Systems, apparatus and methods for testing and predicting the performance of concrete mixtures
09766221 · 2017-09-19
Assignee
Inventors
Cpc classification
International classification
G01N25/20
PHYSICS
Abstract
A mobile calorimeter includes a container comprising one or more walls defining a cavity. The container is adapted to hold a concrete mixture within the cavity. The mobile calorimeter also includes one or more heat flow sensors adapted to detect a heat flow generated by the concrete mixture. The heat flow sensors may include a thermoelectric device, a Peltier plate, or a macro fiber composite (MFC) sensor. The one or more heat flow sensors may be attached to the one or more walls, or may be embedded within the one or more walls. Data relating to a heat flow is obtained by the heat flow sensors, and is used to generate a prediction of a characteristic or performance of the concrete mixture.
Claims
1. A measurement system comprising: a container comprising: a first cylindrical wall having a first radius, the first cylindrical wall having an exterior surface; a second cylindrical wall having a second radius greater than the first radius; a first end portion having an interior surface, the first end portion being solid with no opening that passes therethrough; and a second end portion, the second end portion being solid with no opening that passes therethrough; wherein a first volume defined by the first cylindrical wall, the first end portion and the second end portion is adapted to hold one of a standard 4×8-inch concrete test cylinder and a standard 6×12-inch concrete test cylinder; wherein a second volume between the first and second cylindrical walls comprises a quantity of air; a temperature sensor disposed on the interior surface of the first end portion, wherein the temperature sensor protrudes from the interior surface and does not penetrate the first end portion, the temperature sensor being adapted to: penetrate an exposed surface of the concrete mixture in the cylinder; and obtain a measurement of temperature of the concrete mixture; and one or more heat flow sensors disposed on the exterior surface of the first cylindrical wall, in the second volume between the first and second walls, wherein each of the one or more heat flow sensors is separated from the concrete mixture disposed in the first volume by the first wall, each of the heat flow sensors adapted to generate data relating to a heat flow generated by the concrete mixture.
2. The measurement system of claim 1, wherein the one or more heat flow sensors include one of a thermoelectric device, a Peltier plate, and a macro fiber composite (MFC) sensor.
3. The measurement system of claim 1, further comprising a radio frequency identification tag.
4. The measurement system of claim 1, further comprising one of a humidity sensor, a motion sensor, and a GPS-based location sensor.
5. A concrete testing system comprising: the measurement system of claim 1; a network; and a processor communicatively coupled to the measurement system via the network, the processor being adapted to: receive, via the network, the data from the one or more heat flow sensors; and generate a prediction of a characteristic of the concrete mixture, based on the data.
6. A measuring device comprising: a first wall; a top portion, the top portion being solid with no opening that passes therethrough; and a bottom portion, the bottom portion being solid with no opening that passes therethrough; wherein the first wall, the top portion, and the second portion enclose a first volume adapted to hold one of a standard 4×8-inch concrete test cylinder and a standard 6×12-inch concrete test cylinder; the measuring device further comprising: a second wall enclosing the first wall, wherein the first and second walls define a second volume; and a heat flow sensor disposed in the second volume wherein the heat flow sensor is separated from the first volume by the first wall.
7. The measuring device of claim 6, wherein: the first wall comprises an interior surface and an exterior surface; the heat flow sensor is disposed on the exterior surface.
8. The measuring device of claim 6, wherein the first volume is adapted to hold one of a standard 4×8-inch concrete test cylinder and a standard 6×12-inch concrete test cylinder.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(11) In accordance with an embodiment, a mobile calorimeter is provided. The mobile calorimeter includes a container comprising one or more walls defining a cavity, the container adapted to hold a quantity of concrete within the cavity, and one or more heat flow sensors. Each of the heat flow sensors may be, for example, a thermoelectric device, such as a Peltier plate, adapted to generate a voltage in response to a heat flow. Each heat flow sensor may be a macro fiber composite (MFC) sensor adapted to detect a heat flow.
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(13) In other embodiments, a mobile calorimeter may be any container having a plurality of walls defining a cavity capable of holding a quantity of concrete. Thus, a mobile calorimeter may have other shapes. For example, a mobile calorimeter may be a cube or a rectangular shaped container.
(14) Mobile calorimeter 100 includes one or more heat flow sensors 108. In the illustrative embodiment, heat flow sensors 108 are attached to the walls of mobile calorimeter 100. In another embodiment, heat flow sensors 108 are embedded within the walls of mobile calorimeter 100. Heat flow sensors 108 are adapted to generate a measure of heat flow. Each heat flow sensor 108 may be a thermoelectric device such as a Peltier plate, adapted to generate a voltage in response to a heat flow. Each heat flow sensor 108 may be a macro fiber composite (MFC) sensor adapted to detect a heat flow.
(15) Mobile calorimeter 100 may also include a transmitter, a receiver, or a transceiver for transmitting and/or receiving data, or otherwise have communication capability. For example, a heat flow sensor 108 may include a transmitter, receiver, or transceiver. Mobile calorimeter 100 may transmit data wirelessly, for example.
(16) One or more mobile calorimeters may be used to gather information concerning various batches of concrete used in a construction project.
(17) Each mobile calorimeter 100-A, 100-B, 100-C includes one or more heat flow sensors 108-A, 108-B, 108-C. Each heat flow sensor 108 may include a thermoelectric device, an MFC sensor, etc., adapted to detect and measure heat flow. Each mobile calorimeter 100-A, 100-B, 100-C also includes one or more sensors 109, which may include other types of sensors such as GPS-based location detectors, motion detectors, humidity sensors, temperature sensors, etc. Mobile calorimeters 100-A, 100-B, 100-C also includes radio-frequency identification (RFID) tags 112-A, 112-B, 112-C. Each RFID tag 112 transmits a unique identifier associated with its respective mobile calorimeter 100.
(18) Concrete testing system 150 also includes a computer 156 which includes a storage 178. Mobile calorimeters 100 transmit information to computer 156, which stores the information in storage 178. In one embodiment, mobile calorimeters 100 transmit information wirelessly, via a Wi-Fi network.
(19) For example, when mobile calorimeter 100-A is used, RFID 112-A of mobile calorimeter 100-A may transmit to computer 156 an identifier of mobile calorimeter 100-A. A sensor 109-A attached to mobile calorimeter 100-A may include a GPS-based location sensor; the sensor 109 may transmit location data indicating the location of mobile calorimeter 100-A to computer 156. Mobile calorimeter 100-A has a single heat flow sensor 108-A. Heat flow sensor 108-A may obtain and transmit heat flow data to computer 156. Computer 156 may store the identifier of mobile calorimeter 100-A, the location data obtained by sensor 109-A, and the heat flow data obtained by heat flow sensors 108-A, in database 178. Computer 156 may be located locally (e.g., at the construction site) or at a remote location.
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(21) In the embodiment of
(22) In the illustrative embodiment, mobile calorimeter 100 includes heat flow sensors 108, sensors 109, and RFID 112. Heat flow sensors 108, sensors 109, and RFID 112 are linked to network 205. Heat flow sensors 108 and sensors 109 gather information related to a batch of concrete and transmit the information to master database module 235 via network 205. Mobile calorimeter 100 may transmit data to network 205 wirelessly, for example.
(23) Prediction module 280 analyzes data obtained by heat flow sensors 108, and data obtained by sensors 109, with respect to the particular batch of concrete, and generates data indicating an expected performance of the batch. For example, prediction module 280 may project setting behavior and strength for the batch based on heat flow data generated by heat flow sensors 108, or based on other data. Methods for projecting the setting behavior and strength of concrete are known.
(24) In another embodiment, mobile calorimeter 100 may include a MFC sensor; the data obtained by the MFC sensor may be used for other purposes. For example, master database module 235 may use data obtained by an MFC sensor on mobile calorimeter 100 to determine when mobile calorimeter 100 is being filled with concrete, when mobile calorimeter 100 is filled with concrete, and/or when mobile calorimeter 100 is being moved.
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(26) Concrete testing system 290 also includes a wireless gateway 293, which is connected to network 205. Wireless gateway 293 communicates wirelessly with mobile calorimeters 100-A, 100-B, etc. Thus a mobile calorimeter such as mobile calorimeter 100-A may transmit data via wireless gateway and network 205 to master database module 235 or to prediction module 280, for example. Concrete testing system 290 also includes a local storage 296, which is linked to wireless gateway 293. Wireless gateway 293 may from time to time store data in local storage 296.
(27) In an illustrative example, concrete testing system 200 or concrete testing system 290 may be utilized to monitor and control the quality of various batches of concrete delivered to one or more construction sites. Referring again to
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(29) At step 304, a measure of expected performance of the batch is determined, based on the measure of heat flow. Prediction module 280 generates a predicted performance or predicted characteristic of the concrete mixture, based on the heat flow data received from mobile calorimeter 100-A. For example, prediction module 280 may generate a prediction of the strength of the concrete mixture based on the heat flow data.
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(31) Referring to block 310, for each of a plurality of batches of concrete produced in a closed-loop production system, a series of steps is performed. For purposes of illustration, the steps are described with respect to a single batch of concrete.
(32) A batch (truckload) of concrete is mixed at a production facility according to a desired formula and transported to a selected site. At step 320, a portion of the respective batch of concrete is poured into a mobile calorimeter that comprises a heat flow sensor and a radio-frequency identification tag (RFID). Referring to the illustrative embodiment of
(33) At step 330, an identifier associated with the respective mobile calorimeter is received from the RFID. Master database module 235 receives and stores the identifier received from RFID 112, and any other data received from sensors on the mobile calorimeter 100. For example, master database module 235 may generate and store in cloud database 270 a data structure associated with the identifier, such as an object having a plurality of attributes, and store the data structure. Alternatively, a database or other structure may be used to store data.
(34) At step 340, a signal indicating that the mobile calorimeter is full of concrete is received from the heat flow sensor. In the illustrative embodiment, heat flow sensors 108 detect when calorimeter 100 is full and transmit an alert to master database module 235. In one embodiment, in response to the signal, master database module 235 causes the truck to stop pouring concrete.
(35) As the concrete in mobile calorimeter 100 sets, various measurements are obtained. In particular, at step 350, one or more measurements of heat flow are received from the heat flow sensor. Thus, heat flow sensors 108 detect heat flow generated by the hydration heat as the concrete sets, and transmits the data to the master database module 235.
(36) At step 360, data defining an expected setting behavior and an expected strength of the respective batch of concrete is determined based on the one or more measurements of heat flow. For example, master database 235 may provide the heat flow information received from heat flow sensors 108 to prediction module 280. Prediction module 280 projects setting behavior and strength for the batch of concrete, based on the heat flow information, and provides such prediction data to master database module 235.
(37) At step 370, the one or more measurements of heat flow and the data are stored in association with the identifier. Master database module 235 may store the identifier of the batch, the data received from sensors 108, data received from other sensors 109, and the prediction data generated by prediction module 280, in storage. For example, master database module 235 may store information in cloud database 270. Master database module 235 may store the information in connection with the object associated with the identifier.
(38) In one embodiment, data generated by sensors 108 is continually subject to statistical analysis to generate real-time projections, control charts, etc.
(39) Sensors 109 may obtain and transmit other types of data to master database module 235. For example, sensors 109 may transmit location data, time data, etc., to master database module 235. Sensors 109 may also detect motion data and inform master database module 235. Sensors 109 may also detect temperature and humidity data, and air-related data, and transmit the data to master database module 235. For example, in one embodiment, mobile calorimeter 100 includes a GPS-based location sensor. Master database module 235 may receive location-related data from the location sensor and determines at which construction site the mobile calorimeter is located, where at the construction site the mobile calorimeter is located, etc. Prediction module 280 may determine expected performance characteristics of the concrete mixture based on such data received from sensors 109.
(40) In another embodiment, one or more of the sensors on a particular mobile calorimeter may transmit a unique identifier associated with the sensor. Master database module 235 may use the unique identifier of a sensor to identify the mobile calorimeter.
(41) In other embodiments, a mobile calorimeter may have a different form or structure.
(42) Referring to
(43) Heat flow sensors 408 detect heat flow and provide the measurements to master database module 235, for example. Sensors 409 may provide other measurements to master database module 235. In a manner similar to that described above, master database module 235 may provide the information obtained by heat flow sensors 408, and by sensors 409, to prediction module 280 and instruct prediction module 280 to generate projections of setting behavior and strength for the batch of concrete.
(44) Advantageously, the presence of the volume of air 455 between cylinder 460 and mobile calorimeter 400 may facilitate the measurement of heat flow, and the calculation of expected performance characteristics of the concrete.
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(46) A portion of a batch of concrete is poured into a cylinder 460. After cylinder 460 receives the concrete, upper cap 480-A and lower cap 480-B are fitted around cylinder 460, as shown in
(47) Heat flow sensors 488 detect heat flow and provide the measurements to master database module 235, for example. Sensors 489 may provide other measurements to master database module 235. In a manner similar to that described above, master database module 235 may provide the information obtained by heat flow sensors 488, and by sensors 499, to prediction module 280 and instruct prediction module 280 to generate projections of setting behavior and strength for the batch of concrete.
(48) In another embodiment, a heat flow sensor includes a thermoelectric device such as a Peltier plate, which is used to detect heat flow and predict the behavior of the concrete. A current may be passed through the Peltier plate, causing a vibration in the cylinder. These vibrations may modify the heat flow generated by the concrete. The modified heat flow is detected by one or more sensors and used to predict the behavior of the concrete.
(49) In various embodiments, the method steps described herein, including the method steps described in
(50) Systems, apparatus, and methods described herein may be implemented using digital circuitry, or using one or more computers using well-known computer processors, memory units, storage devices, computer software, and other components. Typically, a computer includes a processor for executing instructions and one or more memories for storing instructions and data. A computer may also include, or be coupled to, one or more mass storage devices, such as one or more magnetic disks, internal hard disks and removable disks, magneto-optical disks, optical disks, etc.
(51) Systems, apparatus, and methods described herein may be implemented using computers operating in a client-server relationship. Typically, in such a system, the client computers are located remotely from the server computer and interact via a network. The client-server relationship may be defined and controlled by computer programs running on the respective client and server computers.
(52) Systems, apparatus, and methods described herein may be used within a network-based cloud computing system. In such a network-based cloud computing system, a server or another processor that is connected to a network communicates with one or more client computers via a network. A client computer may communicate with the server via a network browser application residing and operating on the client computer, for example. A client computer may store data on the server and access the data via the network. A client computer may transmit requests for data, or requests for online services, to the server via the network. The server may perform requested services and provide data to the client computer(s). The server may also transmit data adapted to cause a client computer to perform a specified function, e.g., to perform a calculation, to display specified data on a screen, etc.
(53) Systems, apparatus, and methods described herein may be implemented using a computer program product tangibly embodied in an information carrier, e.g., in a non-transitory machine-readable storage device, for execution by a programmable processor; and the method steps described herein, including one or more of the steps of
(54) A high-level block diagram of an exemplary computer that may be used to implement systems, apparatus and methods described herein is illustrated in
(55) Processor 501 may include both general and special purpose microprocessors, and may be the sole processor or one of multiple processors of computer 500. Processor 501 may include one or more central processing units (CPUs), for example. Processor 501, data storage device 502, and/or memory 503 may include, be supplemented by, or incorporated in, one or more application-specific integrated circuits (ASICs) and/or one or more field programmable gate arrays (FPGAs).
(56) Data storage device 502 and memory 503 each include a tangible non-transitory computer readable storage medium. Data storage device 502, and memory 503, may each include high-speed random access memory, such as dynamic random access memory (DRAM), static random access memory (SRAM), double data rate synchronous dynamic random access memory (DDR RAM), or other random access solid state memory devices, and may include non-volatile memory, such as one or more magnetic disk storage devices such as internal hard disks and removable disks, magneto-optical disk storage devices, optical disk storage devices, flash memory devices, semiconductor memory devices, such as erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), compact disc read-only memory (CD-ROM), digital versatile disc read-only memory (DVD-ROM) disks, or other non-volatile solid state storage devices.
(57) Input/output devices 505 may include peripherals, such as a printer, scanner, display screen, etc. For example, input/output devices 505 may include a display device such as a cathode ray tube (CRT) or liquid crystal display (LCD) monitor for displaying information to the user, a keyboard, and a pointing device such as a mouse or a trackball by which the user can provide input to computer 500.
(58) Any or all of the systems and apparatus discussed herein, including computer 156, storage 178, master database module 235, cloud database 270, prediction module 280, and components thereof, may be implemented using a computer such as computer 500.
(59) One skilled in the art will recognize that an implementation of an actual computer or computer system may have other structures and may contain other components as well, and that
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(61) Mobile calorimeter system 600 includes a humidity sensor 632, a temperature sensor 635, a plurality of heat flow sensors 638, a motion sensor 641, a location detector 643, and a macro fiber composite (MFC) sensor 639. Temperature sensor 635 and humidity sensor 632 are disposed on an inside surface of upper cap 620-A. Temperature sensor 635 includes a sensor portion that protrudes from the surface and penetrates the surface of the concrete in cylinder 630, or remains proximate the surface of the concrete. Each heat flow sensor 638 is disposed on an outside surface of an inner wall of upper cap 620-A or lower cap 620-B.
(62) Motion sensor 641 includes an accelerometer. Location detector 643 includes GPS capability. Location may be determined based on GPS data and by using triangulation.
(63) A portion of a batch of concrete is poured into a cylinder 630. After the concrete is poured into cylinder 630, upper cap 620-A and lower cap 620-B are fitted around cylinder 630. Cylinder 630 may fit snugly into caps 620, or may fit loosely, leaving a volume of air (different from volume 664) between cylinder 630 and caps 620.
(64) Heat flow sensors 638 detect heat flow and provide the measurements to master database module 235, for example. Humidity sensor 632 and temperature sensor 635 may provide humidity and temperature measurements to master database module 235.
(65) In one embodiment, heat flow sensors 638 are calibrated to measure the amount of heat loss over any time period from the mobile calorimeter. Mathematically, the temperature increase inside the calorimeter multiplied by the concrete specific heat gives the heat energy retained in the calorimeter, and in combination with the heat loss computed as indicated provides a good measure of concrete hydration heat under equivalent adiabatic conditions. Thus, the mobile calorimeter may be used for field assessment of concrete adiabatic hydration heat and adiabatic temperature rise versus curing age at a particular equivalent temperature, such as 20 dC, for example. Such adiabatic profiles are known to be mixture design dependent and can thus be used to determine concrete quality and strength performance under field conditions where quality can vary by 20% or more.
(66) In another embodiment, cylinder is placed into lower cap 620-B before concrete is poured into cylinder 630. Concrete is then poured into cylinder 630. Measurements from MFC sensor 639 are transmitted to master database module 235. Measurements from MFC sensor 639 are used to detect when cylinder 630 is full of concrete. When it is determined that cylinder 630 is full of concrete, master database module 235 causes the truck to stop pouring concrete. Upper cap 620-A may then be placed onto cylinder 630.
(67) In the illustrative embodiment, data obtained by MFC sensor 639 is also used to detect when mobile calorimeter system 600 is moved.
(68) In a manner similar to that described above, master database module 235 may provide the information obtained by humidity sensor 632, temperature sensor 635, heat flow sensors 638, and MFC sensor 639, to prediction module 280 and instruct prediction module 280 to generate a prediction of a performance characteristic for the batch of concrete (e.g., projections of setting behavior and strength for the batch of concrete).
(69) The foregoing Detailed Description is to be understood as being in every respect illustrative and exemplary, but not restrictive, and the scope of the invention disclosed herein is not to be determined from the Detailed Description, but rather from the claims as interpreted according to the full breadth permitted by the patent laws. It is to be understood that the embodiments shown and described herein are only illustrative of the principles of the present invention and that various modifications may be implemented by those skilled in the art without departing from the scope and spirit of the invention. Those skilled in the art could implement various other feature combinations without departing from the scope and spirit of the invention.