Aerial work platform safety protection method and device and aerial work platform
By installing pressure sensors in safety shoes, the operation status of workers wearing safety shoes can be detected and confirmed in real time, solving the problem of the inability to identify safety shoes in existing technologies and improving the safety of high-altitude operations.
Patent Information
- Application Number
- CN202411326076.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2044-09-23
AI Technical Summary
Existing technology is unable to identify whether workers working at heights are wearing safety shoes, resulting in a low safety factor in the operation.
By installing pressure sensors in safety shoes, the pressure information of the safety shoes can be detected in real time to determine whether a user is wearing them. The processor can then confirm the number of operators and their safety status, and implement emergency safety measures and issue early warnings.
It effectively improves the safety of working at heights, ensures that operators wear safety shoes, and promptly identifies potential safety risks and takes measures.
Smart Images

Figure CN119330268B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of aerial work platforms, and in particular to an aerial work platform safety protection method and device, an aerial work platform and a storage medium. BACKGROUND
[0002] Aerial work, for example aerial work platform vehicles, is usually composed of a vehicle chassis part, a rotating platform part, a telescopic arm part (for lifting the platform), and an aerial work platform. When working, the operator enters the aerial work platform, and then moves the platform to the aerial work point through the operation part set in the platform to carry out work on the part to be repaired and constructed. When working on the aerial work platform, safety shoes are often worn to protect personal safety.
[0003] However, in the prior art, the detection of safety shoes cannot identify whether the user wears safety shoes when working at high altitude, and cannot guarantee the safety of the operator, with a low work safety factor. SUMMARY
[0004] The purpose of the embodiments of the present application is to provide an aerial work platform safety protection method, device, aerial work platform and storage medium.
[0005] In order to achieve the above-mentioned purpose, the first aspect of the present application provides an aerial work platform safety protection method, comprising:
[0006] After starting the real-time pressure aerial work platform, a login interface is displayed;
[0007] After the user successfully logs in through the real-time pressure login interface, an association interface is displayed;
[0008] The first number of personnel input by the real-time pressure user through the real-time pressure association interface is obtained;
[0009] The pressure information fed back by the safety shoes is obtained;
[0010] The second number of personnel wearing real-time pressure safety shoes is determined according to the real-time pressure;
[0011] In the case where the first number of personnel of the real-time pressure and the second number of personnel of the real-time pressure are consistent, it is determined that all the workers of the real-time pressure aerial work platform wear real-time pressure safety shoes;
[0012] In the case where the first number of personnel of the real-time pressure and the second number of personnel of the real-time pressure are inconsistent, it is determined that at least one of the workers of the real-time pressure aerial work platform does not wear real-time pressure safety shoes, and a subsequent safety confirmation operation is started.
[0013] In the embodiment of the present application, the real-time pressure determines the number of second persons wearing the real-time pressure safety shoes according to the real-time pressure, which comprises: determining the left foot pressure and the right foot pressure of the safety shoes under each code according to the real-time pressure; for any one safety shoe under a code, if the sum of the left foot pressure and the right foot pressure of the real-time pressure is greater than or equal to the preset pressure threshold, it is determined that a user wears the real-time pressure safety shoes; for any one safety shoe under a code, if the sum of the left foot pressure and the right foot pressure of the real-time pressure is less than the preset pressure threshold of the real-time pressure, it is determined that no user wears the real-time pressure safety shoes.
[0014] In the embodiment of the present application, the real-time pressure obtains the first number of persons input by the real-time pressure user through the real-time pressure association interface, which further comprises: obtaining the tool expected weight input by the real-time pressure user through the real-time pressure association interface; the real-time pressure starts the subsequent safety confirmation operation, which comprises: determining the sum of the expected weight of the first number of persons and the tool expected weight of the real-time pressure; obtaining the sensor weight of the weighing sensor of the aerial work platform; in the case that the sum of the real-time pressure is less than the sensor weight of the real-time pressure, the personnel confirmation information is sent to the man-machine interface to make the user confirm whether the first number of persons is input incorrectly; in the case that the user feeds back through the man-machine interface of the real-time pressure that the number of persons is not input incorrectly, the current process data is recorded.
[0015] In the embodiment of the present application, the real-time pressure method further comprises: periodically obtaining the real-time pressure actively transmitted by the real-time pressure safety shoes for any one safety shoe; in the case that the real-time pressure is not received for more than a preset time length, it is determined that the user wearing the real-time pressure safety shoes may have a work risk; the real-time pressure safety shoes are controlled to start the emergency safety measure, and the real-time pressure emergency safety measure comprises at least one of the real-time pressure safety shoes increasing the magnetic force and the safety belt of the real-time pressure safety shoes being tightened.
[0016] In the embodiment of the present application, the real-time pressure method further comprises: for any one safety shoe, obtaining the positioning information of the real-time pressure safety shoes, and the real-time pressure positioning information comprises the geographic position of the real-time pressure safety shoes; determining the electronic fence information where the real-time pressure safety shoes are currently located according to the real-time pressure geographic position; judging whether the user wearing the real-time pressure safety shoes is in a prohibited entry area according to the real-time pressure electronic fence information; in the case that it is determined that the user wearing the real-time pressure safety shoes is in the prohibited entry area, the corresponding early warning information is sent to the user wearing the real-time pressure safety shoes.
[0017] In the embodiments of the present application, the real-time pressure positioning information further comprises a height between the real-time pressure safety shoes and the ground, and the real-time pressure method further comprises: acquiring a working height of the real-time pressure aerial work platform; and in a case where the height between the real-time pressure safety shoes and the ground is greater than the real-time pressure working height, determining that there is a safety hazard in the current work, and sending corresponding early warning information to a user wearing the real-time pressure safety shoes.
[0018] In the embodiments of the present application, the real-time pressure method further comprises: for any one safety shoe, acquiring a real-time pressure inclination angle of the real-time pressure safety shoe; in a case where the real-time pressure inclination angle is greater than a preset angle threshold, and a time during which the real-time pressure inclination angle is greater than the real-time pressure preset angle threshold exceeds a preset time length, determining whether it is a non-foot supporting state according to the real-time pressure; and in a case where it is determined to be the non-foot supporting state, sending corresponding early warning information to a user wearing the real-time pressure safety shoes to prompt the user wearing the real-time pressure safety shoes that the real-time pressure aerial work platform is not leveled.
[0019] The second aspect of the present application provides a safety protection device for an aerial work platform, comprising:
[0020] a memory configured to store instructions;
[0021] a processor configured to call real-time pressure instructions from the real-time pressure memory and capable of implementing any of the above-mentioned real-time pressure safety protection methods for an aerial work platform when executing the real-time pressure instructions.
[0022] The third aspect of the present application provides a machine readable storage medium, which stores instructions thereon, and the instructions, when executed by a processor, cause the real-time pressure processor to be configured to execute the above-mentioned safety protection method for an aerial work platform.
[0023] The fourth aspect of the present application provides an aerial work platform comprising the above-mentioned safety protection device for an aerial work platform.
[0024] In the present solution, the detection of the wearing of safety shoes by an operator and the confirmation of the number of operators can be achieved by installing a pressure sensor in the safety shoes, thereby effectively improving the safety of aerial work.
[0025] Other features and advantages of the embodiments of the present application will be described in detail in the following specific implementation part. BRIEF DESCRIPTION OF DRAWINGS
[0026] The accompanying drawings are included to provide a further understanding of the embodiments of the present application, and constitute a part of the specification, and are used together with the following specific implementation part to explain the embodiments of the present application, but do not constitute a limitation on the embodiments of the present application. In the drawings:
[0027] Figure 1A flowchart of a method for protecting a work platform is shown.
[0028] Figure 2 A work environment diagram is shown.
[0029] Figure 3 A flowchart of a method for protecting a work platform is shown.
[0030] Figure 4 An internal structure diagram of a computer device is shown. DETAILED DESCRIPTION
[0031] To make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. It should be understood that the specific embodiments described herein are merely used to explain and illustrate the embodiments of the present application and should not be used to limit the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort belong to the scope of protection of the present application.
[0032] Figure 1 A flowchart of a method for protecting a work platform is shown. The method for protecting the work platform comprises the following steps:
[0033] In step 102, a login interface is displayed after the work platform is started.
[0034] In step 104, an association interface is displayed after the user successfully logs in through the login interface.
[0035] In step 106, a first number of personnel input by the user through the association interface is obtained.
[0036] In step 108, pressure information fed back by the safety shoes is obtained.
[0037] In step 110, a second number of personnel wearing the safety shoes is determined according to the pressure information.
[0038] In step 112, it is determined that all the personnel of the work platform wear the safety shoes when the first number of personnel is consistent with the second number of personnel.
[0039] In step 114, it is determined that at least one of the personnel of the work platform does not wear the safety shoes when the first number of personnel is inconsistent with the second number of personnel, and a subsequent safety confirmation operation is started.
[0040] In the embodiment, the aerial work platform can refer to an aerial work platform vehicle, and can also refer to other aerial work platforms. After the aerial work platform is started, a login interface can be popped up on the display screen of the display device. A user can input an account and a password through the login interface, and then complete a login operation for a system, an APP or a specified webpage. Then, after the user successfully logs in through the login interface, an association interface is displayed on the interface. The user can input a number of personnel who will wear safety shoes, that is, a first number of personnel, through the association interface.
[0041] In one embodiment, as shown in a working environment schematic diagram. Normally, each user needs to wear safety shoes when performing aerial work for work safety. A pressure sensor is embedded in the inside of the sole of each safety shoe. When the user wears safety shoes and stands on the platform, the pressure sensor installed on the safety shoes can detect pressure and transmit the detected pressure to the working platform app, so that the effective duration of the user wearing safety shoes can also be counted. Therefore, the processor can obtain the pressure information fed back by the safety shoes, and then determine the second number of personnel wearing safety shoes according to the pressure information. Figure 2 In one embodiment, determining the second number of personnel wearing safety shoes according to the pressure information includes: determining the left foot pressure and the right foot pressure of the safety shoes under each code according to the pressure information; for the safety shoes under any one code, in the case that the sum of the left foot pressure and the right foot pressure is greater than or equal to a preset pressure threshold, it is determined that a user wears safety shoes; for the safety shoes under any one code, in the case that the sum of the left foot pressure and the right foot pressure is less than the preset pressure threshold, it is determined that no user wears safety shoes.
[0042]
[0043] Specifically, each pair of labor protection shoes can be coded in advance. For example, No. 1, No. 2, etc. Then distinguish the left foot and the right foot of each labor protection shoe. For example, if the pressure value detected by the left foot of No. 1 labor protection shoes, the number is FL1, and the pressure detected by the right foot of No. 1 labor protection shoes is FR1. In this way, the processor can distinguish the pressure value of which pair of labor protection shoes based on the pressure information transmitted by the labor protection shoes, and can know the left foot pressure and the right foot pressure of the pair of labor protection shoes. Therefore, after determining the left foot pressure and the right foot pressure of each coded labor protection shoes according to the pressure information, for any one coded labor protection shoes, the processor can determine whether the user is wearing the pair of labor protection shoes based on the pressure sum between the left foot pressure and the right foot pressure of each coded labor protection shoes. Specifically, in the case where the sum of the left foot pressure and the right foot pressure is greater than or equal to the preset pressure threshold, the processor can determine that the user is wearing the labor protection shoes. Conversely, in the case where the sum of the left foot pressure and the right foot pressure is less than the preset pressure threshold, the processor can determine that the user is not wearing the labor protection shoes. In one specific embodiment, the preset pressure threshold can be set to 40 kg. In this way, the processor can determine the actual number of people wearing the labor protection shoes based on the obtained pressure information transmitted by all the labor protection shoes.
[0044] Then, the first number of people and the second number of people can be compared. If the first number of people and the second number of people are consistent, it means that the number of people actually wearing the labor protection shoes is the same as the number of people selected to wear the labor protection shoes before. Conversely, if the first number of people and the second number of people are inconsistent, it means that there is a safety risk during the on-site operation. Usually, when the first number of people and the second number of people are inconsistent, the actual situation is that the first number of people is greater than the second number of people, which indicates that the number of people actually wearing the labor protection shoes is less than the number of people selected to wear the labor protection shoes before, that is, there is a person who does not wear the labor protection shoes when the operating personnel is performing the high-altitude operation. That is, in this case, it can be determined that at least one person on the high-altitude operation platform does not wear the labor protection shoes, and then the subsequent safety confirmation operation can be started.
[0045] In one embodiment, obtaining the first number of people input by the user through the association interface further includes: obtaining the tool expected weight input by the user through the association interface. Starting the subsequent safety confirmation operation includes: determining the sum of the expected personnel weight of the first number of people and the tool expected weight; obtaining the sensor weight of the weighing sensor of the high-altitude operation platform; in the case where the sum is less than the sensor weight, sending the personnel confirmation information to the human-computer interaction interface to enable the user to confirm whether the first number of people is input incorrectly; in the case where the user feeds back through the human-computer interaction interface that the number of people is not input incorrectly, recording the current process data.
[0046] In the embodiment, the user can also input the tool estimated weight through the association interface. The tool estimated weight includes the total weight of the materials and tools needed by the user during the aerial work. The weight can be determined and input by the user. In the case that the first number of people and the second number of people are inconsistent, it is determined that at least one of the workers of the aerial work platform does not wear safety shoes, and the subsequent safety confirmation operation needs to be started. The safety confirmation operation includes: first, determining the sum between the total estimated weight of all users who need to wear safety shoes and the tool estimated weight according to the first number of people input by the user and the tool estimated weight. There is a weighing sensor on the aerial work platform, and the processor can obtain the sensor data transmitted by the weighing sensor. Then, the sum between the estimated weight of the first number of people and the tool estimated weight is compared with the sensor weight of the weighing sensor of the aerial work platform. If the sum is less than the sensor weight, the personnel confirmation information is sent to the man-machine interface of the display device, that is, the user needs to reconfirm whether the first number of people input is incorrect. If the user confirms that the first number of people input is correct, it means that there is indeed an operator who does not wear safety shoes during the aerial work. At this time, the current process data can be recorded. In case of subsequent safety accidents, such as personnel injury accidents, the recorded process data can be used as a basis for judging the responsibility of subsequent accidents. Conversely, after the personnel confirmation information is sent to the man-machine interface of the display device, if the user confirms that the first number of people input is indeed incorrect, the user can re-input the correct first number of people through the man-machine interface, and then execute the step of judging whether the first number of people and the second number of people are consistent again. At this time, if the first number of people and the second number of people are consistent, it means that the operators currently performing the aerial work have all worn safety shoes.
[0047] In one embodiment, the method further comprises: periodically obtaining the real-time pressure actively transmitted by the safety shoes for any one safety shoe; in the case that the real-time pressure is not received for more than a preset time length, determining that the user wearing the safety shoes may have a work risk; controlling the safety shoes to start an emergency safety measure, and the emergency safety measure includes at least one of increasing the magnetic force of the safety shoes and tightening the safety belt of the safety shoes.
[0048] In the embodiment, the processor can periodically acquire the real-time pressure transmitted by the safety shoes for any one of the safety shoes. That is, under normal circumstances, the safety shoes will automatically periodically transmit the detected pressure to the processor. If the processor does not receive the real-time pressure transmitted by the safety shoes for more than a preset time period, the processor can determine that the user wearing the safety shoes may have a work risk, such as the user may fall or fall, etc. At this time, the processor can control the safety shoes to start the emergency safety measures. The emergency safety measures include at least one of the safety shoes increasing the magnetic force and the safety belt of the safety shoes being tightened. Specifically, when the distance between the left foot and the right foot of the safety shoes is greater than 200 mm, the magnetic force can be controlled to be turned on, and the safety shoes are attracted to the platform.
[0049] In one embodiment, the method further comprises: for any one of the safety shoes, acquiring positioning information of the safety shoes, the positioning information comprising a geographic position of the safety shoes; determining electronic fence information where the safety shoes are currently located according to the geographic position; determining whether the user wearing the safety shoes is in a prohibited entry area according to the electronic fence information; and sending corresponding warning information to the user wearing the safety shoes in the case of determining that the user wearing the safety shoes is in the prohibited entry area.
[0050] In the embodiment, the processor can acquire the positioning information of the safety shoes for any one of the safety shoes. That is, the safety shoes are provided with a positioning module to realize positioning. The safety shoes can actively send the positioning information to the processor, or the safety shoes can transmit the positioning information to the processor in response to a request initiated by the processor. After acquiring the positioning information of the safety shoes, the processor can determine the electronic fence information where the safety shoes are currently located according to the geographic position. The positioning information comprises a geographic position of the safety shoes. According to the geographic position, the electronic fence information where the safety shoes are currently located can be determined, and then whether the user wearing the safety shoes is in a prohibited entry area, such as a dangerous area, an area where high-altitude work is prone to tipping due to an unsteady ground, etc. can be determined according to the electronic fence information. In the case of determining that the user wearing the safety shoes is in the prohibited entry area according to the electronic fence information, the processor can send corresponding warning information to the user wearing the safety shoes to remind the user to exit the area.
[0051] In one embodiment, the positioning information further comprises a height between the safety shoes and the ground. The method further comprises: acquiring a working height of the high-altitude work platform; and determining that there is a security risk in the current work in the case that the height between the safety shoes and the ground is greater than the working height, and sending corresponding warning information to the user wearing the safety shoes.
[0052] In this embodiment, the positioning module of the safety shoes can also determine the height between the safety shoes and the ground. Then, the processor can obtain the working height of the aerial work platform. The processor can obtain the working height of the aerial work platform through the amplitude angle sensor and / or the pull wire sensor installed on the aerial work platform. Further, the processor can compare the height between the safety shoes and the ground with the working height of the aerial work platform. In the case that the height between the safety shoes and the ground is greater than the working height, the processor can determine that there is a security risk in the current work. For example, the operator can place a stool or a ladder on the aerial work platform and stand on the stool or the ladder to work illegally. Therefore, the processor can send corresponding warning information to the user wearing the safety shoes to remind the user that there is a security risk in the current work. Further, the current operation data can also be saved, and if an accident occurs later, the recorded data can be retrieved through the background to analyze the accident responsibility. Further, the accuracy of the amplitude angle sensor and / or the pull wire sensor of the aerial work platform can also be checked by comparing the height between the safety shoes and the ground with the working height of the aerial work platform.
[0053] In one embodiment, the method further comprises: obtaining the inclination angle of the safety shoes in real time for any one safety shoe; in the case that the inclination angle is greater than a preset angle threshold and the time during which the inclination angle is greater than the preset angle threshold exceeds a preset time length, determining whether it is a non-foot-standing state according to the pressure information; and in the case that it is determined to be a non-foot-standing state, sending corresponding warning information to the user wearing the safety shoes to prompt the user wearing the safety shoes that the aerial work platform is not leveled.
[0054] As shown in Figure 3 In this embodiment, an inclination sensor is arranged on the safety shoe body to detect the inclination angle of the safety shoes. The processor can obtain the inclination angle of each safety shoe in real time. For any one safety shoe, in the case that the inclination angle of the safety shoe is greater than a preset angle threshold and the time during which the inclination angle of the safety shoe is greater than the preset angle threshold exceeds a preset time length, the processor can determine whether the user wearing the safety shoe is in a non-foot-standing state based on the pressure information transmitted by the safety shoe. For example, if the pressure value of the safety shoe is greater than 40 kg, it can be determined that the user is wearing the safety shoe and the user is in a non-foot-standing state. Therefore, in the case that the processor determines that it is a non-foot-standing state, corresponding warning information can be sent to the user wearing the safety shoe to prompt the user wearing the safety shoe that the aerial work platform is not leveled. Similarly, the inclination angle detected by the inclination sensor of the safety shoe can also be used to verify whether the inclination sensor on the aerial work platform is abnormal. For example, if the data detected by the two inclination sensors is different, it means that one of them is abnormal, and at this time, a rechecking operation can be performed to determine which inclination sensor is abnormal.
[0055] In this solution, by installing pressure sensors in safety shoes, it is possible to detect whether operators are wearing safety shoes and confirm the number of operators, effectively improving the safety of high-altitude operations.
[0056] Figure 1 FIG. 1 is a flow chart of a method for protecting a high-altitude work platform in one embodiment. It should be understood that although Figure 1 The steps in the flowchart are shown in sequence as indicated by the arrows, but these steps are not necessarily executed in the order indicated by the arrows. Unless otherwise specified in this document, there is no strict order restriction for the execution of these steps, and these steps can be executed in other orders. In addition, Figure 1 At least part of the steps may include multiple sub-steps or multiple stages. These sub-steps or stages are not necessarily executed at the same time, but can be executed at different times. The execution order of these sub-steps or stages is not necessarily sequential, but can be executed in turn or alternately with other steps or at least part of the sub-steps or stages of other steps.
[0057] In one embodiment, a safety protection device for an aerial work platform is provided, comprising:
[0058] a memory configured to store instructions;
[0059] The processor is configured to call the instructions from the memory and implement the aerial work platform safety protection method according to any one of the above embodiments when executing the instructions.
[0060] The processor contains a kernel, which retrieves the corresponding program unit from the memory. One or more kernels can be set, and the safety protection method of the aerial work platform can be implemented by adjusting the kernel parameters.
[0061] The memory may include non-permanent memory in a computer-readable medium, random access memory (RAM) and / or non-volatile memory, such as read-only memory (ROM) or flash RAM, and the memory includes at least one memory chip.
[0062] An embodiment of the present application provides a storage medium on which a program is stored. When the program is executed by a processor, the above-mentioned aerial work platform safety protection method is implemented.
[0063] An embodiment of the present application provides a processor, which is used to run a program, wherein the program executes the above-mentioned aerial work platform safety protection method when running.
[0064] In one embodiment, a computer device, which can be a server, is provided, and an internal structure diagram of the computer device can be as shown in FIG. 1. Figure 4 The computer device includes a processor A01, a network interface A02, a memory (not shown in the figure) and a database (not shown in the figure) connected through a system bus. Among them, the processor A01 of the computer device is configured to provide computing and control capabilities. The memory of the computer device includes an internal memory A03 and a non-volatile storage medium A04. The non-volatile storage medium A04 stores an operating system B01, a computer program B02 and a database (not shown in the figure). The internal memory A03 provides an environment for the operating system B01 and the computer program B02 in the non-volatile storage medium A04 to run. The network interface A02 of the computer device is configured to communicate with an external terminal through a network connection. The computer program B02 has realized a high-altitude work platform safety protection method when executed by the processor A01.
[0065] Those skilled in the art can understand that Figure 4 The structure shown in FIG. 1 is only a block diagram of part of the structure related to the scheme of the present application, and does not constitute a limitation on the computer device to which the scheme of the present application is applied. The specific computer device can include more or fewer components than those shown in the figure, or combine certain components, or have a different arrangement of components.
[0066] The embodiments of the present application provide a computer (electronic) device, which includes a processor, a memory, and a program stored in the memory and executable on the processor. When the processor executes the program, the steps of any one of the high-altitude work platform safety protection methods are implemented.
[0067] The present application also provides a computer program product adapted to execute the program initialized with the steps of the high-altitude work platform safety protection method when executed on a data processing device.
[0068] Those skilled in the art should understand that the embodiments of the present application can be provided as a method, a system or a computer program product. Therefore, the present application can be in the form of an entirely hardware embodiment, an entirely software embodiment, or an embodiment combining software and hardware aspects. Moreover, the present application can be in the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.
[0069] The computer program instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer-implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart block or blocks. Figure 1 one or more flowcharts and / or blocks in the flowcharts and / or combination thereof. Figure 1 one or more flowcharts and / or blocks in the flowcharts and / or combination thereof.
[0070] The computer program instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer-implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart block or blocks. Figure 1 one or more flowcharts and / or blocks in the flowcharts and / or combination thereof. Figure 1 one or more flowcharts and / or blocks in the flowcharts and / or combination thereof.
[0071] The computer program instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer-implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart block or blocks. Figure 1 one or more flowcharts and / or blocks in the flowcharts and / or combination thereof. Figure 1 one or more flowcharts and / or blocks in the flowcharts and / or combination thereof.
[0072] In one typical configuration, the computing device includes one or more processors (CPUs), input / output interfaces, network interfaces, and memory.
[0073] The memory can include non-persistent memory and / or volatile memory, such as a random access memory (RAM) including a cache area for the temporary storage of data. The memory can also include non-volatile memory, such as read only memory (ROM) for storing structural information and / or instruction code to boot an operating system. The memory can also include solid state non-volatile memory (e.g., flash memory), disk drives, disk arrays, optical storage devices, tape storage devices, etc.
[0074] Computer-readable media includes permanent and non-permanent, movable and non-movable media that can implement information storage by any method or technology. The information can be computer-readable instructions, data structures, program modules or other data. Examples of computer storage media include, but are not limited to, phase-change memory (PRAM), static random access memory (SRAM), dynamic random access memory (DRAM), other types of random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), flash memory or other memory technologies, compact disc read-only memory (CD-ROM), digital versatile disc (DVD) or other optical storage, magnetic cassette, magnetic tape disk storage or other magnetic storage devices, or any other non-transmission medium that can be used to store information accessible to a computing device. According to the definition herein, computer-readable media does not include transitory media such as modulated data signals and carriers.
[0075] It should also be noted that the terms "comprising", "containing", or any other variant thereof are intended to cover a non-exclusive inclusion, such that a process, method, article or apparatus that comprises a list of elements does not only include those elements, but can also include other elements not expressly listed or inherent to such process, method, article or apparatus. Without more limitations, the element defined by the statement "comprising a" does not exclude the presence of additional identical elements in the process, method, article or apparatus that includes the element.
[0076] The above is only an embodiment of the present application and is not intended to limit the present application. For those skilled in the art, the present application can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the scope of claims of the present application.
Claims
1. A safety protection method for an aerial work platform, characterized in that: The method comprises: After the aerial work platform is started, a login interface is displayed; After the user successfully logs in through the login interface, the association interface is displayed; Obtaining a first number of personnel input by the user through the association interface; Obtain pressure information fed back by safety shoes; determining the number of second persons wearing the safety shoes according to the pressure information; When the first number of personnel is consistent with the second number of personnel, determining that all personnel of the aerial work platform are wearing the safety shoes; When the first number of personnel is inconsistent with the second number of personnel, it is determined that at least one of the personnel working on the aerial work platform is not wearing the safety shoes, and a subsequent safety confirmation operation is initiated.
2. The aerial work platform safety protection method according to claim 1, characterized in that: Determining the number of second persons wearing the safety shoes according to the pressure information includes: Determine the left foot pressure and the right foot pressure of the safety shoe under each code according to the pressure information; For the safety shoes under any coding, if the sum of the left foot pressure and the right foot pressure is greater than or equal to the preset pressure threshold, it is determined that the user is wearing the safety shoes; For the safety shoes under any coding, when the sum of the left foot pressure and the right foot pressure is less than the preset pressure threshold, it is determined that no user is wearing the safety shoes.
3. The aerial work platform safety protection method according to claim 1, characterized in that: The obtaining of the first number of personnel input by the user through the association interface further comprises: obtaining an estimated weight of a tool input by the user through the association interface; The subsequent safety confirmation operation of starting includes: determining a sum of an estimated weight of the first number of personnel and an estimated weight of the tool; Obtaining a sensor weight of a weighing sensor of the aerial work platform; When the total is less than the weight of the sensor, a personnel confirmation message is sent to the human-computer interaction interface to allow the user to confirm whether the first number of personnel is entered incorrectly; When the user confirms through the human-computer interaction interface that the number of personnel is not input incorrectly, the current process data is recorded.
4. The aerial work platform safety protection method according to claim 1, characterized in that: The method further comprises: For any safety shoe, periodically obtain the real-time pressure actively transmitted by the safety shoe; If the real-time pressure is not received for a preset period of time, determining that the user wearing the safety shoes may be at risk at work; The safety shoe is controlled to start an emergency safety measure, wherein the emergency safety measure includes at least one of increasing the magnetic force of the safety shoe and tightening the safety belt of the safety shoe.
5. The aerial work platform safety protection method according to claim 1, characterized in that: The method further comprises: For any safety shoe, obtain the positioning information of the safety shoe, where the positioning information includes the geographical location of the safety shoe; Determine the electronic fence information where the safety shoes are currently located according to the geographical location; Determining whether the user wearing the safety shoes is in a prohibited area according to the electronic fence information; When it is determined that the user wearing the safety shoes is in a prohibited area, a corresponding warning message is sent to the user wearing the safety shoes.
6. The aerial work platform safety protection method according to claim 5, characterized in that: The positioning information also includes the height between the safety shoes and the ground, and the method further includes: Obtaining the operating height of the aerial work platform; When the height between the safety shoes and the ground is greater than the working height, it is determined that there is a safety hazard in the current operation, and a corresponding warning message is sent to the user wearing the safety shoes.
7. The aerial work platform safety protection method according to claim 1, characterized in that: The method further comprises: For any safety shoe, obtain the inclination angle of the safety shoe in real time; When the tilt angle is greater than a preset angle threshold, and the time for which the tilt angle is greater than the preset angle threshold exceeds a preset time period, determining whether the state is a non-foot-raising state according to the pressure information; When it is determined that the state is not to step on the foot, a corresponding warning message is sent to the user wearing the safety shoes to remind the user wearing the safety shoes that the aerial work platform is not leveled.
8. A safety protection device for an aerial work platform, characterized in that: include: a memory configured to store instructions; The processor is configured to call the instructions from the memory and implement the aerial work platform safety protection method according to any one of claims 1 to 7 when executing the instructions.
9. A machine-readable storage medium having instructions stored thereon, characterized in that: When the instruction is executed by a processor, the processor is configured to execute the aerial work platform safety protection method according to any one of claims 1 to 7.
10. An aerial work platform, characterized in that: Including the aerial work platform safety protection device according to claim 8.
Citation Information
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