A conveyance system for earthquake fire and method of use
By installing fire and earthquake monitoring systems in the factory and connecting them to controllers to control the material handling system, the safety hazards and losses of the material handling system during fires or earthquakes have been resolved, and effective management of safe evacuation and cargo handling has been achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-03-06
- Publication Date
- 2026-03-20
AI Technical Summary
In the event of a fire or earthquake, the existing transport system is still operating, posing a safety hazard and making it impossible to stop or adjust the transport route in time, leading to increased losses.
By installing fire monitoring and earthquake monitoring systems in each factory building, connecting controllers to control the material handling system, real-time monitoring and stopping or adjusting the material handling route according to fire or earthquake conditions, and setting up longitudinal and transverse material handling lines to ensure safe evacuation and cargo handling.
It enables the timely shutdown of the conveying system in the event of a fire or earthquake, reducing safety hazards, preventing cargo loss, and maximizing safety while minimizing losses.
Smart Images

Figure CN116280818B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of control systems and disaster evacuation systems, in particular to an evacuation system for responding to earthquakes and fires and a use method thereof. BACKGROUND
[0002] At present, the evacuation system includes OHS, STK, OHCV, AVG, etc., MCS: material control system, OHS is a crane evacuation system, STK is a temporary storage warehouse, stores baskets, and connects equipment for evacuation, OHCV is a top conveyor, AVG: trackless automatic evacuation trolley.
[0003] When a fire or earthquake occurs, the evacuation system is still operating, especially the OHS in the sky, if it does not stop running, there will be a safety hazard, causing greater losses.
[0004] In the prior art, the patent application with the application number 202110364963.X discloses: the present application relates to a factory management system, which mainly controls a warehouse management system, an AI system, a car dispatching system, a maintenance system, a safety management system, a monitoring system, a device pipeline configuration system, a data collection system, and a blue book system through a central control host, so that the management personnel can directly control the work of each system through the central control host, and the systems also form a cooperative work, for example, when the warehouse management system determines that the original material needs to be supplemented, it will send a message to the central control host to remind the management personnel to handle it. Or when the data collection system determines that the original material in the machine is about to run out, it will control the car dispatching system to go to the warehouse to transport and supplement the material. In this way, the present application can manage the operation of each system in the factory with the least manpower.
[0005] Based on the above, at least the following technical problems exist:
[0006] When a fire or earthquake occurs, the evacuation system is still operating, especially the OHS in the sky, if it does not stop running, there will be a safety hazard, causing greater losses;
[0007] After a fire occurs, if the goods are not transported in time after the personnel evacuate, it will cause loss of goods;
[0008] After an earthquake occurs, it is not possible to determine whether to stop evacuation, evacuate, or evacuate to which place according to the earthquake degree, so as to maximize the safety while minimizing the loss;
[0009] After a fire occurs, it is not possible to determine whether to stop evacuation, evacuate, or evacuate to which place according to the fire degree, so as to maximize the safety while minimizing the loss;
[0010] There is no good evacuation route for responding to fires and earthquakes. SUMMARY
[0011] The main purpose of the present application is to provide a conveying system and use method for coping with earthquake and fire, so as to solve the technical problems in the prior art that when an earthquake and fire disaster occurs, the conveying system is still operating, especially the OHS is running in the sky, which will cause safety hazards and greater losses; after the fire occurs and the personnel evacuate, if the goods are not transported in time, it will cause loss of goods; after the earthquake occurs, it cannot be determined whether to stop conveying, conveying or conveying to which place according to the degree of earthquake, so as to maximize the safety while reducing the loss; after the fire occurs, it cannot be determined whether to stop conveying, conveying or conveying to which place according to the degree of fire, so as to maximize the safety while reducing the loss; and there is no better technical problem of at least one of the conveying route for coping with fire and earthquake.
[0012] In order to achieve the above-mentioned purpose, according to one aspect of the present application, a conveying system for coping with earthquake and fire is provided, comprising:
[0013] a house area, the house area comprising a plurality of factory buildings;
[0014] a fire monitoring system, the fire monitoring system being arranged in each factory building;
[0015] an earthquake monitoring system, the earthquake monitoring system being arranged in each factory building;
[0016] a conveying system, the conveying system being arranged in the factory building;
[0017] a controller, the controller being connected with the fire monitoring system, the earthquake monitoring system and the conveying system respectively;
[0018] wherein when an earthquake occurs, the earthquake monitoring system timely monitors the earthquake, and the controller controls the conveying system to timely stop working; when a fire occurs, the fire monitoring system timely monitors the fire, and the controller controls the conveying system to timely stop working.
[0019] Preferably, the factory building comprises a first room, a second room and an Nth room, the first room is provided with the fire monitoring system, the earthquake monitoring system, the conveying system and the fire extinguishing system, the second room is provided with the fire monitoring system, the earthquake monitoring system, the conveying system and the fire extinguishing system, and the Nth room is provided with the fire monitoring system, the earthquake monitoring system, the conveying system and the fire extinguishing system.
[0020] Preferably, the controller comprises a central processing unit, a fire monitoring system control module, an earthquake monitoring system control module, a conveying system control module, a comparison module, an information storage module, a route planning module, a fire extinguishing system control module and a discrimination module, and the fire monitoring system control module, the earthquake monitoring system control module, the conveying system control module, the comparison module, the information storage module, the route planning module, the fire extinguishing system control module and the discrimination module are connected to the central processing unit.
[0021] Preferably, the factory building further comprises an empty space, the first room is connected to the empty space through a first longitudinal conveying line, the second room is connected to the empty space through a second longitudinal conveying line, the Nth room is connected to the empty space through an Nth longitudinal conveying line, and the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line are connected through a transverse conveying line.
[0022] Preferably, the transverse conveying line is provided with a fire extinguishing system at the intersection with the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line.
[0023] Preferably, the fire monitoring system and the earthquake monitoring system in the factory building are arranged in a five-point distribution, wherein the fire monitoring system and the earthquake monitoring system are arranged at the center of each room, each room is equally divided along the centerline of the side line, and the fire monitoring system and the earthquake monitoring system are arranged at the center of each equally divided area.
[0024] Preferably, the discrimination module is used for discriminating the earthquake state.
[0025] When the earthquake monitoring system of at least two of the first room, the second room and the Nth room detects an earthquake signal, the controller controls the conveying system to stop working in time and evacuate personnel;
[0026] When the earthquake monitoring system of at least three points in each of the first room, the second room and the Nth room detects an earthquake signal, after the personnel are evacuated, the controller controls the conveying system to convey the goods to the empty space.
[0027] Preferably, the route planning module is used for planning a conveying route in real time when a fire occurs.
[0028] When the fire monitoring system detects a fire, the controller controls the route planning module to plan a route;
[0029] When the fire monitoring system of less than or equal to two points of the five points detects a fire, the route planning module plans a conveying route to convey the goods to other points of the five points where no fire occurs;
[0030] When the fire monitoring system at more than two points in the five points detects a fire, the route planning module plans a carrying route to carry the goods out of the room, wherein the first room is carried out along the first longitudinal carrying line, the second room is carried out along the second longitudinal carrying line, and the Nth room is carried out along the Nth longitudinal carrying line, and then carried to the empty land or carried to other first rooms, second rooms or Nth rooms along the transverse carrying line.
[0031] Preferably, the route planning module is used to plan a carrying route in real time when an earthquake occurs.
[0032] When the earthquake monitoring system at at least three points in each of the first room, the second room and the Nth room detects an earthquake signal, after the personnel are evacuated, the controller controls the carrying system to carry the goods along the first longitudinal carrying line, the second longitudinal carrying line and the Nth bus carrying line to the empty land.
[0033] According to another aspect of the present application, a use method of a carrying system for earthquake and fire is provided, comprising the following steps:
[0034] Step 1: Real-time monitoring of the fire state of the room position by the fire monitoring system, and real-time monitoring of the earthquake state of the room position by the earthquake monitoring system.
[0035] Step 2: When the fire monitoring system detects a fire at the room position or the earthquake monitoring system detects an earthquake at the room position, the system reports an emergency signal to the controller.
[0036] Step 3: The controller discriminates whether it is an earthquake or a fire, when it is a fire signal, the signal is identified and an emergency stop instruction is sent to the room sending the signal, and the carrying system stops carrying after receiving the instruction.
[0037] Step 4: When it is an earthquake signal, the controller discriminates whether another earthquake signal is received, when another earthquake signal is received, the controller sends an emergency stop signal to the carrying system, and the carrying system stops carrying after receiving the signal.
[0038] The technical scheme of the present application has the following technical effects:
[0039] By connecting the fire monitoring system with the controller, the carrying system is further linked, when a fire or earthquake danger occurs, the carrying system is stopped in time, which has the technical effects of reducing safety hazards and avoiding greater losses.
[0040] By connecting the fire monitoring system with the controller, and then realizing linkage with the conveying system, by setting the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line, and simultaneously setting the transverse conveying line intersecting the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line, when the fire occurs, the goods can be conveyed away in time after the personnel evacuation, and the technical effect of avoiding causing loss of goods is achieved.
[0041] By setting the discrimination module, when the earthquake occurs, it is determined whether to stop conveying, conveying or conveying to which according to the earthquake degree, and when the fire occurs, it is determined whether to stop conveying, conveying or conveying to which according to the fire degree, the technical effect of maximizing safety while reducing loss is achieved.
[0042] By setting the empty land and the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line, and simultaneously setting the transverse conveying line intersecting the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line, and simultaneously setting the planning module, the technical effect of avoiding causing more loss is achieved. BRIEF DESCRIPTION OF DRAWINGS
[0043] The drawings constituting a part of the specification of this application are used to provide further understanding of the present application, the illustrative embodiments of the present application and the description thereof are used to explain the present application, and do not constitute improper limitation on the present application. In the drawings:
[0044] Figure 1 The structure schematic view of the conveying system for coping with earthquake and fire according to the present application is shown;
[0045] Figure 2 The structure view of the controller of the conveying system for coping with earthquake and fire in Figure 1 is shown;
[0046] Figure 3 The structure view of the interval room of the conveying system for coping with earthquake and fire in Figure 1 is shown;
[0047] Figure 4 The structure view of the conveying line of the conveying system for coping with earthquake and fire in Figure 1 is shown;
[0048] Figure 5 The structure view of the monitoring system arrangement of the conveying system for coping with earthquake and fire in Figure 1 is shown;
[0049] Figure 6 The flow chart of the use method of the conveying system for coping with earthquake and fire in Figure 1 is shown.
[0050] wherein the above-described figures include the following reference numerals:
[0051] Controller 1; first room 2; second room 3; Nth room 4; fire monitoring system 5; earthquake monitoring system 6; transmission line 7; central processor 8; fire detection system control module 9; earthquake monitoring system control module 10; transport system control module 11; comparison module 12; information storage module 13; route planning module 14; fire extinguishing system control module 15; discrimination module 16; transport system 17; empty space 18; first longitudinal transport line 19; second longitudinal transport line 20; Nth longitudinal transport line 21; transverse transport line 22. DETAILED DESCRIPTION
[0052] Embodiments of the present application will be described in detail below with reference to the drawings, examples of which are shown in the accompanying drawings, wherein like or similar components have the same or similar reference numbers throughout the drawings. The embodiments described below with reference to the drawings are exemplary and are for the purpose of explanation only, and should not be construed as limiting the present application.
[0053] Those skilled in the art can understand that unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the present application belongs.
[0054] It should also be understood that terms such as those defined in a general dictionary should be interpreted to have a meaning that is consistent with the context of the relevant art and can not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
[0055] Those skilled in the art can understand that unless otherwise stated, the singular forms "a," "an," and "the" used herein also include the plural forms. It should be further understood that the use of the term "include" in the specification of the present application means that the stated features, integers, steps, operations, elements, and / or components are present, but does not preclude the presence or addition of one or more other features, integers, steps, operations, elements, and / or groups thereof.
[0056] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. Also, the specific features, structures, materials or characteristics described can be combined in any appropriate manner in any one or more embodiments or examples. In addition, the person skilled in the art can combine and combine the different embodiments or examples described in the present specification and the features of the different embodiments or examples without contradiction.
[0057] In the description of the present application, the terms "first", "second" are only for descriptive purpose, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include at least one of the features. In the description of the present application, the meaning of "multiple" is two or more, unless otherwise specifically limited.
[0058] In the description of the present application, the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings, which are only for the convenience of describing the present technology and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present technology.
[0059] Unless otherwise specifically defined and limited, the terms "mount", "connect", "connect", "set" should be broadly understood, for example, it can be fixedly connected, set, or it can be detachably connected, set, or integrally connected, set. For those skilled in the art, the specific meaning of the above terms in the present technology can be understood according to the specific circumstances.
[0060] In order to facilitate the understanding of the present application, the present application will be further explained and described in specific embodiments in conjunction with the drawings, and the specific embodiments do not constitute a limitation on the embodiments of the present application.
[0061] Those skilled in the art should understand that the drawings are only schematic diagrams of the embodiments, and the components in the drawings are not necessarily necessary for the implementation of the present application.
[0062] As Figures 1 to 6 shown, the present application provides a conveying system for coping with earthquake fire, comprising: a house area, the house area comprises a plurality of factory buildings; a fire monitoring system 5, the fire monitoring system is arranged in each factory building; an earthquake monitoring system 6, the earthquake monitoring system 6 is arranged in each factory building; a conveying system 17, the conveying system 17 is arranged in the factory building; a controller 1, the controller 1 is connected with the fire monitoring system 5, the earthquake monitoring system 6 and the conveying system 17 respectively; wherein when the earthquake occurs, the earthquake monitoring system 6 timely monitors the earthquake, the controller 1 controls the conveying system 17 to stop working in time when the earthquake occurs, and timely transports goods during the earthquake interval after the personnel evacuation; when the fire occurs, the fire monitoring system 5 timely monitors the fire, the controller 1 controls the conveying system 17 to stop working in time, and timely transports goods after the personnel evacuation.
[0063] If the earthquake fire occurs, through the system control, timely stop running the conveying system, can reduce the loss, and improve the safety. When the earthquake fire occurs, timely stop running the conveying system, reduce the loss, and improve the safety. The fire alarm signal is connected to STK from the fire alarm control box, the earthquake signal is connected to STK by installing the seismograph, the software processes the signal, and sends the emergency information to all conveying systems, requiring to stop running. The fire alarm alarm is sent by the plant, and the signal is received, and the signal is sent to the plant, the earthquake signal involves a wide range, and the signal false alarm is easy to occur, so the signal three two is adopted, if two places send the signal at the same time, the alarm is triggered, and the signal is sent to all conveying systems. The design concept of the present application is to protect the earthquake fire signal connected to the conveying system.
[0064] In the embodiment, the house area includes a plurality of plants, the plants include a first room 2, a second room 3 and an Nth room 4, the first room 2 is provided with a fire monitoring system 5, an earthquake monitoring system 6, a conveying system 17 and a fire extinguishing system, the fire monitoring system 5 is used for monitoring whether a fire occurs in the first room 2 in real time, the earthquake monitoring system 6 monitors whether an earthquake occurs in real time, the conveying system 17 is used for conveying goods, and the fire extinguishing system is used for extinguishing fire. The second room 3 is provided with a fire monitoring system 5, an earthquake monitoring system 6, a conveying system 17 and a fire extinguishing system. The fire monitoring system 5 is used for monitoring whether a fire occurs in the second room 3 in real time, the earthquake monitoring system 6 monitors whether an earthquake occurs in real time, the conveying system 17 is used for conveying goods, and the fire extinguishing system is used for extinguishing fire. The Nth room 4 is provided with a fire monitoring system 5, an earthquake monitoring system 6, a conveying system 17 and a fire extinguishing system. The fire monitoring system 5 is used for monitoring whether a fire occurs in the Nth room 4 in real time, the earthquake monitoring system 6 monitors whether an earthquake occurs in real time, the conveying system 17 is used for conveying goods, and the fire extinguishing system is used for extinguishing fire.
[0065] In the embodiment, the fire monitoring system 5, the fire detection system is arranged in each plant, the earthquake monitoring system 6, the earthquake monitoring system 6 is arranged in each plant; when the earthquake occurs, the earthquake monitoring system 6 monitors the earthquake in time, the controller 1 controls the conveying system 17 to stop working in time when the earthquake occurs, and the goods are conveyed in time after the personnel evacuation and the earthquake interval; when the fire occurs, the fire monitoring system 5 monitors the fire in time, the controller 1 controls the conveying system 17 to stop working in time, and the goods are conveyed in time after the personnel evacuation. The fire monitoring system 5 and the earthquake monitoring system 6 in the plant are arranged in five-point distribution, wherein the fire monitoring system 5 and the earthquake monitoring system 6 are arranged at the center position of each room, each room is divided into four equal parts along the center line of the edge, and the fire monitoring system 5 and the earthquake monitoring system 6 are arranged at the center position of each equal part area. The conveying system 17 is arranged in the plant, and the conveying system 17 realizes the conveying of goods.
[0066] In the embodiment, the controller 1 is used to control the fire monitoring system 5 to conduct real-time fire monitoring, is used to control the earthquake monitoring system 6 to conduct real-time earthquake monitoring, and is used to control the carrying of the carrying system 17. The controller 1 is connected with the fire monitoring system 5, the earthquake monitoring system 6 and the carrying system 17 respectively. The controller 1 comprises a central processing unit 8, a fire monitoring system control module 9, an earthquake monitoring system 6 control module 10, a carrying system 17 control module 11, a comparison module 12, an information storage module 13, a route planning module 14, a fire extinguishing system control module 15 and a discrimination module 16. The fire monitoring system control module 9, the earthquake monitoring system 6 control module 10, the carrying system 17 control module 11, the comparison module 12, the information storage module 13, the route planning module 14, the fire extinguishing system control module 15 and the discrimination module 16 are connected with the central processing unit 8 respectively. The central processing unit 8 is used to control the work of the fire monitoring system control module 9, the earthquake monitoring system 6 control module 10, the carrying system 17 control module 11, the comparison module 12, the information storage module 13, the route planning module 14, the fire extinguishing system control module 15 and the discrimination module 16. The fire monitoring system control module 9 is used to control the fire monitoring system 5 to conduct real-time fire monitoring. The earthquake monitoring system 6 control module 10 is used to control the earthquake monitoring system 6 to conduct real-time monitoring. The carrying system 17 control module 11 is used to control the starting and timely stopping of the carrying system 17 and the carrying according to the planned route. The transmission line 7 can be wired transmission and wireless transmission.
[0067] The discrimination module 16 is used for discriminating the earthquake state: when the earthquake signal is monitored by at least two earthquake monitoring systems 6 in two of the first room 2, the second room 3 and the Nth room 4, the controller 1 controls the conveying system to stop working in time and evacuate the personnel; when the earthquake signal is monitored by at least three earthquake monitoring systems 6 in each of the first room 2, the second room 3 and the Nth room 4, after the personnel are evacuated, the controller 1 controls the conveying system to convey the goods to the empty land 18. The route planning module 14 is used for planning the conveying route in real time when the earthquake occurs: when the earthquake signal is monitored by at least three earthquake monitoring systems 6 in each of the first room 2, the second room 3 and the Nth room 4, after the personnel are evacuated, the controller 1 controls the conveying system to convey the goods along the first longitudinal conveying line, the second longitudinal conveying line and the Nth bus conveying line to the empty land 18. The route planning module 14 is used for planning the conveying route in real time when the fire occurs: when the fire is monitored by the fire monitoring system 5, the controller 1 controls the route planning module 14 to plan the route; when the fire is monitored by the fire monitoring system 5 at less than or equal to two positions of the five positions, the route planning module 14 plans the conveying route to convey the goods to the other positions without fire among the five positions; when the fire is monitored by the fire monitoring system 5 at more than two positions of the five positions, the route planning module 14 plans the conveying route to convey the goods out of the room, wherein the first room 2 is conveyed out along the first longitudinal conveying line 19, the second room 3 is conveyed out along the second longitudinal conveying line 20, and the Nth room 4 is conveyed out along the Nth longitudinal conveying line 21, and then the goods are conveyed to the empty land 18 or to the other first room 2, second room 3 or Nth room 4 without fire along the transverse conveying line 22.
[0068] Embodiment 2
[0069] On the basis of embodiment 1, the application further comprises an empty land 18, wherein the empty land 18 is connected with the first room 2 through the first longitudinal conveying line 19, the empty land 18 is connected with the second room 3 through the second longitudinal conveying line 20, the Nth room 4 is connected through the Nth longitudinal conveying line 21, and the first longitudinal conveying line 19, the second longitudinal conveying line 20 and the Nth longitudinal conveying line 21 are connected through the transverse conveying line 22. The transverse conveying line 22 is provided with a fire extinguishing system at the intersection with the first longitudinal conveying line 19, the second longitudinal conveying line 20 and the Nth longitudinal conveying line 21. In the event of fire or earthquake, the conveying can be stopped in time to ensure the evacuation of personnel, and after the personnel are evacuated, the goods can be conveyed away in time to reduce the disaster loss.
[0070] Embodiment 3
[0071] In another embodiment of the application, a use method of the conveying system for coping with earthquake and fire is provided, comprising the following steps:
[0072] Step 1: Real-time monitoring of the fire state of the factory location through the fire monitoring system 5, and real-time monitoring of the earthquake state of the factory location through the earthquake monitoring system 6.
[0073] Step 2: When the fire monitoring system 5 detects a fire at the factory location or the earthquake monitoring system 6 detects an earthquake at the factory location, the system reports an emergency signal to the controller 1.
[0074] Step 3: The controller 1 discriminates between an earthquake and a fire, and when it is a fire signal, it identifies the signal and sends an emergency stop command to the adjacent room that sent the signal, and the conveying system stops conveying after receiving the command.
[0075] Step 4: When it is an earthquake signal, the controller 1 discriminates whether another earthquake signal is received, and when another earthquake signal is received, the controller 1 sends an emergency stop signal to the conveying system, and the conveying system stops conveying after receiving the signal.
[0076] From the above description, it can be seen that the above-mentioned embodiments of the present application achieve the following technical effects:
[0077] By connecting the fire monitoring system 5 with the controller 1, and further realizing linkage with the conveying system 17, when a fire or earthquake emergency occurs, the conveying system is stopped in time, which has the technical effect of reducing safety hazards and avoiding greater losses.
[0078] By connecting the fire monitoring system 5 with the controller 1, and further realizing linkage with the conveying system 17, by setting the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line, and simultaneously setting the transverse conveying line 22 to intersect the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line, when a fire occurs, the goods are transported away in time after the personnel are evacuated, avoiding loss of goods.
[0079] By setting the discrimination module 16, when an earthquake occurs, it is determined whether to stop conveying, conveying, or conveying to which according to the earthquake degree, and when a fire occurs, it is determined whether to stop conveying, conveying, or conveying to which according to the fire degree, which has the technical effect of maximizing safety while minimizing losses.
[0080] By setting the empty land 18 and the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line, and simultaneously setting the transverse conveying line 22 to intersect the first longitudinal conveying line, the second longitudinal conveying line and the Nth longitudinal conveying line, and simultaneously setting the planning module to achieve better conveying route planning in response to fires and earthquakes, which has the technical effect of avoiding greater losses.
[0081] The above merely provides the preferred embodiments of the present application, and is not used to limit the present application. For those skilled in the art, the present application can have various modifications and changes. Any modifications, equivalent replacements, improvements, etc. made within the principles and technical scope of the present application shall fall into the scope of the present application.
Claims
1. A transport system for responding to earthquakes and fires, characterized in that, include: The residential area includes several factory buildings; Fire monitoring system, wherein the fire detection system is installed in each factory building; An earthquake monitoring system is installed in each factory building; A material handling system, wherein the material handling system is installed in the factory building; The controller is connected to the fire monitoring system, the earthquake monitoring system, and the transport system. The controller includes a central processing unit (CPU), a fire monitoring system control module, an earthquake monitoring system control module, a transport system control module, a comparison module, an information storage module, a route planning module, a fire extinguishing system control module, and a discrimination module. Each of these modules is connected to the CPU. The fire monitoring system and earthquake monitoring system in the factory building are set up in five points. The fire monitoring system and earthquake monitoring system are set at the center of each room. Each room is divided into four equal parts along the center line of the side line. The fire monitoring system and earthquake monitoring system are set at the center of each part. When an earthquake occurs, the earthquake monitoring system detects it promptly, and the controller stops the handling system from operating immediately. When a fire occurs, the fire monitoring system detects it promptly, and the controller stops the handling system from operating immediately. The discrimination module is used to discriminate the earthquake state: When the earthquake monitoring systems in at least two of the first, second, and Nth rooms detect earthquake signals, the controller will stop the transport system in time to evacuate personnel. When the earthquake monitoring system detects earthquake signals at least three times in each of the first, second, and Nth rooms, the controller will control the transport system to move the goods to an open area after the personnel have been evacuated. The route planning module is used to plan the transport route in real time when a fire occurs. When the fire monitoring system detects a fire, the controller controls the route planning module to perform route planning. When the fire monitoring system detects a fire at two or more of the five points, the route planning module will plan the transport route to move the goods to the other five points where no fire has occurred. When a fire is detected by the fire monitoring system at more than two of the five locations, the route planning module will plan the transport route to move the goods out of the room. The first room is moved out along the first longitudinal transport line, the second room is moved out along the second longitudinal transport line, the Nth room is moved out along the Nth longitudinal transport line, and after being moved out, the goods are moved to an open space or along the transverse transport line to another first, second, or Nth room that has not been affected by a fire. The usage of a transport system for earthquake and fire response includes the following steps: Step 1: Monitor the fire status of the factory building in real time through the fire monitoring system and the seismic status of the factory building in real time through the seismic monitoring system; Step 2: When the fire monitoring system detects a fire at the factory location or the earthquake monitoring system detects an earthquake at the factory location, the system reports an emergency signal to the controller; Step 3: The controller determines whether it is an earthquake or a fire. If it is a fire signal, it identifies the signal and sends an emergency stop command to the room that sent the signal. The transport system stops transporting after receiving the command. Step 4: When an earthquake signal is received, the controller determines whether another earthquake signal has been received. When another earthquake signal is received, the controller box conveying system sends an emergency stop signal, and the conveying system stops conveying after receiving the signal.
2. The transport system for responding to earthquakes and fires as described in claim 1, characterized in that, The factory building includes a first room, a second room, and an Nth room. The first room is equipped with a fire monitoring system, an earthquake monitoring system, a handling system, and a fire extinguishing system. The second room is equipped with a fire monitoring system, an earthquake monitoring system, a handling system, and a fire extinguishing system. The Nth room is equipped with a fire monitoring system, an earthquake monitoring system, a handling system, and a fire extinguishing system.
3. The transport system for responding to earthquakes and fires as described in claim 1, characterized in that, It also includes an open space, which is connected to the first room via a first longitudinal transport line, the open space is connected to the second room via a second longitudinal transport line, the Nth room is connected via an Nth longitudinal transport line, and the first, second, and Nth longitudinal transport lines are connected by a transverse transport line.
4. The transport system for responding to earthquakes and fires as described in claim 3, characterized in that, A fire extinguishing system is provided at the intersection of the transverse transport line with the first longitudinal transport line, the second longitudinal transport line, and the Nth longitudinal transport line.
5. The transport system for responding to earthquakes and fires as described in claim 1, characterized in that, The route planning module is used to plan the transport route in real time when an earthquake occurs. When the earthquake monitoring system detects an earthquake signal at least three times in each of the first, second, and Nth rooms, after the personnel have been evacuated, the controller controls the conveying system to move the goods to the open space along the first longitudinal conveying line, the second longitudinal conveying line, and the Nth bus conveying line.
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