Method and device for determining fire-resisting separation area in building, and electronic equipment

By acquiring the initial 3D model of the building and determining the fire-resistant partition data according to the fire hazard category, the model is updated to calculate the fire-resistant partition area, thus solving the problem of quickly and accurately determining the fire-resistant partition area and improving engineering efficiency.

CN115457114BActive Publication Date: 2026-04-07STATE NUCLEAR ELECTRIC POWER PLANNING DESIGN & RES INST CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-26
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

How to quickly and accurately determine the fire-resistant partition area corresponding to different fire-resistant partition requirements in a building in order to prevent the rapid spread of fire and meet the fire-resistant partition requirements of various locations.

Method used

By acquiring the initial 3D model of the building, fire-resistant partition data between walls, ceilings and floors is determined according to the fire hazard category of each location. The initial 3D model is then updated to generate the target 3D model, and the total area of ​​each fire-resistant partition level is calculated.

Benefits of technology

It enables the rapid and accurate acquisition of the total area of ​​each fire-resistant partition in a building, improving the efficiency of determining the quantity of fire-resistant insulation materials.

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Abstract

This disclosure discloses a method, apparatus, and electronic device for determining the fire-resistant compartment area in a building, relating to the field of computer technology. The method includes: acquiring an initial three-dimensional model of the building; then, based on the fire hazard category of each location in the building, determining first fire-resistant compartment data corresponding to the walls and second fire-resistant compartment data corresponding to the floor slab between the ceiling and the floor; then, updating the initial three-dimensional model based on the first and second fire-resistant compartment data to obtain a target three-dimensional model; and finally, obtaining the total area corresponding to each fire-resistant compartment level from the target three-dimensional model. This allows for the rapid and accurate acquisition of the total area corresponding to each fire-resistant compartment level in a building, improving the efficiency of determining the quantity of fire-resistant insulation materials.
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Description

TECHNICAL FIELD

[0001] The present disclosure relates to the technical field of computer, and particularly relates to a method and device for determining fire-resisting separation area in a building and an electronic device. BACKGROUND

[0002] With the rapid development of the construction industry, in order to avoid the rapid spread of fire after the building catches fire due to the lack of fire-resisting separation materials in the building, thereby threatening human life. The fire-resisting separation requirements of each space in the building are different, and the required fire-resisting separation materials are also different. Therefore, how to quickly and accurately determine the fire-resisting separation area corresponding to different fire-resisting separation requirements in the building becomes a key research direction. SUMMARY

[0003] The present disclosure aims to at least solve one of the technical problems in the related art to some extent.

[0004] The first aspect of the present disclosure provides a method for determining fire-resisting separation area in a building, comprising:

[0005] obtaining an initial three-dimensional model corresponding to the building;

[0006] determining first fire-resisting separation data corresponding to walls in the building and second fire-resisting separation data corresponding to floors between the ceiling and the floor according to a fire hazard category corresponding to each space in the building;

[0007] updating the initial three-dimensional model according to the first fire-resisting separation data and the second fire-resisting separation data to obtain a target three-dimensional model;

[0008] obtaining a total area corresponding to each fire-resisting separation grade from the target three-dimensional model.

[0009] The second aspect of the present disclosure provides a device for determining fire-resisting separation area in a building, comprising:

[0010] a first obtaining module configured to obtain an initial three-dimensional model corresponding to the building;

[0011] a determining module configured to determine first fire-resisting separation data corresponding to walls in the building and second fire-resisting separation data corresponding to floors between the ceiling and the floor according to a fire hazard category corresponding to each space in the building;

[0012] an updating module configured to update the initial three-dimensional model according to the first fire-resisting separation data and the second fire-resisting separation data to obtain a target three-dimensional model;

[0013] The second acquisition module is configured to acquire total areas corresponding to each fire-resisting separation level from the target three-dimensional model.

[0014] The third aspect of the present disclosure provides an electronic device, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, and when the processor executes the program, the building fire-resisting separation area determination method according to the first aspect of the present disclosure is implemented.

[0015] The fourth aspect of the present disclosure provides a computer readable storage medium, which stores a computer program, and when the processor executes the computer program, the building fire-resisting separation area determination method according to the first aspect of the present disclosure is implemented.

[0016] The building fire-resisting separation area determination method, device and electronic device provided by the present disclosure have the following beneficial effects:

[0017] In the embodiments of the present disclosure, first, an initial three-dimensional model corresponding to a building is acquired, then first fire-resisting separation data corresponding to walls in the building and second fire-resisting separation data corresponding to floors between ceilings and floors are determined according to a fire hazard category corresponding to each space in the building, the initial three-dimensional model is updated according to the first fire-resisting separation data and the second fire-resisting separation data to obtain a target three-dimensional model, and finally total areas corresponding to each fire-resisting separation level are acquired from the target three-dimensional model. Therefore, the total areas corresponding to each fire-resisting separation level in the building can be quickly and accurately acquired, and the efficiency of determining the engineering quantity of fire insulation materials is improved.

[0018] Additional aspects and advantages of the present disclosure will be described in part in the description that follows, will become apparent from the description, or will be learned by practice of the present disclosure. BRIEF DESCRIPTION OF DRAWINGS

[0019] The above and / or additional aspects and advantages of the present disclosure will become apparent and be readily appreciated from the following description, taken in conjunction with the accompanying drawings, in which:

[0020] Figure 1 A flowchart of a building fire-resisting separation area determination method provided by an embodiment of the present disclosure;

[0021] Figure 2 A schematic diagram of a fire hazard category of an offshore booster station provided by an embodiment of the present disclosure;

[0022] Figure 3 A schematic diagram of a fire-resisting separation level of a wall of an offshore booster station provided by an embodiment of the present disclosure;

[0023] Figure 4An embodiment of the present disclosure provides a schematic diagram of a fire-resistance separation level of a floor in a marine booster station.

[0024] Figure 5 An embodiment of the present disclosure provides a schematic diagram of a method for determining a fire-resistance separation area in a building.

[0025] Figure 6 An embodiment of the present disclosure provides a schematic diagram of a device for determining a fire-resistance separation area in a building.

[0026] Figure 7 A block diagram of an exemplary electronic device suitable for implementing an embodiment of the present disclosure is shown. DETAILED DESCRIPTION

[0027] Embodiments of the present disclosure are described in detail below with reference to the accompanying drawings, in which like or similar elements or components are denoted by like reference numbers throughout the entire specification. The embodiments described below are examples and are intended to explain the present disclosure, and should not be understood as limiting the present disclosure.

[0028] A method, device, electronic device and storage medium for determining a fire-resistance separation area in a building are described below with reference to the accompanying drawings.

[0029] Figure 1 An embodiment of the present disclosure provides a schematic diagram of a method for determining a fire-resistance separation area in a building.

[0030] An embodiment of the present disclosure illustrates that the method for determining a fire-resistance separation area in a building is configured in a device for determining a fire-resistance separation area in a building, which can be applied to any electronic device to enable the electronic device to perform the function of determining a fire-resistance separation area in a building.

[0031] The electronic device can be a personal computer (PC), a cloud device, a mobile device, etc. The mobile device can be a mobile phone, a tablet computer, a personal digital assistant, a wearable device, a vehicle-mounted device, etc. The mobile device can have various operating systems, touch screens and / or display screens.

[0032] As shown in FIG. 1, the method for determining a fire-resistance separation area in a building can include the following steps: Figure 1

[0033] Step 101: Obtain an initial three-dimensional model corresponding to a building.

[0034] The building can be a marine booster station, a ship, a house, etc. The present disclosure does not limit the building. ​

[0035] The initial 3D model may include the overall layout of the building. For example, it may include each location within the building, the location of each location, the type of each location, etc. This disclosure does not limit this.

[0036] Optionally, a first dataset corresponding to each wall in the building can be obtained first. The first dataset contains the number, type, and location information of each wall. The wall type includes wall, floor, and ceiling. Then, an initial 3D model can be generated based on the first dataset corresponding to each wall.

[0037] The wall number can be the sequence number that corresponds to that wall among all the walls. For example, if a building has 20 locations and 120 walls, the wall numbers would be 1-120.

[0038] The location information for each wall can be its position in the initial 3D model. This disclosure does not limit this.

[0039] Step 102: Based on the fire hazard category corresponding to each location in the building, determine the first fire resistance partition data for the walls and the second fire resistance partition data for the floor slab between the ceiling and the floor.

[0040] It should be noted that different types of premises correspond to different fire hazard categories.

[0041] Optionally, the fire protection standard corresponding to the building can be obtained based on the building type. The fire protection standard includes the correlation between the type of premises and the fire hazard category. Then, based on the fire protection standard and the type of each premises in the building, the fire hazard category corresponding to each premises in the building can be determined.

[0042] Figure 2 This disclosure provides a schematic diagram illustrating the fire hazard classification of an offshore substation according to one embodiment. (See diagram below.) Figure 2 As shown, there are six fire hazard categories in the offshore substation. Fire hazard category 1 corresponds to equipment locations with a high fire hazard, including: main transformer rooms, diesel engine rooms, diesel fuel tank rooms, etc. Fire hazard category 2 corresponds to other equipment locations, including: switch rooms, distribution panel rooms, battery rooms, etc. Fire hazard category 3 corresponds to control rooms, including: central control rooms, communication equipment rooms, radio rooms, etc. Fire hazard category 4 corresponds to control rooms, including: central control rooms, communication equipment rooms, radio rooms, etc.

[0043] The first fire-resistant partition data may include the fire-resistant partition rating corresponding to each wall. It should be noted that since one wall of a room may be adjacent to multiple rooms, and if the multiple rooms correspond to different fire hazard categories, the same wall in that location may correspond to multiple fire-resistant partition ratings. Therefore, the first fire-resistant partition data includes the fire-resistant partition rating, corresponding area, and location of each wall. This disclosure does not impose any limitations on this.

[0044] The first fire-resistant partition data may include the fire-resistant partition rating for each floor slab.

[0045] It should be noted that since two adjacent walls in a building are on the same floor, it is not necessary to determine the first fire resistance compartment data for the wall based on the location relationship between the two rooms. However, if two adjacent rooms on a floor are on different floors, it is necessary to determine the second fire resistance compartment data for the floor based on the location of the two rooms and their corresponding fire hazard categories.

[0046] Figure 3 This disclosure provides a schematic diagram of the fire resistance rating of a wall in an offshore substation, according to one embodiment. The corresponding fire resistance ratings in offshore substations include Class A, Class B, and Class C. Class A is further divided into A-60, A-30, A-15, and A-0, and Class B is divided into B-15 and B-0. Class A is higher than Class B, which is higher than Class C. Figure 3 As shown, if the fire hazard category of any two adjacent locations of any wall is Category 1, then the fire resistance rating of any wall is A-60, etc.

[0047] Figure 4 This disclosure provides a schematic diagram of the fire resistance rating of a floor slab in an offshore substation, according to one embodiment. (See diagram below.) Figure 4 As shown, if the fire hazard category of the upper floor adjacent to any floor slab is Category 1 and the fire hazard category of the lower floor is Category 4, then the fire resistance rating of any floor slab is A-0. If the fire hazard category of the upper floor adjacent to any floor slab is Category 4 and the fire hazard category of the lower floor is Category 1, then the fire resistance rating of any floor slab is A-60.

[0048] In this embodiment of the disclosure, after obtaining the fire resistance separation requirements corresponding to the building and the fire hazard category corresponding to each location in the building, the first fire resistance separation data corresponding to each wall in the building and the second fire resistance separation data corresponding to each floor slab between the ceiling and the floor can be obtained sequentially by enumeration.

[0049] Step 103: Update the initial three-dimensional model based on the first refractory partition data and the second refractory partition data to obtain the target three-dimensional model.

[0050] In this embodiment of the disclosure, after obtaining the first fire-resistant partition data corresponding to the walls in the building and the second fire-resistant partition data corresponding to the floor slab between the ceiling and the floor, the first fire-resistant partition data and the second fire-resistant partition data can be displayed in the three-dimensional model, thereby intuitively displaying the fire-resistant partition status of the building.

[0051] Step 104: Obtain the total area corresponding to each fire resistance rating from the target 3D model.

[0052] Understandably, once the target 3D model is determined, the area of ​​the wall corresponding to each fire resistance rating can be statistically analyzed to obtain the total area corresponding to each fire resistance rating.

[0053] In this embodiment, an initial 3D model of the building is first obtained. Then, based on the fire hazard category of each location in the building, the first fire resistance partition data for the walls and the second fire resistance partition data for the floor slab between the ceiling and the floor are determined. The initial 3D model is then updated based on the first and second fire resistance partition data to obtain a target 3D model. Finally, the total area corresponding to each fire resistance partition level is obtained from the target 3D model. This allows for the rapid and accurate acquisition of the total area corresponding to each fire resistance partition level in the building, improving the efficiency of determining the quantity of fire-resistant insulation materials.

[0054] Figure 5 This is a flowchart illustrating a method for determining the fire-resistant partition area in a building according to an embodiment of this disclosure, as shown below. Figure 5 As shown, the method for determining the fire-resistant compartment area in this building may include the following steps:

[0055] Step 501: Obtain the initial 3D model corresponding to the building.

[0056] Step 502: Obtain the first set of locations corresponding to the ceiling of each location in the building, the second set of locations corresponding to the floor of each location, and the third set of locations corresponding to each wall of each location.

[0057] The first location set may include the location information corresponding to the ceiling of each location in the building. For example, if there are 20 locations in the building, the first location set may include the coordinate information corresponding to the 20 ceilings.

[0058] The second location set can include the location information corresponding to the floor of each space in the building. For example, if there are 20 spaces in the building, the second location set can include the coordinate information corresponding to the 20 floors.

[0059] The third location set can include the location information of the walls corresponding to each location in the building. For example, if there are 20 locations in the building, the third location set can include the coordinate information of 80 walls.

[0060] Step 503: Based on the first location set, the second location set, and the fire hazard category corresponding to each location, determine the third fire-resistant partition data corresponding to the floor slabs of two adjacent locations, and the fourth fire-resistant partition data corresponding to a single floor slab, wherein the second fire-resistant partition data includes the third fire-resistant partition data and the fourth fire-resistant partition data.

[0061] In this embodiment, the location information of each ceiling in the first location set can be sequentially enumerated with the location information of each floor in the second location set to determine whether there is a floor that overlaps with each ceiling. Then, based on the fire hazard category of the location corresponding to the ceiling and the location corresponding to the floor in the overlapping area, the fire resistance classification of the overlapping area is determined. Subsequently, the fire hazard category, area, and location of each overlapping area are sequentially stored in the third fire resistance classification data.

[0062] Floor slabs in a building, excluding overlapping areas, are considered individual floor slabs, such as the floor of the first floor or the ceiling of the top floor. The fire resistance rating corresponding to each individual floor slab is then determined to be the lowest possible fire resistance rating, such as Class C. The fire resistance rating, area, and location of each individual floor slab are then stored in the fourth fire resistance data database.

[0063] Step 504: Based on the third location set and the fire hazard category corresponding to each location, determine the fifth fire resistance partition data corresponding to the walls of two adjacent locations and the sixth fire resistance partition data corresponding to the exterior walls of the building, wherein the first fire resistance partition data includes the fifth fire resistance partition data and the sixth fire resistance partition data.

[0064] In this embodiment, the location information of each wall in the third location set can be sequentially enumerated with the location information of each wall in the third location set to determine whether there is an overlapping wall. Then, based on the fire hazard categories of the two adjacent locations corresponding to the wall in the overlapping area, the fire resistance classification of the overlapping area is determined. Subsequently, the fire hazard category, area, and location of each overlapping area are sequentially stored in the fifth fire resistance classification data.

[0065] The walls in a building other than overlapping areas are considered individual walls, such as the building's exterior walls. The fire resistance rating of each individual wall is then determined to be the lowest possible fire resistance rating, such as Class C. The fire resistance rating, area, and location of each individual wall are then stored in the sixth fire resistance rating data.

[0066] Step 505: Update the initial three-dimensional model based on the first fire-resistant partition data and the second fire-resistant partition data to obtain the target three-dimensional model.

[0067] Optionally, the display color corresponding to each fire resistance partition level can be further obtained. Based on the display color corresponding to each fire resistance partition level, the first fire resistance partition data and the second fire resistance partition data are displayed in the initial three-dimensional model to obtain the target three-dimensional model.

[0068] For example, there are seven fire resistance ratings: A-60, A-30, A-15, A-0, B-15, B-0, and C. The corresponding display colors can be red, orange, yellow, green, cyan, blue, and purple, respectively. This allows the data for each fire resistance rating to be clearly and intuitively displayed in the target 3D model.

[0069] Step 506: Obtain the total area corresponding to each fire resistance classification from the target 3D model.

[0070] In this embodiment, an initial 3D model of the building is first obtained. Then, a first set of locations corresponding to the ceiling, a second set of locations corresponding to the floor, and a third set of locations corresponding to each wall are obtained for each space within the building. Next, through enumeration and in conjunction with the fire hazard category of each space, first fire-resistant partition data corresponding to the walls and second fire-resistant partition data corresponding to the floor slab between the ceiling and the floor are sequentially obtained. Based on the first and second fire-resistant partition data, the initial 3D model is updated to obtain a target 3D model. Finally, the total area corresponding to each fire-resistant partition level is obtained from the target 3D model. This allows for faster and more accurate determination of the fire-resistant partition level of each wall in the building, and consequently, accurate calculation of the total area corresponding to each fire-resistant partition level, improving the efficiency of determining the quantity of fire-resistant insulation materials.

[0071] To achieve the above embodiments, this disclosure also proposes a device for determining the fire-resistant partition area in a building.

[0072] Figure 6 This is a schematic diagram of the structure of the device for determining the fire-resistant partition area in a building provided in an embodiment of this disclosure.

[0073] like Figure 6 As shown, the device 600 for determining the fire-resistant partition area in the building may include: a first acquisition module 610, a determination module 620, an update module 660, and a second acquisition module 640.

[0074] The first acquisition module 610 is used to acquire the initial three-dimensional model corresponding to the building;

[0075] The determination module 620 is used to determine the first fire resistance separation data for the walls and the second fire resistance separation data for the floor slab between the ceiling and the floor in the building, based on the fire hazard category corresponding to each location in the building.

[0076] The update module 630 is used to update the initial three-dimensional model based on the first fire-resistant partition data and the second fire-resistant partition data to obtain the target three-dimensional model.

[0077] The second acquisition module 640 is used to acquire the total area corresponding to each fire resistance classification from the target three-dimensional model.

[0078] Optionally, module 620 is defined, including:

[0079] The acquisition unit is used to acquire the first set of locations corresponding to the ceiling of each location in the building, the second set of locations corresponding to the floor of each location, and the third set of locations corresponding to each wall of each location.

[0080] The first determining unit is used to determine the third fire-resistant partition data corresponding to the floor slabs of two adjacent locations and the fourth fire-resistant partition data corresponding to a single floor slab, based on the first location set, the second location set, and the fire hazard category corresponding to each location. The second fire-resistant partition data includes the third fire-resistant partition data and the fourth fire-resistant partition data.

[0081] The second determining unit is used to determine the fifth fire-resistant partition data corresponding to the walls of two adjacent locations and the sixth fire-resistant partition data corresponding to the exterior walls of the building, based on the third location set and the fire hazard category corresponding to each location. The first fire-resistant partition data includes the fifth fire-resistant partition data and the sixth fire-resistant partition data.

[0082] Optionally, the first determining unit is specifically used for:

[0083] Match each first location in the first location set with each second location in the second location set to obtain multiple first overlapping areas and multiple individual floor slabs;

[0084] Based on the fire hazard category corresponding to the location where the ceiling is located and the fire hazard category corresponding to the location where the floor is located in each first overlapping area, determine the third fire resistance separation data of the floor slabs of the two adjacent locations corresponding to each first overlapping area.

[0085] The fourth fire-resistant compartment data for each floor slab is determined based on the fire hazard category of the location where each individual floor slab is located.

[0086] Optionally, the second determining unit is specifically used for:

[0087] Match the third position of each wall in the third position set to obtain multiple second overlapping areas and multiple building exterior wall areas;

[0088] Based on the fire hazard categories corresponding to the two adjacent locations corresponding to each second overlapping area, determine the fifth fire resistance separation data of the walls of the two adjacent locations corresponding to each second overlapping area.

[0089] Based on the fire hazard category of the premises corresponding to each building's exterior wall area, determine the sixth fire-resistant compartment data corresponding to each building's exterior wall area.

[0090] Optionally, the first acquisition module 610 is specifically used for:

[0091] Obtain the first dataset corresponding to each wall in the building. The first dataset contains the number, type, and location information of each wall. The wall type includes wall, floor, and ceiling.

[0092] An initial 3D model is generated based on the first dataset corresponding to each wall.

[0093] Optionally, it also includes: a third acquisition module, specifically used for:

[0094] Based on the type of building, obtain the corresponding fire protection standard for the building, which includes the relationship between the type of premises and the fire hazard category;

[0095] Based on fire protection standards and the type of each space in the building, determine the fire hazard category corresponding to each space in the building.

[0096] Optional, update module 630, specifically for:

[0097] Obtain the display color corresponding to each fire resistance rating;

[0098] Based on the display color corresponding to each fire resistance rating, the first fire resistance rating data and the second fire resistance rating data are displayed in the initial three-dimensional model to obtain the target three-dimensional model.

[0099] The functions and specific implementation principles of the modules described in this embodiment can be found in the above method embodiments, and will not be repeated here.

[0100] The apparatus for determining the fire-resistant partition area in a building according to an embodiment of this disclosure first acquires an initial three-dimensional model of the building. Then, based on the fire hazard category of each location in the building, it determines the first fire-resistant partition data for the walls and the second fire-resistant partition data for the floor slab between the ceiling and the floor. Next, based on the first and second fire-resistant partition data, the initial three-dimensional model is updated to obtain a target three-dimensional model. Finally, the total area corresponding to each fire-resistant partition grade is obtained from the target three-dimensional model. Therefore, the total area corresponding to each fire-resistant partition grade in a building can be obtained quickly and accurately, improving the efficiency of determining the quantity of fire-resistant insulation materials.

[0101] To implement the above embodiments, this disclosure also proposes an electronic device, including: a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the program, it implements the method for determining the fire-resistant partition area in a building as proposed in the foregoing embodiments of this disclosure.

[0102] To implement the above embodiments, this disclosure also proposes a computer-readable storage medium storing a computer program, which, when executed by a processor, implements the method for determining the fire-resistant partition area in a building as proposed in the foregoing embodiments of this disclosure.

[0103] To implement the above embodiments, this disclosure also proposes a computer program product, including a computer program that, when executed by a processor, implements the method for determining the fire-resistant partition area in a building as proposed in the foregoing embodiments of this disclosure.

[0104] Figure 7 A block diagram of an exemplary electronic device suitable for implementing embodiments of the present disclosure is shown. Figure 7 The electronic device 12 shown is merely an example and should not impose any limitation on the functionality and scope of use of the embodiments disclosed herein.

[0105] like Figure 7 As shown, the electronic device 12 is represented in the form of a general-purpose computing device. The components of the computer device 12 may include, but are not limited to: one or more processors or processing units 16, system memory 28, and a bus 18 connecting different system components (including system memory 28 and processing unit 16).

[0106] Bus 18 represents one or more of several bus architectures, including a memory bus or memory controller, a peripheral bus, a graphics acceleration port, a processor, or a local bus using any of the various bus architectures. Examples of these architectures include, but are not limited to, the Industry Standard Architecture (ISA) bus, the Micro Channel Architecture (MAC) bus, the Enhanced ISA bus, the Video Electronics Standards Association (VESA) local bus, and the Peripheral Component Interconnect (PCI) bus.

[0107] Computer device 12 typically includes a variety of computer system readable media. These media can be any available media that can be accessed by computer device 12, including volatile and non-volatile media, removable and non-removable media.

[0108] Memory 28 may include computer system readable media in the form of volatile memory, such as Random Access Memory (RAM) 30 and / or cache memory 32. Computer device 12 may further include other removable / non-removable, volatile / non-volatile computer system storage media. By way of example only, storage system 34 may be used to read and write non-removable, non-volatile magnetic media (…). Figure 7 Not shown; usually referred to as a "hard drive"). Although Figure 7 Not shown, a disk drive for reading and writing to a removable non-volatile disk (e.g., a "floppy disk") and an optical disc drive for reading and writing to a removable non-volatile optical disc (e.g., a compact disc read-only memory (CD-ROM), a digital video disc read-only memory (DVD-ROM), or other optical media) may be provided. In these cases, each drive may be connected to bus 18 via one or more data media interfaces. Memory 28 may include at least one program product having a set (e.g., at least one) of program modules configured to perform the functions of the embodiments of this disclosure.

[0109] A program / utility 40 having a set (at least one) of program modules 42 may be stored, for example, in memory 28. Such program modules 42 include, but are not limited to, an operating system, one or more application programs, other program modules, and program data. Each or some combination of these examples may include an implementation of a network environment. Program modules 42 typically perform the functions and / or methods described in the embodiments of this disclosure.

[0110] Computer device 12 can also communicate with one or more external devices 14 (e.g., keyboard, pointing device, display 24, etc.), and with one or more devices that enable a user to interact with computer device 12, and / or with any device that enables computer device 12 to communicate with one or more other computing devices (e.g., network card, modem, etc.). This communication can be performed via input / output (I / O) interface 22. Furthermore, computer device 12 can also communicate with one or more networks (e.g., local area network (LAN), wide area network (WAN), and / or public networks, such as the Internet) via network adapter 20. As shown, network adapter 20 communicates with other modules of computer device 12 via bus 18. It should be understood that, although not shown in the figures, other hardware and / or software modules can be used in conjunction with computer device 12, including but not limited to: microcode, device drivers, redundant processing units, external disk drive arrays, RAID systems, tape drives, and data backup storage systems.

[0111] The processing unit 16 executes various functional applications and data processing by running programs stored in the system memory 28, such as implementing the methods mentioned in the foregoing embodiments.

[0112] The technical solution disclosed herein first obtains an initial three-dimensional model of the building. Then, based on the fire hazard category of each location within the building, it determines the first fire-resistant partition data for the walls and the second fire-resistant partition data for the floor slab between the ceiling and the floor. Next, based on the first and second fire-resistant partition data, the initial three-dimensional model is updated to obtain a target three-dimensional model. Finally, the total area corresponding to each fire-resistant partition level is obtained from the target three-dimensional model. This allows for the rapid and accurate acquisition of the total area corresponding to each fire-resistant partition level in the building, improving the efficiency of determining the quantity of fire-resistant insulation materials.

[0113] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this disclosure. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0114] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this disclosure, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0115] Any process or method description in the flowchart or otherwise herein can be understood as representing a module, segment, or portion of code comprising one or more executable instructions for implementing custom logic functions or processes, and the scope of preferred embodiments of this disclosure includes additional implementations in which functions may be performed not in the order shown or discussed, including substantially simultaneously or in reverse order depending on the functions involved, as will be understood by those skilled in the art to which embodiments of this disclosure pertain.

[0116] The logic and / or steps represented in the flowchart or otherwise described herein, for example, can be considered as a sequenced list of executable instructions for implementing logical functions, and can be embodied in any computer-readable medium for use by, or in conjunction with, an instruction execution system, apparatus, or device (such as a computer-based system, a processor-included system, or other system that can fetch and execute instructions from, an instruction execution system, apparatus, or device). For the purposes of this specification, "computer-readable medium" can be any means that can contain, store, communicate, propagate, or transmit programs for use by, or in conjunction with, an instruction execution system, apparatus, or device. More specific examples (a non-exhaustive list) of computer-readable media include: an electrical connection having one or more wires (electronic device), a portable computer disk drive (magnetic device), random access memory (RAM), read-only memory (ROM), erasable and editable read-only memory (EPROM or flash memory), fiber optic devices, and portable optical disc read-only memory (CDROM). Alternatively, the computer-readable medium may be paper or other suitable media on which the program can be printed, since the program can be obtained electronically, for example, by optically scanning the paper or other medium, followed by editing, interpreting, or otherwise processing as necessary, and then stored in a computer memory.

[0117] It should be understood that various parts of this disclosure can be implemented using hardware, software, firmware, or a combination thereof. In the above embodiments, multiple steps or methods can be implemented using software or firmware stored in memory and executed by a suitable instruction execution system. For example, if implemented in hardware as in another embodiment, it can be implemented using any one or a combination of the following techniques known in the art: discrete logic circuits having logic gates for implementing logical functions on data signals, application-specific integrated circuits (ASICs) having suitable combinational logic gates, programmable gate arrays (PGAs), field-programmable gate arrays (FPGAs), etc.

[0118] Those skilled in the art will understand that all or part of the steps of the methods described in the above embodiments can be implemented by a program instructing related hardware. The program can be stored in a computer-readable storage medium, and when executed, it includes one or a combination of the steps of the method embodiments.

[0119] Furthermore, the functional units in the various embodiments of this disclosure can be integrated into a processing module, or each unit can exist physically separately, or two or more units can be integrated into a module. The integrated module can be implemented in hardware or as a software functional module. If the integrated module is implemented as a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium.

[0120] The storage medium mentioned above can be a read-only memory, a disk, or an optical disk, etc. Although embodiments of the present disclosure have been shown and described above, it is to be understood that the above embodiments are exemplary and should not be construed as limiting the present disclosure. Those skilled in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present disclosure.

Claims

1. A method for determining the fire-resistant partition area in a building, characterized in that, include: Obtain the initial 3D model of the building; Based on the fire hazard category corresponding to each location in the building, the method determines the first fire resistance separation data corresponding to the walls and the second fire resistance separation data corresponding to the floor slabs between the ceiling and the floor in the building, including: obtaining a first location set corresponding to the ceiling of each location in the building, a second location set corresponding to the floor of each location, and a third location set corresponding to each wall of each location; based on the first location set, the second location set, and the fire hazard category corresponding to each location, determining the third fire resistance separation data corresponding to the floor slabs of two adjacent locations and the fourth fire resistance separation data corresponding to a single floor slab, wherein the second fire resistance separation data includes the third fire resistance separation data and the fourth fire resistance separation data; based on the third location set and the fire hazard category corresponding to each location, determining the fifth fire resistance separation data corresponding to the walls of two adjacent locations and the sixth fire resistance separation data corresponding to the exterior walls of the building, wherein the first fire resistance separation data includes the fifth fire resistance separation data and the sixth fire resistance separation data; the first fire resistance separation data also includes the area corresponding to each wall; The initial three-dimensional model is updated based on the first fire-resistant partition data and the second fire-resistant partition data to obtain the target three-dimensional model; Obtain the total area corresponding to each fire resistance rating from the target 3D model.

2. The method according to claim 1, characterized in that, The step of determining the third fire resistance partition data corresponding to the floor slabs of two adjacent locations and the fourth fire resistance partition data corresponding to a single floor slab based on the first location set, the second location set, and the fire hazard category corresponding to each location includes: Each first location in the first location set is matched with each second location in the second location set to obtain multiple first overlapping areas and multiple individual floor slabs; Based on the fire hazard category corresponding to the location where the ceiling is located and the fire hazard category corresponding to the location where the floor is located in each of the first overlapping areas, the third fire resistance separation data of the floor slabs of the two adjacent locations corresponding to each of the first overlapping areas is determined. The fourth fire-resistant partition data corresponding to each floor slab is determined based on the fire hazard category corresponding to the location of each individual floor slab.

3. The method according to claim 1, characterized in that, The step of determining the fifth fire resistance partition data corresponding to the walls of two adjacent locations and the sixth fire resistance partition data corresponding to the exterior walls of the building, based on the third location set and the fire hazard category corresponding to each location, includes: The third position of each wall in the third position set is matched to obtain multiple second overlapping areas and multiple building exterior wall areas; Based on the fire hazard category corresponding to the two adjacent locations corresponding to each second overlapping area, the fifth fire resistance separation data of the walls of the two adjacent locations corresponding to each second overlapping area is determined. Based on the fire hazard category of the premises corresponding to each of the building's exterior wall areas, the sixth fire-resistant partition data corresponding to each of the building's exterior wall areas is determined.

4. The method according to claim 1, characterized in that, The process of obtaining the initial 3D model corresponding to the building includes: Obtain a first dataset corresponding to each wall in the building, wherein the first dataset contains the number, type, and location information corresponding to each wall, and the type corresponding to the wall includes the wall, the floor, and the ceiling; The initial 3D model is generated based on the first dataset corresponding to each wall.

5. The method according to claim 1, characterized in that, Before determining the first fire resistance partition data for the walls and the second fire resistance partition data for the floor slab between the ceiling and the floor in the building based on the fire hazard category corresponding to each location in the building, the method further includes: Based on the type of the building, obtain the corresponding fire protection standard for the building, wherein the fire protection standard includes the correlation between the type of premises and the fire hazard category; Based on the fire protection standards and the type of each space in the building, determine the fire hazard category corresponding to each space in the building.

6. The method according to any one of claims 1-5, characterized in that, The step of updating the initial three-dimensional model based on the first fire-resistant partition data and the second fire-resistant partition data to obtain the target three-dimensional model includes: Obtain the display color corresponding to each fire resistance rating; Based on the display color corresponding to each fire resistance rating, the first fire resistance rating data and the second fire resistance rating data are displayed in the initial three-dimensional model to obtain the target three-dimensional model.

7. A device for determining the fire-resistant partition area in a building, characterized in that, include: The first acquisition module is used to acquire the initial 3D model corresponding to the building; The determination module is used to determine the first fire resistance separation data corresponding to the walls and the second fire resistance separation data corresponding to the floor slab between the ceiling and the floor in the building, based on the fire hazard category corresponding to each location in the building. The update module is used to update the initial three-dimensional model based on the first fire-resistant partition data and the second fire-resistant partition data to obtain the target three-dimensional model; The second acquisition module is used to acquire the total area corresponding to each fire resistance partition level from the target three-dimensional model; The determining module includes: The acquisition unit is used to acquire a first set of locations corresponding to the ceiling of each location in the building, a second set of locations corresponding to the floor of each location, and a third set of locations corresponding to each wall of each location. The first determining unit is used to determine, based on the first location set, the second location set, and the fire hazard category corresponding to each location, the third fire-resistant partition data corresponding to the floor slabs of two adjacent locations and the fourth fire-resistant partition data corresponding to a single floor slab, wherein the second fire-resistant partition data includes the third fire-resistant partition data and the fourth fire-resistant partition data. The second determining unit is used to determine, based on the third location set and the fire hazard category corresponding to each location, the fifth fire-resistant partition data corresponding to the walls of two adjacent locations and the sixth fire-resistant partition data corresponding to the exterior walls of the building, wherein the first fire-resistant partition data includes the fifth fire-resistant partition data and the sixth fire-resistant partition data; the first fire-resistant partition data also includes the area corresponding to each wall.

8. An electronic device, characterized in that, It includes a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein when the processor executes the program, it implements the method for determining the fire-resistant partition area in a building as described in any one of claims 1-6.

9. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is executed by the processor, it implements the method for determining the fire-resistant partition area in a building as described in any one of claims 1-6.