HIGH TEMPERATURE-RESISTANT FIRE EXTINGUISHING ROBOT AND WORKING METHOD THEREFOR
20240108925 ยท 2024-04-04
Inventors
- Fei TANG (Beijing, CN)
- Yanlong Xu (Beijing, CN)
- Gang Luo (Beijing, CN)
- Jin CHEN (Beijing, CN)
- Mingxu LI (Beijing, CN)
Cpc classification
A62C31/02
HUMAN NECESSITIES
International classification
Abstract
A high temperature-resistant fire extinguishing robot, comprising: a high temperature-resistant robot chassis system and a high temperature-resistant turret system. The high temperature-resistant robot chassis system carries the high temperature-resistant turret system to perform movements and obstacle avoidance, provides the high temperature-resistant turret system with energy, and further comprises: a high temperature-resistant tract drive system, a thermal protection system, and a control and sensor system, the high temperature-resistant track drive system being arranged outside of the thermal protection system, and the control and sensor system being arranged within the thermal protection system. The high-temperature turret system performs a fire extinguishing and cooling operation with respect to the external environment and further comprises: a water cannon, a water cannon thermal protection structure, and a cooling circulation system, the water cannon and the cooling circulation system being arranged within the water cannon thermal protection structure. In a high temperature-resistant protected state, the water cannon thermal protection structure is closed; in a fire extinguishing work state, the water cannon thermal protection structure is opened, and the water canon perform a fire extinguishing operation.
Claims
1. A high-temperature-resistant fire-fighting robot, comprising a high-temperature-resistant robot chassis system and a high-temperature-resistant turret system, wherein, the high-temperature-resistant robot chassis system carrying the high-temperature-resistant turret system to move and surmount obstacles and providing energy to the high-temperature-resistant turret system, and further comprises a high-temperature-resistant track drive system, a thermal protection system and a control and sensing system, wherein the high-temperature-resistant track drive system is located outside the thermal protection system, and the control and sensing system is located inside the thermal protection system: the high-temperature-resistant turret system performs fire-extinguishing and cooling operation for an external environment, and further comprises a water cannon, a thermal protection structure for the water cannon, and a cooling circulation system, wherein the water cannon and the cooling circulation system are located inside the thermal protection structure for the water cannon; the thermal protection structure for the water cannon is closed in a high temperature protection state; the thermal protection structure for the water cannon is opened and the water cannon performs fire-extinguishing operation in a fire-extinguishing state.
2. The robot system according to claim 1, wherein the thermal protection structure for the water cannon comprises an open-close type protection door and a main protection enclosure for the turret.
3. The robot system according to claim 1, wherein the high-temperature-resistant turret system further comprises a water cannon camera or a thermal imager.
4. The robot system according to claim 1, wherein the thermal protection system comprises a thermal protection enclosure, a high-temperature-resistant electrical and refrigeration interface assembly, and a high-temperature-resistant hose interface assembly.
5. The robot system according to claim 4, wherein the high-temperature-resistant electrical and refrigeration interface assembly comprises a sealing cap locker, a high-temperature-resistant sealing gasket, a heat-insulating panel, a power switch, a charging interface, a refrigeration interface, and a heat-insulating sealing cap.
6. The robot system according to claim 5, wherein the refrigeration interface comprises a coolant inlet and a coolant outlet.
7. The robot system according to claim 4, wherein the high-temperature-resistant hose interface assembly comprises a hose interface, a heat-insulating end cap, a high-temperature-resistant fiber braided tube and an end cap holder.
8. The robot system according to claim 4, further comprising a cold source and a cooling circulation system for cooling the interior of the thermal protection enclosure.
9. The robot system according to claim 1, wherein the control and sensing system comprises a main control system, a communication system, a power management system, a high-temperature-resistant camera system, a high-temperature-resistant lighting assembly, and a high-temperature-resistant antenna.
10. The robot system according to claim 9, wherein the partial structures of the high-temperature-resistant camera system, the high-temperature-resistant lighting assembly and the high-temperature-resistant antenna penetrate through the thermal protection enclosure for acquiring information and transmitting information to the external environment.
11. The robot system according to claim 9, further comprising a radar assembly and an optical sensor assembly on the chassis.
12. A working method of a high-temperature-resistant fire-fighting robot, comprising the following steps: 1) closing an open-close type protection door of a thermal protection structure for a water cannon, a heat-insulating sealing cap at an electrical interface, and a heat-insulating end cap of a high-temperature-resistant hose interface assembly, to enter into a high-temperature protection state; 2) the high-temperature-resistant robot entering or passing through a high-temperature fire site for exploration and reconnaissance in the high-temperature protection state; 3) opening the heat-insulating end cap to connect a hose, opening the open-close type protection door, and starting water spraying from a water cannon when the high-temperature-resistant fire-fighting robot reaches a designated operation area, thus switching the high-temperature-resistant fire-fighting robot from the high-temperature protection state to a fire-extinguishing state: 4) removing the hose, closing the heat-insulating end cap and the open-close type protection door after the fire-extinguishing operation is completed, thus switching the high-temperature-resistant fire-fighting robot from the fire-extinguishing state to the high-temperature protection state.
13. The method according to claim 12, further comprising a step of regulating the temperature of a cold source to a predetermined temperature before the step 1): refrigerating the cold source by means of an external cooling system, replacing a coolant of the cold source, or replacing the cold source; cutting off the external cooling system when the temperature of the cold source reaches the predetermined temperature.
Description
DESCRIPTION OF DRAWINGS
[0035] The accompanying drawings are provided for further understanding of the present invention, and constitute a part of the specification. These drawings are used in conjunction with the embodiments of the present invention to interpret the present invention, but don't constitute any limitation to the present invention. In the figures:
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
EMBODIMENTS
[0043] Hereunder some preferred embodiments of the present invention will be described with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only intended to describe and explain the present invention, but don't constitute any limitation to the present invention.
[0044]
[0047] Specifically, the high-temperature-resistant and heat-insulating transmission system mainly comprises a rigid shaft for transmission and a heat-insulating layer outside the rigid shaft.
[0048] Specifically, the driver is a servo driver, used as a controller for controlling one or more parameters of motor position, speed and torque.
[0049] The thermal protection system is configured to protect the robot to perform fire-extinguishing operation in a high-temperature environment. The thermal protection system mainly comprises a thermal protection enclosure 302, a high-temperature-resistant electrical and refrigeration interface assembly 301 and a high-temperature-resistant hose interface assembly 303.
[0050] Specifically, the thermal protection system further comprises a cold source 503 and a cooling circulation system 504 for cooling the interior of the thermal protection enclosure 302 (the main body of the cold source is a coolant, which is initially at a low temperature, and absorbs heat through temperature rise, phase change or a combination of them).
[0051] The control and sensing system comprises a main control system 505, a power management system 506, a communication system 501, a high-temperature-resistant camera system 403, a high-temperature-resistant lighting assembly 402, and a high-temperature-resistant antenna 404, etc.
[0052] Specifically, the high-temperature-resistant camera system 403 comprises a camera, a high-temperature-resistant lens, and a lens cooling device.
[0053]
[0054] Specifically, the control and sensing system further comprises a radar assembly 401 and a high-temperature-resistant camera system 403.
[0055] Specifically, the radar assembly 401 can be a millimeter-wave radar, which is configured to detect the positions and distances of obstacles around the robot, so as to provide ambient information for obstacle avoidance and navigation of the robot.
[0056]
[0057] Preferably, the robot further comprises an emergency stop switch not shown in the figures, which is configured to stop the robot quickly, and has the same function as the emergency stop switch found in conventional production equipment.
[0058] Preferably, the robot further comprises a battery status display not shown in the figures, which is configured to displaying the remaining capacity of the battery, and the battery status display may be an LCD or multi-color LED display. The display mode can be percentage direct display, ladder display or indicator warning for low battery.
[0059] Preferably, the refrigeration interface comprises a coolant inlet 315 and a coolant outlet 316.
[0060]
[0061] Specifically, the high-temperature-resistant hose interface assembly further comprises a high-temperature-resistant fiber braided tube 333 and an end cap holder 334.
[0062]
[0063] The high-temperature-resistant turret system 2 comprises a thermal protection structure for water cannon, a cooling circulation system 504, a water cannon 203, and a spraying system, etc., and is configured to protect the water cannon system and perform fire extinguishing operation by spraying water.
[0064] Specifically, the spraying system comprises a sprinkler, a pipeline for connecting the sprinkler and a water supply system for the water cannon, and a valve for controlling the on-off of the pipeline.
[0065]
[0066]
[0067] Preferably, the thermal protection structure for the water cannon of the high-temperature-resistant turret system 2 has an open-close type or dynamic protection structure matching the movement range of the water cannon 203, which is configured to adjust the spraying angle and position of the water cannon 203 in a wide range in the working process.
[0068] Both the high-temperature-resistant robot chassis system 1 and the high-temperature-resistant turret system 2 have a thermal protection structure and a cooling system to protect the fire-fighting robot from being damaged or affected by the high temperature during travel or operation in a high-temperature environment.
[0069] In the high-temperature protection state, the high-temperature-resistant robot chassis system 1 and the high-temperature-resistant turret system 2 should jointly or respectively ensure good thermal sealing performance to prevent a large amount of external heat from being transferred into the thermal protection enclosure and damaging the internal components.
[0070] By designing the fire-fighting robot with combined high-temperature-resistant turret and high-temperature-resistant chassis, the problem of thermal protection for the water cannon and the chassis is broken down and solved respectively; thus the technical difficulties in solving the thermal protection problem as a whole are reduced, and water cannons with different performances and specifications can be matched and integrated with power chassis as required.
[0071] The fire-fighting robot needs to employ different working flows, according to the different protection form of the turret and the interface. Taking the open-close type turret as an example, the fire-fighting robot will have two different structural states: a high-temperature protection state and a fire-extinguishing state.
[0072] In the high-temperature protection state, the turret is closed, the external interfaces such as the hose and the switch are closed, and the entire robot has a higher thermal protection performance. In that state, it is necessary to ensure that the chassis and some sensors and electronic control systems used to control the traveling of the robot work normally. The robot moves to a designated working location in this state.
[0073] In the fire-extinguishing state, the thermal protection enclosure of the water hose interface is opened or removed, a water hose is connected, and the water cannon is capable of spraying water. Then, the thermal protection enclosure that blocks the movement and spraying range of the water cannon is moved away or removed, and the water cannon starts to work. In this state, the robot is cooled not only by its own internal cooling system but also by the water mist sprayed from the water cannon and the sprinkler.
[0074] After the fire-extinguishing work of the fire-fighting robot is completed, if the ambient temperature is still high or the robot has to pass through a high-temperature area in the exiting process, the water cannon and the turret can be reset. The robot can be switched to the high-temperature protection state to safely exit the fire site.
[0075] Hereunder the high-temperature-resistant fire-fighting robot and the working method thereof in the present invention will be further described in a specific embodiment. Taking an open-close type turret as an example, the working flow of the high-temperature-resistant fire-fighting robot is as follows: [0076] 1. The coolant of the cold source is refrigerated by an external cooling system, or the coolant of the cold source or the cold source can be directly replaced, to regulate the temperature of the cold source to a predetermined temperature: [0077] 2. The external cooling system is cut off after the predetermined temperature is reached; [0078] 3. Each sealing and heat-insulating interface on the robot (including the open-close type protection door 201, the heat-insulating sealing cap 318 and the heat-insulating end cap 335 in this embodiment) are closed, and the robot is switched to the high-temperature protection state: [0079] 4. The robot enters into or passes through a high-temperature fire site for exploration and reconnaissance in the high-temperature protection state; [0080] 5. The thermal protection structure of the hose interface (the heat-insulating end cap 335 in this embodiment) is opened and a hose is connected after the robot reaches a designated operation area. The cooling water conveyed in the hose keeps the hose and the hose interface at a low temperature and working continuously. [0081] 6. The thermal protection structure of the water cannon (the open-close type protection door 201 in this embodiment) is opened, and the water cannon starts to spray water. The interior of the turret and the robot body can be cooled continuously by auxiliary nozzles. [0082] 7. After completing the operation, the sealing and heat-insulating interfaces of the robot are closed, the robot passes through the high temperature area again or leaves directly from the non-high-temperature area after the fire-extinguishing and cooling operation is completed.
[0083] Those skilled in the art can understand: the embodiments described above are only some preferred embodiments of the present invention, and should not be deemed as constituting any limitation to the present invention. Although the present invention is described and illustrated above in detail with respect to the embodiments, those skilled in the art can easily make modifications to the technical solutions described in the above embodiments or make equivalent replacements of some technical features. Any modification, equivalent replacement, or improvement made within the spirit and the principle of the present invention should be included in the scope of protection of the present invention.