facilities; redistributing the regenereated electrical energy into an electricity distribution network; collecting lift operation data comprising cable tension profile and loading of at least one of the buildings' lifts with one or more load sensors; wherein each of the load sensors is installed on a suspension means in one of the buildings' lifts; and collecting noise data for determination of the load distribution evenness of the cables of at least one of the buildings' lifts with one or more noise sensors; wherein each of the noise sensors is installed on a suspension means in one of the buildings' lifts.
17. The method of claim 16, further comprising converting, with one or more photovoltaic solar electricity generation units, solar energy into electrical energy, or one or more solar thermal-energy exchange units, solar energy into electrical energy; wherein the photovoltaic solar electricity generation units comprise one or more building windows and building glass wall coated with transparent photovoltaic material and electrically connected to the electricity storage station; and wherein solar thermal-energy exchange units comprise one or more building windows coated with transparent thermal absorbing material and connected to a thermal-electricity conversion layer; wherein the thermal-electricity conversion layer is a piezoelectric coating on the coated building window electrically connected to the electricity storage station.
18. The method of claim 16, further comprising: capturing, with one or more cameras installed in a lift shaft or a lift car in the lift shaft of the elevator, videos or images of the lift car or lift shaft; measuring, with a processor, the lift movement speeds of the lift cars; predicting, with the processor, passenger flow; and; receiving, with the processor, the captured videos or images of the lift car or lift shaft from the camera; processing, with the processor, the received videos or images and detecting, using artificial intelligence, abnormal incidents happening inside the lift car or lift shaft; and transmitting an emergency call to a control center and an emergency instruction signal to a controller or an unintended car movement protection (UCMP) unit when one or more abnormal incident is detected; wherein the abnormal incidents include: abnormal human body movements or gestures which are suspected to be caused by criminal actions or fatal accidents; unintended opening or close of lift door; over-speeding of the movement of the lift car; unintended movement of the lift car; breaking of cables in suspension means connected to the lift car; or existence of one or more obstacles in movement path of the lift car; and the emergency instruction signal sent to the elevator controller includes any one or a combination of: stopping the lift car immediately with the UCMP unit; moving the lift car to a safety floor; and activating an alarm in the lift car.
19. An intelligent system for monitoring and controlling an elevator, comprises: one or more cameras, installed in a lift shaft or a lift car in the lift shaft of the elevator, for capturing videos or images of the lift car or lift shaft; a processor configured to receive the captured videos or images of the lift car or lift shaft from the camera; process the received videos or images; measure the lift movement speeds of the lift cars; predict passenger flow; and detect, using artificial intelligence, abnormal incidents happening inside the lift car or lift shaft; an elevator controller for controlling the lift car; and an unintended car movement protection (UCMP) unit comprising a mechanical rope gripper; wherein the processor is configured to transmit an emergency call to a control center and an emergency instruction signal to the controller or the UCMP unit when one or more abnormal incident is detected.
20. The intelligent system of claim 19, wherein the abnormal incidents include any one of: abnormal human body movements or gestures which are suspected to be caused by criminal actions or fatal accidents; unintended opening or close of lift door; over-speeding of the movement of the lift car; unintended movement of the lift car; breaking of cables in suspension means connected to the lift car; or existence of one or more obstacles in movement path of the lift car; and the emergency instruction signal sent to the elevator controller includes any one or a combination of: stopping the lift car immediately with the UCMP unit; moving the lift car to a safety floor; and activating an alarm in the lift car.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The problem to be solved of the invention will be apparent upon consideration of the following description given herein below and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present invention. In the drawings, wherein like reference delineate similar elements throughout the several views:
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF EMBODIMENTS
[0024] In some embodiments of the present invention, a system is provided for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit, comprising: one or more sensing modules for collecting operation data of the one or more building facilities; one or more processors configured to: receive and store the collected operation data; simulating a building information model (BIM) of the building using the collected operation data; constructing a three-dimensional model of the building; generate the one or more building facilities' life cycle, maintenance, and metrics audit reports using the collected operation data; compute a present carbon dioxide emission of the building; and predict a future carbon dioxide emission of the building; one or more communication modules, each electrically connected to one of the processors, for communicating with a control center; wherein the control center comprising one or more networked user interfaces, for accessing and retrieving data from the processors; and wherein the BIM provides a representation of physical and functional characteristics of the building to facilitate decision making on performance and operational improvements.
[0025] In some other embodiments of the present invention, the aforesaid sensing modules comprise one or more load sensors, each installed on a suspension means in at least one of the buildings' lifts for collecting lift operation data comprising cable tension profile and loading of the lift; one or more electrical transformers, each installed in an electrical power circuit of one of the building facilities for measuring electrical and/or voltage of the building facility's electricity consumption; one or more fire or smoke detectors, each installed in one of the one or more building lift shafts, for detecting presence of fire and transmitting a fire detection signal to the load control unit when the presence of fire is detected.
[0026] In some other embodiments of the present invention, the system for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise a fire alarm system comprising one or more ventilation ports located above the lift shafts, wherein the ventilation ports are caused to be opened when there is the presence of fire is detected; wherein the fire alarm system operation comprises moving the lifts to a safety floor, which would be the first floor where the main entrance is located, when the fire detection signal is received and operating one or more of water pumps, drainage pumps and sewage pumps, fire pumps under the lift shafts.
[0027] In some embodiments of the present invention, the system for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise: one or more electrical transformers, each installed in an electrical power circuit of one of the building facilities for measuring electrical and/or voltage of the building facility's electricity consumption; one or more electricity storage stations for storing electrical energy regenerated in one of the building facilities; one or more photovoltaic and heat-exchange generation units to generate and store electrical energy for further reducing energy consumption and effectively enhancing energy gain. In some existing buildings, large amount of energy is consumed. Under the chimney effect, the air inside the well channel raise after being heated up, diffused out of the building through the openings at the top of lift shafts. The system may further comprise openings at the top of lift shafts configured with windows (or blinds) and photovoltaic/heat-exchange generation units to facilitate exhausting of heat energy, ventilation and energy collection. For example, the photovoltaic generator may comprise a transparent energy conversion coatings on the surface of building window glass above lift shafts such that solar energy can be used for electricity generation in lift shafts. With solar-energy conversion coating, the lift shafts can become a storage station of electrical energy.
[0028] The above-said transparent energy conversion coatings may be applied on glass or plastic surface such that the originally heat absorptive window glasses or similar materials can be converted to electrical generator devices to generate electricity via solar energy and heat.
[0029] Through high pressure and high temperature processing, the transparent energy conversion coatings can be used as a heat absorbing layer in glass lift shafts. Applicable solar-energy heat absorbing coatings may be deposited by means of electrical plating, anodized plating or vacuum deposition technics. Such technologies have been widely adopted in energy storage and recycling, in the applications such as Drones, unmanned flying vehicles or remote database service etc.
[0030] In some other embodiments of the present invention, the system for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise one or more photovoltaic solar electricity generation units; wherein the photovoltaic solar electricity generation units comprise one or more building windows and building glass wall coated with transparent photovoltaic material and electrically connected to an electricity storage station; wherein aforesaid system further comprises a ventilation system comprising one or more ventilation ports located above at least one of the building lift shafts; wherein at least one of the ventilation ports is installed with one or more of the coated building windows; and wherein the coated building windows installed at the ventilation ports are caused to open for heat dissipation; and wherein excess electricity generated by the one or more photovoltaic solar electricity generation units is redistributed into an electricity distribution network; and wherein the excess electricity and the present carbon dioxide emission are used in carbon trading computation.
[0031] In some other embodiments of the present invention, the system for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise one or more solar thermal-energy exchange units comprising one or more building windows coated with transparent thermal absorbing material and connected to a thermal-electricity conversion layer; wherein the thermal-electricity conversion layer is a piezoelectric coating on the coated building window electrically connected to an electricity storage station; wherein the aforesaid system further comprises a ventilation system comprising one or more ventilation ports located above at least one of the building lift shafts; wherein at least one of the ventilation ports is installed with one or more of the coated building windows; wherein the coated building windows installed at the ventilation ports are closed for energy generation from the lift shafts heat under normal condition and are caused to open for heat dissipation; and wherein excess electricity generated by the one or more photovoltaic solar electricity generation units is redistributed into an electricity distribution network; and wherein the excess electricity and the present carbon dioxide emission are used in carbon trading computation.
[0032] The major materials for making solar-powered unmanned flying vehicles, such as soft magnetic material (e.g. Gd) or polyvinylidene difluoride (PVDF) piezoelectric coating, may be used in aforesaid solar thermal-energy exchange units to collect and store wasted heat energy. At smaller heat gradient, after acquiring mechanical vibration, such wasted heat energy may be converted to usable electrical energy. Also, the heat transfer efficiency would be higher because of the smaller heat gradient.
[0033] In some embodiments of the present invention, afore-said solar thermal-energy exchange units may be made of soft magnetic material such as Gadolinium (Gd) and hard magnetic material such as Neodymium (Nd). During operation, excess heat enters a heat diffuser, the damping-connected soft magnetic material is in contact with a heat storage device, and the solar-energy integration module absorbs heat energy generated by the heat source and converted the same to usable electrical energy. Said heat storage device is located close to the top of lift shaft and heat source, that is in connection with the ventilation ports. Being driven by the high and low electric potentials, magnetic oscillation occurs and cause phase change in the soft magnet from ferromagnetic state to paramagnetic state, and then from paramagnetic state to ferromagnetic state. Mechanical energy due to such piezoelectric effect is then converted to electrical energy. On the other hand, heat energy generated in the heat source is dissipated through the soft magnetic material after diffusing into the heat diffuser. Then, the soft magnet returns to the ferromagnetic state, the magnetic force is enhanced, under the action of hard magnet, the suspension arm is continuously mechanically deformed, the mechanical energy generated is then converted into electrical energy via piezoelectric effect.
[0034] In some embodiments of the present invention, each components of the system for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit are assigned with IP address for internet access, so as to realize comprehensive building monitoring, control system and facilitate operation of the fire alarm system through communication with water pumps, drainage pumps and sewage pumps, fire pumps under the lift shafts.
[0035] In some embodiments of the invention, the system for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may be established with a Intelligence Remote Storage and a Smart Network System via wired/wireless data transmission with various wiring connected with power supply and/or power line carrier. The Smart Network System realizes the transmission of information such as rope tensioning equalization, load weighting, irregularities in starting, stopping, etc., between the rope with related equipments and the Intelligence Remote Storage; and records the ratios between balanced load, overload, no-load, full-load, peak time, and similar data by interfacing with CCTV system, the lift power metering under loading and unloading conditions, riding quality by interfacing with power metering, monitors the storage of regenerative power used by different running mode of lifts interfacing with power supply and metering; protects the passenger and lift equipment from overload and over-traction by interfacing with power supply and metering; pre-checks the power to insure health operation when leaving each floor or landing by interfacing with power metering, audits equipment safety compliance; inspects critical parts by remote examination and measurement, maintenance and adjustment quality, visual inspection by interfacing with remote monitoring system; maximizes elevator operation by ignoring hall calls with a full cab or ignoring car calls with an empty car, scanning, analyzer and logger system by interfacing with Building Model System (BMS). LMAR may be operated in a private network that only permits particular users, that is associated with the change link to the TMMS together with the Power, Energy and Maintenance Cost Control (PEMCC). Further, the system can help to audit periodic maintenance plans, risk based model include age and time of last inspection; compare the lift operation audit report with the records of building management. One can audit the lift operation in real time by means of Cloud & Fog computing via language to expand the scope of analytics at sensor level; wherein Fog computing provides an additional decentralized layer (store, analyze and act) and Cloud works as a fast, accessible and flexible storage system. Further to SSD and in-memory DB, storage in relation to data directly saved in memory, mixed storage architecture (with hybrid databases) is cheap in terms of IO/sec.
[0036] In some embodiments of the present invention, a method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit is provided with a productive and cost-effective environment through optimization of the basic elements of the building facilities such as temperature, humidity, air flow, flue gas, Indoor Air Quality (IAQ), luminous emittance (in Lux), on the basis of open source Relational Database Management System (RDBMS), Total Cost of Ownership (TCO), with additional sensors, vision systems and IoT, IoS etc. The system may also record the rope replacement data regarding decidable maintenance, water leakage damage, adenosine triphosphate (ATP) testing, sound and heat testing which are independently separated with the elevator controller. Independent means for obtaining lift data are implemented for several systems, configured with different models or different brands, no matter whether the lift is an old version or new generation model. Under the international standard of rope and/or cable structure interface with respect to BIM, AR, Artificial Intelligence (AI), machine to machine (M2M) Network, virtual private network (VPN), there are several interfacing structures can be implemented, for example, a M2M network can be developed with the help of a VPN network. Simple data SIM cards are used for this purpose, which keeps the regular costs down.
[0037] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may comprise collecting, with one or more sensing modules, operation data of the one or more building facilities; receiving and storing, with one or more processors, the collected operation data; simulating, with the processers, a building information model (BIM) of the building using the collected operation data; generating, with the processers, the one or more building facilities' life cycle, maintenance, and metrics audit reports using the collected operation data; computing, with the processors, a present carbon dioxide emission of the building; predicting, with the processors, a future carbon dioxide emission of the building; and communicating, with one or more communication modules respectively connected to one of the processors, for communicating with the processors and a control center.
[0038] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include achieving energy efficiency improvement, on the basis of a building design model (BDM), by metering of lift power consumption as shown in
[0039] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise estimating the heat transfer between the building and external environments by calculating the overall thermal transfer value (OTTV) of surfaces of one or more exterior building walls and roofs including glass lift shafts; measuring, with one or more electrical transformers, electrical and/or voltage of the building facility's electricity consumption; storing, with one or more electricity storage stations, electrical energy regenerated in one of the building facilities; and redistributing the regenereated electrical energy into an electricity distribution network. In particular, the heat gain though glass window at a particular time, Q.sub.g, may be calculated by:
Q.sub.g=U.sub.f.Math.A.sub.f.Math.(T.sub.aoT.sub.ai),
where U.sub.f is the heat transfer index value of fenestration, A.sub.f is the area of fenestration, T.sub.ao is the outdoor air temperature and T.sub.ai is the indoor air temperature.
[0040] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise taking outdoor temperature, local conditions, requirements to indoor temperature and cost-effectiveness by users into consideration to improve the energy usage efficiency. General frameworks, regulated methods for calculating overall energy efficiency of the building, and bottom-line usage standard for energy efficiency are adopted in a supervisory control and data acquisition (SCADA) system for constructing new buildings or renovating existing buildings.
[0041] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise taking the Overall Thermal Transfer Value (OTTV) of the building wall surfaces of the same orientation, weather and sun data into consideration as the three major components for thermal gain. The OTTV for heat transfer via non-transparent surface and glass surface may be used to estimate overall thermal conductivity of the glass lift shaft (or exterior layer of the building). It can be noticed from the records of electricity usage of the glass lift shaft that the huge electricity usage is mainly caused by the use of cooling equipment.
[0042] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise taking different absorption of solar-energy by building walls of different orientations in account. Firstly, respective OTTV of building wall of each orientation is calculated, and then the weighted average of calculated values are obtained. Finally, the overall OTTV of all building walls are calculated.
[0043] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may include similar methods used for calculating the OTTV of building roofs. The calculation of OTTV of building roofs would be simpler as the roofs are usually without large area of glasses (except for some courtyard located in the middle of the building). Although OTTV is mainly used for evaluating overall thermal conductivity of exterior layer of the building. The formula obtained with three parameters: the equivalent temperature difference (TDeq), the temperature difference between exterior and interior designconditions (DT) and the solar factor for that orientation (SF) by large determine the accuracy in energy consumption evaluation by using OTTV as well as reflect what types of problems exist.
[0044] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise calculating the indexes for evaluating the overall thermal conductivity of glass lift shafts or exterior layer of the building, TD and SF, with heat conduction and solar radiation on the non-transparent surface as well as the glass surfaces. Potential energy saving can be calculated and applied in the fields of data-collecting networks, energy collection, deep learning and environmental technologies.
[0045] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further comprise evaluating the thermal gain of glass lift shaft from outdoor to indoor, through heat conduction of exterior layer of the building, including OTTV, heat dissipated from air conditioners, heat generated by lifts and control systems.
[0046] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include maximizing the effectiveness of power consumption. It is essential to identify as much as possible underlying operational problems of the building, the improvement and optimization opportunities during investigation and reliable enough for energy gap identification.
[0047] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include converting, with one or more photovoltaic solar electricity generation units, solar energy into electrical energy; wherein the photovoltaic solar electricity generation units comprise one or more building windows and building glass wall coated with transparent photovoltaic material and electrically connected to the electricity storage station.
[0048] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include converting, with one or more solar thermal-energy exchange units, solar energy into electrical energy; wherein solar thermal-energy exchange units comprise one or more building windows coated with transparent thermal absorbing material and connected to a thermal-electricity conversion layer; wherein the thermal-electricity conversion layer is a piezoelectric coating on the coated building window electrically connected to the electricity storage station.
[0049] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include maintaining an effective working environment which is run automatically and comprehensively, and flexible enough to adapt to future changes in the needs of the working environment.
[0050] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include computing and investigating the collected building documentation but not limit to the items listed out inthe present disclosure. Basic information is recorded during quality audit of maintenance work factors such as:
a) file no., b) building name, c) address, d) date of installation, e) no. of floors, f) floor served, g) lift manufacturer, h) maintenance company, i) lift type, j) lift number, k) location of m/c, l) rated load, m) machine model, n) disable lift, o) fireman lift p) door open size, p) door type, etc., q) c.p. model, s) no. of ropes, t) roping (1:1 to n:1), u) rope diameter, v) normal load q, w) car mass f, x) wire rope type, y) nominal strength, z) rope diameter, aa) number of bending, bb) speed, cc) diameter of traction sheave, dd) diameter of deflection sheave, ee) rope bending length, ff) the acceleration, and gg) other environment factors.
[0051] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include maximizing the building operation improvement, the data collection is carried out throughout the year so that the operation parameter trends in cool and hot seasons as well as intermediate seasons can be fully examined Underlying operational problems would occur for diagnostic monitoring and functional testing.
[0052] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include conducting initial equipment and devices checking, simple fixing of systems, such as calibration of sensors, so as to increase the effectiveness of the diagnostic monitoring and testing, and facilitate the understanding the root causes of operational issues.
[0053] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include performing energy modeling and simulation for the building based on building information.
[0054] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may be related to energy modeling which can: (a) evaluate accurately the detailed breakdown of energy use for the building; and (b) evaluate the amount of energy saving to help in selecting the identified opportunities.
[0055] In some embodiments of the present invention, the method for monitoring and reporting one or more building facilities' life cycle, maintenance, and metrics audit may further include developing plan to summarize all the findings, such as building current operating information; building annual energy use and its breakdown, in planning stage and plan the subsequent activities for optimizing the existing building facilities' life cycle.
[0056]
[0057]
[0058] In some embodiments of the invention, the system for monitoring operations of a lifting system further comprises a plurality of noise sensors for collecting noise data for determination of the load distribution evenness of the cables in the suspension means 1; wherein at least one of the load sensors 4 is integrated with a wired or wireless transmitters for transmitting the lift operation data to the load control unit 8; wherein at least one of the noise sensors is integrated with a wired or wireless transmitter for transmitting the noise data to the load control unit 8; and wherein the load control unit 8 is integrated with a wired or wireless transceivers for receiving lift operation data from the load sensors or noise sensors and transmitting control signals to the remote processors 120 for audit control.
[0059] In some embodiments of the present invention, the load sensor 4 may be various type of detect sensors with controller. However, similar sensor available in the market can also be used to executethe remote monitoring system accordingly. Data of lift (elevator) and/or escalator or similar equipment status will be collected by installed sensors, and transmitted to internet. The collected data of individual lift (elevator) will be stored in an internet database.
[0060]
[0061] In some embodiments of the present invention, the lifting system may further comprise connected devices, such as flexible cables under the lifts 5 and traction pulleys connected to the electric drive or motor 2 for dragging the ropes by fiction. As it can be easily appreciated that such configuration can greatly reduce the work load of the lifting machine.
[0062] Depending on the movement direction and loading conditions, the lifting system may have running modes, namely, HEAVY LOAD UP, LIGHT LOAD UP, HEAVY LOAD DOWN and LIGHT LOAD DOWN as illustrated in
[0063] Referring to
[0064] The aforesaid system may further include one or more metering devices 11, each interfaced with a load sensor 4; one or more electrical power supplies 7, being interlinked with a plurality of motor control panels 3 and the regenerative energy storage assemblies 12.
[0065] As shown in
[0066] In some other embodiments of the present invention, the system for monitoring operations of a lifting system may adopt generators made of permanent magnets and copper coils to regenerate electrical energy, recycle the regenerative energy for effective energy saving. Said system can be used in various types of transporting or similar facilities, to ensure energy consumption needs of the systems are met and allow excess energy to be further recycled to be new energy in carbon trading.
[0067] Referring to
[0068] In some other embodiments of the present invention, the optical intelligent systems 13 may be in the form as cameras in adapt with smart phones which enable user identification via the smart phones and provide a recording capability of still images and videos of users, objects, building, equipments and things. By providing a wireless network connection via internet to view and talk with a user and or an auditor via a phone from anywhere. Still image and/or video storing capabilities may also be provided to upgrade security to the next level. High definition (HD) quality display with more vivid image display may be enabled with LCD displays. The view port configuration and target can be selected. Next step is viewports navigation control and creation of 3D models via specific computer programs including, but not limited to, building models in 3D Max using AutoCAD plans. The following steps may include setting viewport layout sample modeling, material and maps, modeling in detail, lighting and camera via process zoom functions, perspective and orthographic viewport controls together in computing with metering devices 11 and regenerative energy storage assemblies 12.
[0069] In some other embodiments of the present invention, the system for monitoring operations of a lifting system may further comprise a plurality of door sensors, being installed in the lifts, for detecting whether doors of the lift cars are opened or closed; and a plurality of hoist brakes and braking means, wherein each of the hoist brake or braking means is urged to hold a lift car when the door sensor in the lift detects that the doors of the lift is opened.
[0070] In some other embodiments of the present invention, the system for monitoring operations of a lifting system further comprises a plurality of fire or smoke sensors, being installed in a plurality of lift shafts and building facilities for detecting the presence of a fire and transmitting the detected signals to the load control unit 8 when the presence of fire is detected; a fire alarm system; wherein the load control unit automatically initiates the fire alarm operation; and wherein the fire alarm system operation comprises moving the lift cars to a safety floor when the fire detection signal is received.
[0071] In some other embodiments of the present invention, the fire alarm system includes a plurality of ventilation ports being located above at least one of the lift shafts, wherein at least one of the ventilation ports is installed with a solar thermal-energy exchange window; wherein the solar thermal-energy exchange window is closed for energy generation under normal condition and caused to open for ventilation when the presence of fire is detected.
[0072] In some other embodiments of the present invention, the fire alarm system further includes a plurality of buttons, being located at stairs and/or corridors of the building; wherein the load control unit are triggered to initiate the operation of the fire alarm system; and wherein the fire alarm system operation comprises moving the lift cars to a safety floor, which would be the first floor where the main entrance is located, when one of the buttons is pressed.
[0073] In some other embodiments of the present invention, the system for monitoring operations of a lifting system may further include sensors or detectors such as electrical, magnetic, mechanical, optical, acoustic, haptical, mechanical, bioactuators, etc., integrated with controllers, making use of various of telecommunication technologies such as 3G/4G/5G Cellular, NB-IoT, LoRa, Sigfox, for generating data, detecting patterns, increasing forecastability, improving decision making and performing monitoring communication in various fields.
[0074] In some other embodiments of the present invention, the system for monitoring operations of a lifting system may further interface with electrical cable carrier communication networks such as PLC and poLine, use the exiting electrical cable as communication media to avoid investment in wire communication so as to reduce cost of the system and save energy.
[0075] In some other embodiments of the present invention, the system for monitoring operations of a lifting system may further connect with 3D Time of Flight (TOF) or other sensor connection means with similar functions, cope with clearance measurement equipments for traction elevator doors to design and do functional analysis on various systems.
[0076] In some embodiments of the present invention, the system for monitoring operations of a lifting system may be used for dynamic tolerance analysis modelling of the lift balance formats with no-load and full-load at up/down movements. At different running modes, via various type of detect sensors, such as electrical, magnetic, chemical mechanical, optical, acoustic, haptical, mechanical, bio-actuators, salt, acid etc.
[0077] Referring back to
[0078] In some embodiments of the present invention, the system for monitoring operations of a lifting system may also be applied with information and machine learning technologies to form a Smart Network interfacing with Smart Internet of Things (IoT), Smart Internet of Services (IoS), Smart Internet of Everythings (IoE), Smart Internet of Vehicles (IoV), big data & hadoop to processing data such as information of weather on air, forecast, humidity . . . etc., be provide by the Observatory. With the use of mobile devices, smart phone applications may be used to control data flow and where it is remotely stored, with collective intelligence, map reduction, eventual consistency, and predictive analytics. The system may further includes software programs for calculation of mechanical characteristics of ropes/cables, maintaining and protecting a central database. It shall be appreciated that there are several formula models for such purposes and various algorithms to handle different features. In one embodiment, an algorithm for an analytical study on fatigue failure of main ropes in lift build modeling of roping ratio 2:1 is used to obtain a new simultaneous means of non linear lift loading on the ropes during starting-up and acceleration. Regarding total tension and maximum pressure point where car cage is parked at lowest floor and counterweight is placed at upper level, well-established formula for calculation of the loading on the rope, Fc, is:
Fc=(Wcar+Q+Wrope+Wcable)(g+a)+Total jv/R0 [0079] Where, [0080] Wcar is the weight of the lift 5; [0081] Q is the rated loading (rated handle capacity) of the the lift 5; [0082] Wrope is the weight of rope; [0083] j is the rotational inertia of a below sheave calculation of detected rope [0084] Wcable is the weight of travelling cable; [0085] a stands for acceleration of the lift (rope); [0086] g stands for acceleration due to gravity; [0087] v is the rotational start up angle; [0088] R0 is the radius of traction sheave.
[0089] In some embodiments of the present invention, the lifts 5, the counterweights 6, the power supplies 7, and the load control unit 8 are basic elements needed to make a rope/cable or similar system. The system may further include load support and suspension means which may be rope and/or cable suspension (dead point) with elastomeric spring buffers or adjustable compression springs. Therefore, programmable measurement control can be installed to receive the signal from the rope sensors and convert them into useable data for measuring important parameters for ropes such as the relatively large axial load in comparison to bending and torsional loads which can easily viewed. Further, the ropes under bending and tensile stresses, force and torque related tensions can be audited and adjusted in real time according to the record and report. With similar force measurement means, the following parameters may be to obtained: a) tensile forces, b) number of bending cycles, c) corrected of bending cycles, d) number of working cycle, e) loading sequence bending length, f) load elements per load sequence. Further, there are five dimensioning limits for rope drives (with reference to Feyrer (2007)) such as: i) Rope working cycle, ii) Donandt force, iii) Rope safety factor, iv) discarding number of wire breaks, v) optimal rope diameter etc. Also, real time measurement of power at different running modes of lifts operation for dynamic tolerance analysis of the lift of different loading conditions (no-load, lightly-loaded or heavily-loaded) can be achieved via input of Sensor 1 . . . N as shown in
Vector K=Vector N(G1+G2)/2Q [0090] Where: [0091] K is the lift balance coefficient; [0092] N is the roping ratio; [0093] G1 is the weight difference between the lift 5 and the counterweight 6 less the maximum fiction coefficient of the system; [0094] G2 is the weight difference between the lift 5 and the counterweight 6 plus the maximum fiction coefficient of the system; [0095] Q is the rated loading (rated handle capacity) of the lift 5.
[0096] In some embodiments of the present invention, the system for monitoring operations of a lifting system may be further connected with wire and/or wireless communication system via cellular module of different class, dual band of a specific range, interface module, General-purpose input/output (GPIO), Internet protocol supported printer, plotter and/or similar equipments to assist responsible persons to engage lift maintenance audit, overview running modes, data analytics (include but not limit to descriptive analytics, diagnostic analytics, predictive analytics, prescriptive analytics); wherein similar function and several analysis can be applied to calculate, for example, simple bending and reverse bending, as rope bend, even drive, defection and break are major factors to quantify the lifetime of a rope and/or cable that is roved over a sheave for lift operation. The system may be used to process the number of bending cycles of rope as it is necessary to know the effective rope tensile force S as precisely as possible. If no more precise information is available, the effective rope tensile force S for lifting appliance can be evaluated from a) the load Q, b) the number of bearing wire ropes nT, c) the acceleration g due to gravity and d) the global rope force factors fs1, fs2, fs3 and fs4, friction from the load guidance (such as sliding guidance, rope efficiency, parallel bearing ropes, acceleration, deceleration, load speed), a well-established formula calculating the effective rope tensile force, S, is:
S=Qg/nTf.sub.s1f.sub.s2f.sub.s3f.sub.s4
[0097] In some embodiments of the present invention, a database interfacing with imaging system of still image and/or video storing capabilities is also provided to upgrade security to the next level. High Definition (HD) quality display and more vivid image display are enabled via LCD application. It enables user and/or auditor identification via phones and provides a recording capability of still images and video of any object and/or person for credible audit of lift operation, such as loaded and unloaded operation in real time. Various types of vision and audio sensors such as 3D cameras with a controller and integrated long distance wire/wireless data transmission device are implemented to form a multi/independent, remote reporting maintenance, audit and measure system which can easily check the lift shaft. The controller may include a control interface circuit comprising a general packet radio servie (GPRS) module, wifi, Bluetooth, 3G, 4G(LTE), 5G, Z-wave, NFC, IEEE 802,15.4 (Zigbee), Ethernet interface circuit and extending to LoRa, Sigfox, Narrowband (NB)-IoT, Internet Protocol (IP) Signaling Systems-Advanced Intelligent Networks (AIN) system etc.
[0098] In some embodiments of the present invention, it can also be provided with a map database, whereby a Cellular or Communication and Transmission System (CTS) is accessed by a local system. A map indicating geographic and other necessary information in locating the lift site is displayed. The map database is possible to be linked to a Total Maintenance Management System (TMMS). It may relate to but not limit to NosQL, languages, web oriented/JSON, Implicit scheme and support large amount of data, eventual consistency, open source etc. The system may further connected with 3D Time of Flight (TOF) or similar sensors to expand the scope of structural flexibility. It may also adopt a risk based model for fault call record, breakdown check, car landing check, door clearance and leveling measurement, rope condition check by accessing the lift operation, guide shoe situation, guide rail situation, traction sheave situation, vibration. The method is communicate from the rope suspension and input details such as Normal load Q, Car mass F, Wire rope type, Nominal strength R, rope diameter d, number of bending N, rope bending length L, Diameter of traction SheaveD.sub.t, Diameter of deflection Sheave D.sub.r, Speed V for predictive analytics several formula models can apply, one of them such as obtain Simple Bending and Combined Fluctuating Tension and Bending With the constant tensile forces S and the number of simple bending cycles and the number of combined fluctuating tension and simple bending cycles for embedment the Claims as calculation as:
lg N=b0+(b1+b3lg D/d)(lg S/d.sup.20.4lg R0/1770)+b2lg D/d+lg fd+lg fC
[0099] In some embodiments of the present invention, a method for monitoring operations of a lifting system is provided for conducting diagnostic monitoring of lift and escalator installation and logging lift power during peak hours and non-peak hours for trending analysis.
[0100] In some embodiments of the present invention, the method for monitoring operations of a lifting system may include analyzing the collected trend logged data, measuring lift power consumption during a designed specific period. The ratio of lift power consumption during a designed specific period is plotted. This ratio is lowered down when it is found to be relatively high so as to save energy. The regenerating power is stored via a series of store battery banks and/or capacitors.
[0101] In some embodiments of the present invention, the method for monitoring operations of a lifting system may further include minimizing wear due to uneven setting of the rope tensions of hoisting rope in order to increase safety factor and limit wear and tear, making use of systems held in elevator installation with various load distributions in the rope set during the ride which can be adjusted optimally.
[0102] In some embodiments of the present invention, the method for monitoring operations of a lifting system may further include investigating of incidents such as uncontrolled movement, sudden falling or similar complaints via remote auditing. Regarding running environment and quality, parameters such as stress, tension, suspension, vibration, frequency, force equalization etc. are considered in calculation of the lifetime of ropes or cables, such thatthe ropes or cable which are always have a limited lifetime can be replaced well before their failure, and related elements based on all related rope and/or cable data. With regards to lift equipment's other parts such as groove, sheave, pulley, gear and shaft, which resist relatively large axial load in comparison to bending and torsional loads, the collecting of data can be carried out from the lift to overcome the friction of the first starting due to the mechanical efficiency of the shaft, pulley, guide shoes, etc., (force factors f.sub.s1 . . . f.sub.s4), and friction from the load guidance. The LMAR may also credibly predict the lifetime affected by the friction and the performance of the lift operation.
[0103] In some embodiments of the present invention, the method for monitoring operations of a lifting system may further include measuring how power consumption is affected, besides the load, by the unbalanced load to move, regeneration of electrical power, and storage and reuse of the regenerative power, such that energy management entities can monitor, measure, and control their electrical building loads. The method may further provide metering, sub metering, and monitoring functions that allow facility and building managers to gather data to make more informed decisions about energy activities across their sites according to (a) energy management system (ISO 50001), (b) environmental management system (ISO 14001), (c) information security management system (ISO/IEC 27001). The methodmay also used in stimulating technological innovation and economic growth with the flexibility required to exchange CO.sub.2 cap-and-trade (C&T) emissions trading program in a wholesale electricity prices market-based approach for controlling pollution by providing economic incentives for reduction of emissions, achieving lowest cost to society, notably for mitigating climate change.
[0104] In some embodiments of the present invention, the method for monitoring operations of a lifting system may further include auditing the sum of basic elements defining the shaft efficiency, measuring the quality of lift installation and predicting the power dissipated through the aerodynamic resistance (proportional to the square of the rated speed) produced during the lift operation, based on the fact that the higher the shaft efficiency is, the lower the energy that is dissipated due to friction.
[0105] The system and method for monitoring operations of a lifting system may be integrated with technologies of Virtual Reality (VR), Augmented Reality (AR), Mixed Reality (MR), Substitutional Reality (SR) or Cinematic Reality (CR) to improve and minimize the effect of errors, labour & safety problem associated with existing lifting systems which require manual monitoring and inspection. VR, AR, MR or SR based mobile device demonstration system for machinery may be applied in procedural tasks in diagnostic and maintenance. It is a live direct or indirect view of a physical, real-world environment whose elements are augmented (or supplemented) by computer-generated sensory input such as sound, video, graphics or GPS data. The technology is available to users by related tool, which give users valuable and additional information of equipment and processes, guide them in performing operational tasks and allow them to work hand-free, which is economical to get an maintenance and audit report quickly and safely, mitigate risks of working in lifts.
[0106] Whereby co-operation with independent mechanical rope gripper be used as stopping element of untended car movement protection (UCMP). Further, focusing on existing Lift E-platform reporting systems also cannot provide data analysis process, deep learning, 24 hour-7 day data mining Whereas by further applying and integrating (BIM) Building information modeling system, a digital representation of physical and functional characteristics of a facility can be achieved. Knowledge, resource and information about a facility forming a reliable basis for making decisions, during its life-cycle from conception to demolition, in Enterprise Resource Planning (ERP), Retro-commissioning (RCx), Energy Audit (EAC). Therefore, cost-effective systematic process is provided to periodically check an existing building's performance and identify operational improvements for save energy and lower costs.
[0107] In some embodiments, the sensing modules of the system may further comprise a three-dimensional space measuring sensor installed inside and outside the building for collecting building geographic construction data.
[0108] In some embodiments, the sensing modules of the system may further comprise one or more fire sprinkler hose retractor button for collecting fire sprinkler hose retractor data and transmitting the data to the control center for integrating a fire extinguishing tracking data system.
[0109] In some embodiments, the sensing modules of the system may further comprise an energy measuring device, in communication with the sensing modules, for measuring energy consumption of building equipment; wherein the processor is configured to receive energy consumption data of the building equipment from the energy measuring device; and simulate a energy consumption model of the building for developing a building equipment operation optimization plan.
[0110] In some embodiments, the sensing modules of the system may further comprise one or more air index sensors, each installed in one of the one or more building lift shafts for collecting air index data; and one or more microbial sensors for collecting and monitoring disease spread data of the elevator shaft and transmitting the disease spread data to control center for integrating a disease spread data tracking system.
[0111] In some embodiments, the sensing modules of the system may further comprise one or more garbage and kitchen energy storage conversion sensors for collecting and monitoring waste and kitchen energy storage data of the building and transmitting the data to the control center for integrating a garbage and kitchen waste energy storage tracking and data system.
[0112] In some embodiments, the sensing modules of the system may further comprise one or more regenerative energy sensors for collecting and monitoring regenerative energy data of the building, and transmitting the data to the control center for integrating a regenerative energy storage tracking and data system.
[0113] In some embodiments, the sensing modules of the system may further comprise one or more regenerative energy sensors for collecting and monitoring regenerative energy data of the building, and transmitting the data to the control center for integrating a regenerative energy storage tracking and data system.
[0114] In some embodiments, the sensing modules of the system may further comprise one or more endothermic pressure layer conversion sensors for collecting and monitoring the endothermic pressure layer energy storage data of the building, and transmitting the data to the control center for integrating an endothermic pressure layer energy storage tracking and data system.
[0115] In some embodiments, the sensing modules of the system may further comprise one or more solar thermal absorption coating conversion sensors for collecting and monitoring the solar thermal absorption coating energy storage data of the building and transmitting the data to the control center for integrating a solar thermal absorption coating energy storage tracking and data system.
[0116] In some embodiments, the sensing modules of the system may further comprise one or more electroplating film thermal energy absorption coating conversion sensors for collecting and monitoring electroplating film thermal energy absorption coating energy storage data of the building and transmitting the data to the control center for integrating a electroplating film thermal energy coating energy storage tracking and data system.
[0117] In some embodiments, the sensing modules of the system may further comprise one or more anodized film thermal energy absorption coating conversion sensor for collecting and monitoring anodized film thermal energy absorption coating energy storage data of the building and transmitting the data to the control center for integrating a anodized film energy storage tracking and data system.
[0118] In some embodiments, the sensing modules of the system may further comprise one or more vacuum deposition thermal energy absorption coating conversion sensors for collecting and monitoring vacuum deposition thermal energy absorption coating energy storage data of the building and transmitting the data to the control center for integrating a vacuum deposition energy storage tracking and data system.
[0119] In some embodiments, the sensing modules of the system may further comprise one or more solar selective absorption coating sensor for collecting and monitoring solar energy selective absorption coating energy storage data of the building and transmitting data to the control center for integrating a solar selective absorption coating energy storage tracking and data system.
[0120] In some embodiments, the system may further comprise a central device for accessing a cloud server by means of SSL, or HTML convergence, a centralized access platform (Masslink), and a connected network user interface to form an intelligent system.
[0121] In some embodiments, the system may further comprise: one or more cameras, installed in a lift shaft or a lift car in the lift shaft of the elevator, for capturing videos or images of the lift car or lift shaft; an elevator controller for controlling the lift car; and an unintended car movement protection (UCMP) unit comprising a mechanical rope gripper wherein the one or more processors are further configured to receive the captured videos or images of the lift car or lift shaft from the camera; process the received videos or images and detect, using artificial intelligence, abnormal incidents happening inside the lift car or lift shaft; and transmit an emergency call to the control center and an emergency instruction signal to the elevator controller or the UCMP unit when one or more abnormal incident is detected.
[0122] The abnormal incidents may include: abnormal human body movements or gestures which are suspected to be caused by criminal actions or fatal accidents; unintended opening or close of lift door; over-speeding of the movement of the lift car; unintended movement of the lift car; breaking of cables in suspension means connected to the lift car; and existence of one or more obstacles in movement path of the lift car; and the emergency instruction signal sent to the elevator controller may include any one or a combination of: stopping the lift car immediately with the UCMP unit; moving the lift car to a safety floor; and activating an alarm in the lift car.
[0123] The embodiments disclosed herein may be implemented using general purpose or specialized computing devices, mobile communication devices, computer processors, or electronic circuitries including but not limited to digital signal processors (DSP), application specific integrated circuits (ASIC), field programmable gate arrays (FPGA), and other programmable logic devices configured or programmed according to the teachings of the present disclosure. Computer instructions or software codes running in the general purpose or specialized computing devices, mobile communication devices, computer processors, or programmable logic devices can readily be prepared by practitioners skilled in the software or electronic art based on the teachings of the present disclosure.
[0124] In some embodiments, the present invention includes computer storage media having computer instructions or software codes stored therein which can be used to program computers or microprocessors to perform any of the processes of the present invention. The storage media can include, but are not limited to, floppy disks, optical discs, Blu-ray Disc, DVD, CD-ROMs, and magneto-optical disks, ROMs, RAMs, flash memory devices, or any type of media or devices suitable for storing instructions, codes, and/or data.
[0125] The foregoing description of the present invention has been provided for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Many modifications and variations will be apparent to the practitioner skilled in the art.
[0126] The embodiments were chosen and described in order to best explain the principles of the invention and its practical application, thereby enabling others skilled in the art to understand the invention for various embodiments and with various modifications that are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the following claims and their equivalence.