Building engineering construction safety management system and method, terminal and medium

Through a construction project construction safety management system that collects construction data in real time and generates alarm instructions, the problem of untimely identification of safety hazards on the construction site is solved, more efficient safety management is achieved, and accident risks are reduced.

CN120258526AInactive Publication Date: 2025-07-04MEISHAN HUANTIAN CONSTR ENG GRP CO LTD
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Patent Information

Application Number
CN202510382799.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-07-04
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, the identification of safety hazards at construction sites depends on patrols by supervisors and cannot be carried out in real time, resulting in frequent safety accidents.

Method used

The construction safety management system of construction projects is adopted to collect construction data in real time, including the working status of the target equipment and the working distance between the staff and the target equipment, generate alarm commands and issue alarm signals, and dynamically adjust the collection and alarm frequency to improve accuracy and flexibility.

Benefits of technology

It realizes timely identification of potential safety risks, reduces risks caused by human negligence, and improves the safety and alarm accuracy of the construction site.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a building engineering construction safety management system and method, a terminal and a medium, and relates to the technical field of building engineering construction safety management. According to the main technical scheme, the system comprises an acquisition module, a first processing module, a second processing module and an alarm module, wherein the acquisition module is used for acquiring construction data of a construction area in real time; wherein the construction data comprises a working state and a safety distance of the target equipment, and a working distance between a worker and the target equipment; the first processing module is used for generating a first alarm instruction when the working distance is smaller than the safety distance; the second processing module is used for generating a second alarm instruction when the working state of the target equipment is the running state; the alarm module is used for sending out an alarm signal when receiving the first alarm instruction and the second alarm instruction. And the purposes of timely identifying and reminding field personnel to pay attention to potential safety risks, so as to take necessary measures, reduce the accident occurrence risk and improve the safety of a construction site are achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of construction engineering construction safety management, and particularly relates to a construction engineering construction safety management system, method, terminal and medium. Background Art

[0002] Construction engineering refers to the engineering entity formed by the construction of various housing buildings and their ancillary facilities and the installation of pipelines and equipment supporting them. Among them, "housing building" refers to a project with a roof, beams, columns, walls, foundation, and capable of forming an internal space to meet the needs of people's production, residence, study, and public activities.

[0003] Currently, by establishing a supervision mechanism for the construction process of construction engineering, third-party supervisors conduct inspections on the on-site construction, conduct safety hazard inspections on the construction equipment, construction progress, and construction safety guarantee measures of each project, and give early warnings to potential hazards that may cause safety accidents, so as to ensure construction safety.

[0004] However, with the continuous increase in the complexity of construction projects, relying solely on supervisors to give early warnings about construction safety hazards is not only limited by the capabilities of supervisors, but also supervisors cannot conduct inspections on the construction site in real time. Therefore, safety hazards cannot be identified in a timely manner, resulting in safety accidents. Summary of the Invention

[0005] The purpose of the present invention is to provide a construction engineering construction safety management system, method, terminal and medium, in order to achieve the goal of timely identifying and reminding on-site personnel to pay attention to potential safety risks, so as to take necessary measures to reduce the risk of accidents and improve the safety of the construction site.

[0006] To solve the above technical problems, the present invention adopts the following technical solutions:

[0007] In a first aspect, a construction engineering construction safety management system is provided, including a collection module, a first processing module, a second processing module, and an alarm module. The collection module is used to collect construction data of the construction area in real time; wherein, the construction data includes the working state and safety distance of the target equipment, and the working distance between the staff and the target equipment; the first processing module is used to judge whether the working distance is less than the safety distance; and when the working distance is less than the safety distance, generate a first alarm instruction; the second processing module is used to judge whether the working state of the target equipment is an operating state; and when the working state of the target equipment is an operating state, generate a second alarm instruction; the alarm module is used to send an alarm signal when receiving the first alarm instruction and the second alarm instruction.

[0008] A further solution is as follows: The construction project construction safety management system further includes a third processing module, a first execution module, and a second execution module; the third processing module is used to determine whether the working distance at the current moment is greater than the working distance at the previous moment; and when the working distance at the current moment is greater than the working distance at the previous moment, generate a collection frequency reduction instruction; and when the working distance at the current moment is less than or equal to the working distance at the previous moment, generate a collection frequency increase instruction; the first execution module is used to respond to the collection frequency reduction instruction to reduce the collection frequency of the collection module; the second execution module is used to respond to the collection frequency increase instruction to increase the collection frequency of the collection module.

[0009] A further solution is as follows: The third processing module is further used to obtain the second alarm instruction in real time; and when the second alarm instruction is obtained, determine whether the working distance at the current moment is greater than the working distance at the previous moment.

[0010] A further solution is as follows: The construction project construction safety management system further includes a fourth processing module, a third execution module, and a fourth execution module; the fourth processing module is used to determine whether the working distance at the current moment is greater than the working distance at the previous moment; and when the working distance at the current moment is greater than the working distance at the previous moment, generate an alarm frequency reduction instruction; and when the working distance at the current moment is less than or equal to the working distance at the previous moment, generate an alarm frequency increase instruction; the third execution module is used to respond to the alarm frequency reduction instruction to reduce the alarm frequency of the alarm module; the fourth execution module is used to respond to the alarm frequency increase instruction to increase the alarm frequency of the alarm module.

[0011] A further solution is as follows: The fourth processing module is further used to obtain the first alarm instruction in real time; and when the first alarm instruction is obtained, determine whether the working distance at the current moment is greater than the working distance at the previous moment.

[0012] In a second aspect, a construction project construction safety management method is provided. The construction project construction safety management method is applicable to the construction project construction safety management system described in the first aspect. The construction project construction safety management method includes the following operations: collecting construction data in the construction area in real time; where the construction data includes the working state and safety distance of the target device, and the working distance between the staff and the target device; generating a first alarm instruction when the working distance is less than the safety distance; generating a second alarm instruction when the working state of the target device is the operating state; and sending an alarm signal after receiving the first alarm instruction and the second alarm instruction.

[0013] In a third aspect, a terminal is provided, including a processor and a memory for storing instructions executable by the processor. Among them, the processor is configured to call the instructions stored in the memory to execute the construction project construction safety management method described in the second aspect.

[0014] In a fourth aspect, a computer-readable storage medium is provided, on which computer program instructions are stored. It is characterized in that when the computer program instructions are executed by a processor, the construction project construction safety management method described in the second aspect is implemented.

[0015] Compared with the prior art, the beneficial effects of the present invention are:

[0016] It is expected to be able to timely identify and remind on-site personnel to pay attention to potential safety risks, so as to take necessary measures to reduce the risk of accidents and improve the safety of the construction site.

[0017] Compared with the traditional method that relies on the inspection of supervisors, it reduces the dependence on personal capabilities and inspection frequencies, aiming to reduce the risks caused by human negligence.

[0018] An alarm signal is only issued when the target device is in an operating state and the working distance between the staff and the target device is less than the safety distance of the target device, reducing the false alarm risks when the target device is not in an operating state and the working distance between the staff and the target device is less than the safety distance of the target device, and when the target device is in an operating state and the working distance between the staff and the target device is greater than or equal to the safety distance of the target device, aiming to improve the accuracy of the alarm. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic electrical block diagram of a construction project construction safety management system in this embodiment. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0020] The present invention will be further described below with reference to the accompanying drawings.

[0021] Embodiment 1: This embodiment provides a construction project construction safety management system, as Figure 1As shown in the figure, it includes a collection module, a first processing module, a second processing module, and an alarm module. The collection module is used to collect the construction data of the construction area in real time. Among them, the construction data includes the working status and safety distance of the target equipment, and the working distance between the staff and the target equipment. The first processing module is used to judge whether the working distance is less than the safety distance; and when the working distance is less than the safety distance, generate a first alarm instruction. The second processing module is used to judge whether the working status of the target equipment is the operating state; and when the working status of the target equipment is the operating state, generate a second alarm instruction. The alarm module is used to send an alarm signal when receiving the first alarm instruction and the second alarm instruction.

[0022] Exemplarily, during the implementation process, the collection module is arranged in the construction area of the building project. So that the collection module can collect the construction data of the construction area in real time. The construction data includes the working status of the target equipment in the construction area, the safety distance of the target equipment, and the working distance between the staff and the target equipment in the construction area. Among them, the safety distance refers to the minimum distance that allows the staff to approach the target equipment when the target equipment is in the operating state, and this safety distance can be preset according to historical experience. The working status of the target equipment includes the operating state and the non-operating state. When the working status of the target equipment is the operating state, it is considered that the target equipment is in the open state. When the working status of the target equipment is the non-operating state, it is considered that the target equipment is in the closed state.

[0023] The first processing module is connected to the collection module by means of wire connection, wireless network connection, etc. The first processing module is used to obtain the construction data collected by the collection module in real time. After obtaining the construction data, the first processing module judges in real time whether the working distance between the staff and the target equipment is less than the safety distance of the target equipment. When the judgment result of the first processing module is that the working distance between the staff and the target equipment is less than the safety distance of the target equipment, the first processing module generates a first alarm instruction.

[0024] The second processing module is connected to the collection module by means of wire connection, wireless network, etc. The second processing module is used to obtain the construction data collected by the collection module in real time. After obtaining the construction data, the second processing module judges in real time whether the working status of the target equipment is the operating state. When the judgment result of the second processing module is that the working status of the target equipment is the operating state, the second processing module generates a second alarm instruction.

[0025] The alarm module is connected to both the first processing module and the second processing module through wire connection, wireless network, etc. The alarm module is used to obtain in real time the first alarm instruction generated by the first processing module and the second alarm instruction generated by the second processing module. And when the alarm module receives the first alarm instruction and the second alarm instruction simultaneously, the alarm module will immediately emit alarm signals such as sound and light. On the one hand, it is expected to timely identify and remind on-site personnel to pay attention to potential safety risks, so as to take necessary measures to reduce the risk of accidents and improve the safety of the construction site. On the other hand, compared with the traditional method that relies on the inspection of supervisors, it reduces the dependence on personal ability and inspection frequency, aiming to reduce the risk caused by human negligence. On the other hand, the alarm signal is only emitted when the target device is in operation and the working distance between the staff and the target device is less than the safety distance of the target device, reducing the false alarm risk when the target device is not in operation and the working distance between the staff and the target device is less than the safety distance of the target device, and when the target device is in operation and the working distance between the staff and the target device is greater than or equal to the safety distance of the target device, aiming to improve the alarm accuracy rate.

[0026] In this embodiment, as Figure 1 shown, the construction project construction safety management system further includes a third processing module, a first execution module and a second execution module; the third processing module is used to judge whether the working distance at the current moment is greater than the working distance at the previous moment; and when the working distance at the current moment is greater than the working distance at the previous moment, generate a collection frequency reduction instruction; and when the working distance at the current moment is less than or equal to the working distance at the previous moment, generate a collection frequency increase instruction; the first execution module is used to respond to the collection frequency reduction instruction to reduce the collection frequency of the collection module; the second execution module is used to respond to the collection frequency increase instruction to increase the collection frequency of the collection module.

[0027] Exemplarily, during the implementation process, the construction project construction safety management system further includes a third processing module, a first execution module and a second execution module.

[0028] Among them, the third processing module is connected to the acquisition module through wire connection, wireless network, etc. The third processing module is used to obtain the construction data collected by the acquisition module in real time. After obtaining the construction data, the third processing module marks the working distance between the staff and the target device at the previous moment as D1, and marks the working distance between the staff and the target device at the current moment as D2. At the same time, the third processing module is also used to judge in real time whether D2 is greater than D1. If D2 > D1, it is considered that the staff is moving away from the target device, and the risk may be decreasing. At this time, the third processing module generates a command to decrease the acquisition frequency. If D2 ≤ D1, it is considered that the staff is approaching the target device, and the risk may be increasing. At this time, the third processing module generates a command to increase the acquisition frequency.

[0029] The first execution module is connected to both the third processing module and the acquisition module through wire connection, wireless network, etc. When the first execution module responds to the acquisition frequency decrease command issued by the third processing module, the first execution module will adjust the working parameters of the acquisition module to reduce the data acquisition frequency of the acquisition module. It is expected to achieve the purpose of reducing the workload of unnecessary data collection in low-risk situations, thereby helping to save system resources.

[0030] The second execution module is connected to both the third processing module and the acquisition module through wire connection, wireless network, etc. When the second execution module responds to the acquisition frequency increase command issued by the third processing module, the second execution module will adjust the working parameters of the acquisition module to increase the data acquisition frequency of the acquisition module. In high-risk or increasing potential risk situations, it can monitor the on-site situation more frequently, with the expectation of providing more accurate position and status information, thereby improving the accuracy and response speed of the early warning system, and further better protecting the safety of on-site personnel.

[0031] By using the third processing module, the first execution module and the second execution module, the data acquisition frequency of the acquisition module can be dynamically adjusted according to the actual situation of the construction site, with the expectation of achieving both ensuring sufficient monitoring information when the risk is high and saving resources when the risk is low, so as to extend the service life of the equipment and reduce energy consumption.

[0032] In this embodiment, as Figure 1 shown, the third processing module is further used to obtain the second alarm instruction in real time; and when obtaining the second alarm instruction, judge whether the working distance at the current moment is greater than the working distance at the previous moment.

[0033] Exemplarily, during implementation, the above-mentioned third processing module is connected to the second processing module through wire connection, wireless network, etc. The third processing module is further configured to obtain in real time the second alarm instruction generated by the second processing module. When the third processing module obtains the second alarm instruction generated by the second processing module, it indicates that the target device is in an operating state. At this time, the third processing module then judges in real time whether D2 is greater than D1.

[0034] When the target device is in an operating state, the change in the working distance is monitored and responded to. This reduces the risk of misoperation of the third processing module when the target device fails and stops and the staff conducts maintenance and inspection. It is expected to ensure that the data acquisition frequency is increased only when needed, thereby reducing unnecessary resource consumption while ensuring timely monitoring and warning in high-risk situations.

[0035] In this embodiment, as Figure 1 shown, the construction engineering construction safety management system further includes a fourth processing module, a third execution module, and a fourth execution module; the fourth processing module is configured to judge whether the working distance at the current moment is greater than the working distance at the previous moment; and generate an alarm frequency reduction instruction when the working distance at the current moment is greater than the working distance at the previous moment; and generate an alarm frequency increase instruction when the working distance at the current moment is less than or equal to the working distance at the previous moment; the third execution module is configured to respond to the alarm frequency reduction instruction to reduce the alarm frequency of the alarm module; the fourth execution module is configured to respond to the alarm frequency increase instruction to increase the alarm frequency of the alarm module.

[0036] Exemplarily, during implementation, the construction engineering construction safety management system further includes a fourth processing module, a third execution module, and a fourth execution module.

[0037] Among them, the fourth processing module is connected to the acquisition module through wire connection, wireless network, etc. The fourth processing module is configured to obtain in real time the construction data acquired by the acquisition module. After obtaining the construction data, the fourth processing module marks the working distance between the staff and the target device at the previous moment as L1, and marks the working distance between the staff and the target device at the current moment as L2. At the same time, the fourth processing module is further configured to judge in real time whether L2 is greater than L1. If L2 > L1, it is considered that the staff is moving away from the target device and the risk may be decreasing. At this time, the fourth processing module generates an alarm frequency reduction instruction. If L2 ≤ L1, it is considered that the staff is approaching the target device and the risk may be increasing. At this time, the fourth processing module generates an alarm frequency increase instruction.

[0038] The third execution module is connected to both the fourth processing module and the acquisition module through wire connections, wireless networks, etc. When the third execution module responds to the alarm frequency reduction instruction issued by the fourth processing module, the third execution module will adjust the working parameters of the alarm module to reduce the alarm frequency of the alarm module. The aim is to reduce unnecessary alarm times in low-risk situations, thereby reducing the psychological burden on staff and saving system resources.

[0039] The fourth execution module is connected to both the fourth processing module and the acquisition module through wire connections, wireless networks, etc. When the fourth execution module responds to the alarm frequency increase instruction issued by the fourth processing module, the fourth execution module will adjust the working parameters of the alarm module to increase the alarm frequency of the alarm module. It can alarm more frequently in high-risk or increasing potential risk situations, aiming to remind on-site personnel to pay attention to safety more frequently, and thus better protect the safety of on-site personnel.

[0040] By using the fourth processing module, the third execution module, and the fourth execution module, the alarm frequency can be dynamically adjusted according to the actual risk situation at the construction site, aiming to provide sufficient warnings when the risk is high, reduce unnecessary alarms when the risk is low, and thus improve the flexibility and adaptability of the system.

[0041] In this embodiment, as Figure 1 shown, the fourth processing module is further configured to obtain the first alarm instruction in real time; and when the first alarm instruction is obtained, determine whether the working distance at the current moment is greater than the working distance at the previous moment.

[0042] Exemplarily, during the implementation process, the fourth processing module is connected to the first processing module through wire connections, wireless networks, etc. The fourth processing module is further configured to obtain the first alarm instruction generated by the first processing module in real time. When the fourth processing module obtains the first alarm instruction generated by the first processing module, it indicates that the working distance between the staff and the target device is less than the safety distance of the target device. At this time, the fourth processing module only then determines in real time whether L2 is greater than L1.

[0043] When the working distance between the staff and the target device is less than the safety distance of the target device, the change in the working distance is monitored and responded to. This reduces the risk of misoperation of the fourth processing module when the working distance between the staff and the target device is greater than the safety distance of the target device. The aim is to ensure that the alarm frequency of the alarm module is only increased when needed, thereby reducing unnecessary resource consumption and ensuring timely monitoring and early warning in high-risk situations.

[0044] Embodiment 2: This embodiment provides a construction project construction safety management method, which is applicable to the construction project construction safety management system described in the first aspect. The construction project construction safety management method includes the following operations: real-time collection of construction data in the construction area; wherein, the construction data includes the working state and safety distance of the target equipment, and the working distance between the staff and the target equipment; when the working distance is less than the safety distance, a first alarm instruction is generated; when the working state of the target equipment is the operating state, a second alarm instruction is generated; after receiving the first alarm instruction and the second alarm instruction, an alarm signal is issued. It is expected to achieve the purpose of timely identifying and reminding the on-site personnel to pay attention to potential safety risks, so as to take necessary measures to reduce the risk of accidents and improve the safety of the construction site.

[0045] This embodiment also records a terminal, including a processor and a memory, where the memory is used to store instructions executable by the processor; wherein, the processor is configured to call the instructions stored in the memory to execute the construction project construction safety management method described in Embodiment 2.

[0046] This embodiment also records a computer-readable storage medium, on which computer program instructions are stored. The computer program instructions are characterized in that when executed by a processor, they implement the construction project construction safety management method described in Embodiment 2.

[0047] 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 take the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware aspects. Moreover, the present application can take the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk memories, CD-ROMs, optical memories, etc.) containing computer-usable program code.

[0048] The present application is described with reference to the flowcharts and / or block diagrams of methods, devices (systems), and computer program products according to the embodiments of the present application. It should be understood that each process and / or block in the flowchart and / or block diagram can be implemented by computer program instructions, and the combination of processes and / or blocks in the flowchart and / or block diagram can also be implemented by computer program instructions. These computer program instructions can be provided to the processor of a general-purpose computer, a special-purpose computer, an embedded processor, or other programmable data processing devices to generate a machine, so that the instructions executed by the processor of the computer or other programmable data processing devices generate means for implementing the functions specified in Figure 1 one process or multiple processes and / or blocks Figure 1 one block or multiple blocks.

[0049] These computer program instructions can also be stored in a computer-readable memory that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer-readable memory produce a manufacture including instruction means that implement the functions specified in the flowchart(s) Figure 1 one or more flowcharts and / or block(s) Figure 1 or blocks.

[0050] These 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, whereby the instructions executed on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart(s) Figure 1 one or more flowcharts and / or block(s) Figure 1 or blocks.

[0051] Although the invention has been described with reference to several exemplary embodiments thereof, it is to be understood that the invention is not limited to the disclosed embodiments. Those skilled in the art can design numerous other modifications and embodiments that will fall within the spirit and scope of the principles disclosed herein. More specifically, various variations and improvements can be made to the components and / or arrangements of the subject combination layout within the scope of the disclosure, the drawings, and the claims. In addition to variations and improvements to the components and / or arrangements, other uses will be apparent to those skilled in the art.

Claims

1. A construction project construction safety management system, characterized in that, Including: A collection module for collecting construction data of a construction area in real time; wherein, the construction data includes the working state and safety distance of a target device, and the working distance between a staff member and the target device; A first processing module for determining whether the working distance is less than the safety distance; and generating a first alarm instruction when the working distance is less than the safety distance; A second processing module for determining whether the working state of the target device is an operating state; and generating a second alarm instruction when the working state of the target device is an operating state; An alarm module for emitting an alarm signal when receiving the first alarm instruction and the second alarm instruction.

2. The construction project construction safety management system according to claim 1, wherein: It further includes a third processing module, a first execution module and a second execution module; The third processing module is used for determining whether the working distance at the current moment is greater than the working distance at the previous moment; and generating a collection frequency reduction instruction when the working distance at the current moment is greater than the working distance at the previous moment; and generating a collection frequency increase instruction when the working distance at the current moment is less than or equal to the working distance at the previous moment; The first execution module is used for responding to the collection frequency reduction instruction to reduce the collection frequency of the collection module; The second execution module is used for responding to the collection frequency increase instruction to increase the collection frequency of the collection module.

3. The construction project construction safety management system according to claim 2, wherein: The third processing module is further used for obtaining the second alarm instruction in real time; and determining whether the working distance at the current moment is greater than the working distance at the previous moment when obtaining the second alarm instruction.

4. The construction project construction safety management system according to claim 1, wherein: It further includes a fourth processing module, a third execution module and a fourth execution module; The fourth processing module is used for determining whether the working distance at the current moment is greater than the working distance at the previous moment; and generating an alarm frequency reduction instruction when the working distance at the current moment is greater than the working distance at the previous moment; and generating an alarm frequency increase instruction when the working distance at the current moment is less than or equal to the working distance at the previous moment; The third execution module is used for responding to the alarm frequency reduction instruction to reduce the alarm frequency of the alarm module; The fourth execution module is used for responding to the alarm frequency increase instruction to increase the alarm frequency of the alarm module.

5. The construction project construction safety management system according to claim 4, wherein: The fourth processing module is further used for obtaining the first alarm instruction in real time; and determining whether the working distance at the current moment is greater than the working distance at the previous moment when obtaining the first alarm instruction.

6. A construction project construction safety management method, characterized in that, The construction project construction safety management method is applicable to the construction project construction safety management system according to any one of claims 1-5. The construction project construction safety management method includes the following operations: Collect construction data of the construction area in real time; wherein, the construction data includes the working status and safety distance of the target equipment, and the working distance between the staff and the target equipment; Generate a first alarm instruction when the working distance is less than the safety distance; Generate a second alarm instruction when the working status of the target equipment is the operating state; After receiving the first alarm instruction and the second alarm instruction, send out an alarm signal.

7. A terminal, characterized in that, It includes: A processor; A memory, which is used to store instructions executable by the processor; Wherein, the processor is configured to call the instructions stored in the memory to execute the construction project construction safety management method as described in claim 6.

8. A computer-readable storage medium having computer program instructions stored thereon, characterized in that, When the computer program instructions are executed by the processor, the construction project construction safety management method as described in claim 6 is implemented.

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