Blanking method and device for silicate board fire prevention partition wall of factory building and medium

By using 3D laser scanning and BIM modeling technology, the problems of time-consuming, labor-intensive, and low-accuracy traditional manual measurement have been solved, enabling efficient and precise design of silicate partition board cutting, reducing material waste and construction cycle.

CN120874192APending Publication Date: 2025-10-31TWENTY METALLURGICAL GRP (SHENZHEN) CONSTR DEV CO LTD
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Patent Information

Application Number
CN202511043372.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-28
Publication Date
2025-10-31

AI Technical Summary

Technical Problem

Traditional manual measurement methods for cutting silicate partition boards are time-consuming, labor-intensive, inaccurate, and prone to errors, leading to material waste and extended construction periods.

Method used

3D laser scanning technology is used to acquire point cloud data of the factory space. Combined with BIM modeling technology, the material cutting design is precisely adjusted and optimized to generate an accurate material cutting list.

Benefits of technology

It improved measurement efficiency and material cutting accuracy, reduced material waste, shortened construction time, and lowered costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a blanking method and device for a silicate board fire prevention partition wall of a plant and a medium. The method comprises the following steps: sequentially scanning a factory building at each scanning site according to a scanning route to obtain factory building space point cloud data; noise points of the data are removed, and plant space point cloud data of a plurality of scanning sites are spliced; carrying out design modeling on the design plant; matching and integrating the plant three-dimensional point cloud model and a plant design BIM model; carrying out modeling design and adjustment on partition boards on the actually-built factory building BIM model; and performing statistics and output to obtain a blanking list and a construction drawing of the partition board. From the perspective of measurement, the field measurement workload is greatly saved through scanning, the workshop space information can be rapidly and comprehensively obtained, and the measurement time is greatly shortened; and in the aspect of blanking precision, the blanking precision of the silicic acid plate is remarkably improved due to the high-precision characteristic of three-dimensional laser scanning and precise adjustment of the deepened design of BIM modeling.
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Description

Technical Field

[0001] This invention relates to the field of building construction technology, and more specifically, to a method, apparatus, and medium for cutting fire-resistant silicate board partition walls in factory buildings. Background Technology

[0002] In industrial plant construction, fire-resistant partition walls are generally divided into upper and lower parts. The lower part is constructed using traditional pressurized blocks, while the upper part is made of silicate partition boards. To ensure the airtightness of the fire-resistant partition, the fire-resistant silicate partition boards need to wrap around the purlins, side beams, tie rods, and corner braces of the roof steel structure. When cutting and installing the silicate partition boards, it is necessary to fully consider leaving openings at the intersections of the purlins, side beams, tie rods, and corner braces of the roof steel structure, and ensure that the gaps are not too large. Because the roof is a sloping structure, the intersections between the silicate partition boards and the steel structure components are not uniform; additionally, construction errors in the steel structure components must be considered. In summary, traditional cutting and installation methods have many drawbacks. In the measurement stage, on-site measurements have traditionally relied on manual methods using tools such as measuring tapes and levels.

[0003] This process is not only extremely labor-intensive and time-consuming, but also very demanding, especially for large factories where surveyors need to move between different areas to take measurements. For example, the measurement work alone may take several workers several days to complete for a large factory with an area of ​​several thousand square meters. Moreover, manual measurement is greatly affected by factors such as the professional level of the surveyors, their operating habits, and the measurement environment, which can easily lead to measurement errors.

[0004] Regarding cutting accuracy, due to the accumulation of errors from traditional measurements and the lack of precise cutting design, dimensional deviations often occur in the cutting of silicate partition wall panels. This leads to a mismatch between the panels and the actual installation location during installation, requiring repeated cutting and adjustments. This not only wastes a significant amount of material and increases costs but also prolongs the construction period. For example, a silicate partition wall panel that could have been used intact may have to be cut into smaller pieces or even scrapped entirely due to dimensional deviations, resulting in material waste. Furthermore, this material waste also leads to increased construction waste and negatively impacts the construction site environment. Summary of the Invention

[0005] In view of this, the present invention proposes a method, device and medium for cutting fire-resistant silicate board partition walls in factories, aiming to solve the problem that the existing fire-resistant partition walls require a large number of people to measure point by point in the factory, which is time-consuming, labor-intensive and prone to omissions.

[0006] On one hand, this invention proposes a method for cutting materials for fire-resistant silicate board partition walls in a factory building. This method includes the following steps: a scanning step, where the factory building is scanned sequentially at each scanning station according to a scanning route to acquire spatial point cloud data of the factory building; a data processing step, where noise points are removed from the acquired spatial point cloud data of the factory building, and the spatial point cloud data of the factory building from multiple scanning stations are stitched together using a stitching algorithm to form a three-dimensional point cloud model of the factory building; a modeling step, where the designed factory building is designed and modeled to obtain a factory building design BIM model; a model integration step, where the three-dimensional point cloud model of the factory building is matched and integrated with the factory building design BIM model to obtain a BIM model of the actual factory building; a partition wall panel adjustment step, where the partition wall panels are modeled, designed, and adjusted on the actual factory building BIM model to obtain a factory building model; and a material cutting and statistics step, where the partition wall panels of the factory building model are statistically analyzed and output to obtain a material cutting list and construction drawings for the partition wall panels.

[0007] Furthermore, the above-mentioned method for cutting the fireproof silica board partition wall of the factory building also includes the following step between the scanning step and the data processing step: a data detection step, which performs data quality detection on the point cloud data of the factory building space to determine whether there are any missing or abnormal points in the point cloud data of the factory building space, and then jumps to the scanning step to re-scan.

[0008] Furthermore, in the above-mentioned method for cutting the fireproof silica board partition wall of the factory, in the model integration step, the factory design BIM model is adjusted based on the three-dimensional point cloud model of the factory to match the spatial point cloud data of the factory.

[0009] Furthermore, in the above-mentioned method for cutting the fireproof silica board partition wall of the factory building, Pointtools software is used for data processing in the data processing step.

[0010] Furthermore, in the above-mentioned method for cutting materials for the fireproof silica board partition wall of the factory building, Rhino modeling software is used to model the factory building BIM model in the modeling step.

[0011] On the other hand, this invention proposes a material cutting device for fire-resistant silicate board partition walls in a factory building. The device includes: a scanning module for sequentially scanning the factory building at each scanning station according to a scanning route to acquire spatial point cloud data of the factory building; a data processing module for removing noise points from the acquired spatial point cloud data of the factory building and stitching the spatial point cloud data of multiple scanning stations together using a stitching algorithm to form a three-dimensional point cloud model of the factory building; a modeling module for designing and modeling the designed factory building to obtain a factory building design BIM model; a model integration module for matching and integrating the three-dimensional point cloud model of the factory building with the factory building design BIM model to obtain a BIM model of the actual factory building; a partition wall panel adjustment module for modeling, designing, and adjusting the partition wall panels on the actual factory building BIM model to obtain a factory building model; and a material cutting statistics module for statistically analyzing and outputting the partition wall panel statistics of the factory building model to obtain a material cutting list and construction drawings for the partition wall panels.

[0012] Furthermore, the aforementioned feeding device for the fireproof silica board partition wall of the factory building includes: a data detection module, used to perform data quality detection on the point cloud data of the factory space, determine whether there are any missing or abnormal points in the point cloud data of the factory space, and rescan.

[0013] Furthermore, in the aforementioned material feeding device for the fireproof silica board partition wall of the factory building, the model integration module is used to adjust the factory building design BIM model based on the three-dimensional point cloud model of the factory building, so that it matches the spatial point cloud data of the factory building.

[0014] In another aspect, a computer-readable storage medium is provided, the storage medium storing a computer program for performing the methods described in any of the above aspects of the present invention.

[0015] In another aspect, an electronic device is provided, the electronic device comprising: a processor; a memory for storing processor-executable instructions; the processor being configured to read the executable instructions from the memory and execute the instructions to implement the method described in any of the preceding aspects of the present invention.

[0016] The present invention provides a method, device, and medium for cutting fire-resistant silicate board partition walls in factory buildings. These methods offer advantages such as high measurement efficiency and high cutting accuracy. From a measurement perspective, the application of scanning technology, especially 3D laser scanning, significantly reduces on-site measurement workload. Compared to traditional manual measurement, which requires a large workforce to measure point by point within the factory building—a process that is not only time-consuming and labor-intensive but also prone to omissions—scanning, particularly 3D laser scanning, can quickly and comprehensively acquire factory spatial information, drastically shortening measurement time. Regarding cutting accuracy, the high precision of 3D laser scanning and the precise adjustments made through BIM modeling and detailed design significantly improve the cutting accuracy of silicate board. Scanning can achieve millimeter-level precision, and combined with the precise calculation and optimization of cutting information by the BIM model, the cutting dimensions of the silicate partition wall material are more accurate. This effectively avoids material waste caused by inaccurate cutting in traditional methods, significantly reducing material costs. It also solves the problem that traditional manual measurement of fire-resistant partition walls requires a large workforce to measure point by point within the factory building, resulting in time-consuming, labor-intensive, and prone-to-omission situations. Attached Figure Description

[0017] Various other advantages and benefits will become apparent to those skilled in the art upon reading the following detailed description of preferred embodiments. The accompanying drawings are for illustrative purposes only and are not intended to limit the invention. Furthermore, the same reference numerals denote the same parts throughout the drawings. In the drawings: Figure 1 A flowchart illustrating the material cutting method for a fire-resistant silica board partition wall in a factory, as provided in an embodiment of the present invention. Figure 2 This is another flowchart illustrating the material cutting method for the fireproof silica board partition wall of the factory provided in this embodiment of the invention. Figure 3 A detailed flowchart of the material cutting method for the fireproof silica board partition wall of the factory provided in the embodiment of the present invention; Figure 4 This is a structural block diagram of the feeding device for the fireproof silica board partition wall of the factory provided in an embodiment of the present invention; Figure 5 Another structural block diagram of the material feeding device for the fireproof silica board partition wall of the factory provided in the embodiment of the present invention; Figure 6 This is a structural block diagram of an electronic device provided in an embodiment of the present invention. Detailed Implementation

[0018] Hereinafter, exemplary embodiments according to the present invention will be described in detail with reference to the accompanying drawings. Obviously, the described embodiments are merely some embodiments of the present invention, and not all embodiments of the present invention. It should be understood that the present invention is not limited to the exemplary embodiments described herein.

[0019] It should be noted that, unless otherwise specifically stated, the relative arrangement, numerical expressions, and values ​​of the components and steps described in these embodiments do not limit the scope of the invention.

[0020] Those skilled in the art will understand that the terms "first," "second," etc., in the embodiments of the present invention are only used to distinguish different steps, devices, or modules, and do not represent any specific technical meaning, nor do they indicate a necessary logical order between them.

[0021] It should also be understood that in the embodiments of the present invention, "multiple" can refer to two or more, and "at least one" can refer to one, two or more.

[0022] It should also be understood that any component, data or structure mentioned in the embodiments of the present invention can generally be understood as one or more unless explicitly defined or given contrary instructions in the context.

[0023] Furthermore, the term "and / or" in this invention is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, or B existing alone. Additionally, the character " / " in this invention generally indicates that the preceding and following related objects have an "or" relationship.

[0024] It should also be understood that the description of the various embodiments in this invention emphasizes the differences between the various embodiments, and the similarities or similarities can be referred to each other. For the sake of brevity, they will not be described in detail.

[0025] At the same time, it should be understood that, for ease of description, the dimensions of the various parts shown in the accompanying drawings are not drawn according to actual scale.

[0026] The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the invention or its application or use.

[0027] Techniques, methods, and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, they should be considered part of the specification.

[0028] It should be noted that similar labels and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be discussed further in subsequent figures.

[0029] The embodiments of this invention can be applied to electronic devices such as terminal devices, computer systems, and servers, and can operate together with a wide range of other general-purpose or special-purpose computing system environments or configurations. Well-known examples of terminal devices, computing systems, environments, and / or configurations suitable for use with electronic devices such as terminal devices, computer systems, and servers include, but are not limited to: personal computer systems, server computer systems, thin clients, thick clients, handheld or laptop devices, microprocessor-based systems, set-top boxes, programmable consumer electronics, network PCs, minicomputer systems, mainframe computer systems, and distributed cloud computing environments including any of the above systems, etc.

[0030] Electronic devices such as terminal devices, computer systems, and servers can be described in the general context of computer system executable instructions (such as program modules) executed by a computer system. Typically, program modules can include routines, programs, object programs, components, logic, data structures, etc., which perform specific tasks or implement specific abstract data types. Computer systems / servers can be implemented in distributed cloud computing environments, where tasks are executed by remote processing devices linked through communication networks. In distributed cloud computing environments, program modules can reside on local or remote computing system storage media, including storage devices.

[0031] Method Implementation Examples: See Figure 1 This is a flowchart illustrating the material cutting method for a fire-resistant silica board partition wall in a factory, as provided in an embodiment of the present invention. As shown, the method includes the following steps: In scanning step S1, the factory building is scanned at each scanning station according to the scanning route to obtain point cloud data of the factory building space.

[0032] Specifically, first, preparation work should be carried out on the scanning equipment. Laser scanning equipment, especially a high-precision 3D laser scanner, can be selected. The location of the scanning stations and the scanning range should be determined according to the factory area, structure, and measurement requirements. Then, the scanning operation can be carried out. The scanning operation can be performed sequentially at each scanning station according to the predetermined scanning route. During the scanning process, care should be taken to avoid personnel walking or objects obstructing the scanning area to ensure that complete and accurate point cloud data is obtained. The point cloud data output format is .e57.

[0033] In data processing step S2, noise points are removed from the acquired factory space point cloud data, and the factory space point cloud data from multiple scanning stations are stitched together using a stitching algorithm to form a 3D point cloud model of the factory.

[0034] Specifically, the point cloud data acquired by scanning is transmitted to the professional software Pointtools for processing. Pointtools software is used to process the data, which can remove noise points and stitch the point cloud data from multiple sites into a complete 3D point cloud model of the factory building through a stitching algorithm, providing accurate basic data for subsequent BIM models.

[0035] Modeling step S3 involves designing and modeling the factory building to obtain the factory building design BIM model.

[0036] Specifically, Rhino modeling software is used to build a BIM model based on the factory building design drawings. This involves designing and modeling the factory building, including preliminary models of the main structure and fireproof partitions.

[0037] In model integration step S4, the 3D point cloud model of the factory building is matched and integrated with the factory building design BIM model to obtain the actual construction factory building BIM model.

[0038] Specifically, the processed 3D point cloud model, i.e., the 3D point cloud model of the factory building, is imported into Rhino software and matched and integrated with the factory building design BIM model. Based on the 3D point cloud model of the factory building, adjustments are made to the factory building design BIM model. By adjusting parameters such as the size and position of components in the factory building design BIM model, it is made to accurately match the actual measured point cloud data, i.e., the spatial point cloud data of the factory building, ensuring that the model truly reflects the actual situation of the factory building.

[0039] Step S5 involves modeling and adjusting the partition walls on the actual factory building BIM model to obtain the factory building model.

[0040] Specifically, the three-dimensional visualization design function of BIM software is used to design the layout, connection method, and reserved openings at the intersections with steel structure components of the partition wall panels in detail, achieving the accuracy of construction drawings. The model output format is .3dm.

[0041] Step S6 involves compiling and outputting the partition wall panel statistics for the factory model, resulting in a partition wall panel material list and construction drawings.

[0042] Specifically, after completing the detailed design, the material cutting information of the silicate boards is extracted from the BIM model, including detailed data such as the size, quantity, and cutting method of each board, and a material list and construction drawings are generated to provide accurate guidance for on-site construction. The output format is .dwg.

[0043] See Figures 2 to 3 This illustrates another preferred procedure for the material cutting method of the fireproof silica board partition wall for factory buildings provided by an embodiment of the present invention. As shown in the figure, the method includes the following steps: In scanning step S1, the factory building is scanned at each scanning station according to the scanning route to obtain point cloud data of the factory building space.

[0044] In data inspection step S7, the point cloud data of the factory space is inspected for data quality to determine whether there are any missing or abnormalities in the point cloud data of the factory space. Then, the process jumps to the scanning step to re-scan.

[0045] Specifically, after the scan is completed, check the data quality promptly. If any missing or abnormal data is found, proceed to scan step S1 and rescan.

[0046] In data processing step S2, noise points are removed from the acquired factory space point cloud data, and the factory space point cloud data from multiple scanning stations are stitched together using a stitching algorithm to form a 3D point cloud model of the factory.

[0047] Modeling step S3 involves designing and modeling the factory building to obtain the factory building design BIM model.

[0048] In model integration step S4, the 3D point cloud model of the factory building is matched and integrated with the factory building design BIM model to obtain the actual construction factory building BIM model.

[0049] Step S5 involves modeling and adjusting the partition walls on the actual factory building BIM model to obtain the factory building model.

[0050] Step S6 involves compiling and outputting the partition wall panel statistics for the factory model, resulting in a partition wall panel material list and construction drawings.

[0051] In summary, the material cutting method for fire-resistant silicate board partition walls in this embodiment offers advantages such as high measurement efficiency and high cutting accuracy. From a measurement perspective, the application of scanning technology, especially 3D laser scanning technology, significantly reduces on-site measurement workload. Compared to traditional manual measurement, which requires a large number of people to measure point by point in the factory, is not only time-consuming and labor-intensive but also prone to omissions, scanning, especially 3D laser scanning, can quickly and comprehensively acquire factory spatial information, greatly shortening measurement time. Regarding cutting accuracy, the high precision of 3D laser scanning and the precise adjustments made through BIM modeling and detailed design significantly improve the cutting accuracy of silicate boards. Scanning can achieve millimeter-level accuracy, and combined with the precise calculation and optimization of cutting information by the BIM model, the cutting dimensions of the silicate partition wall material are more accurate. This effectively avoids material waste caused by inaccurate cutting in traditional methods, significantly reducing material costs and solving the problem that traditional manual measurement of fire-resistant partition walls requires a large number of people to measure point by point in the factory, which is time-consuming, labor-intensive, and prone to omissions.

[0052] Device Example: See Figure 4This is a structural block diagram of the material feeding device for the fireproof silicate board partition wall of a factory provided in an embodiment of the present invention. As shown in the figure, the material feeding device for the fireproof silicate board partition wall of a factory includes: a scanning module 100, a data processing module 200, a modeling module 300, a model integration module 400, a model partition wall adjustment module 500, and a material feeding statistics module 600; wherein, the scanning module 100 is used to scan the factory at each scanning station according to the scanning route to obtain the spatial point cloud data of the factory; the data processing module 200 is used to remove noise points from the obtained spatial point cloud data of the factory and stitch together the spatial point cloud data of the factory from multiple scanning stations using a stitching algorithm to form The system includes: a 3D point cloud model of the factory building; a modeling module 300 for designing and modeling the factory building to obtain a factory building design BIM model; a model integration module 400 for matching and integrating the 3D point cloud model of the factory building with the factory building design BIM model to obtain a real-construction factory building BIM model; a partition wall panel adjustment module 500 for modeling, designing, and adjusting partition walls on the real-construction factory building BIM model to obtain a factory building model; and a material cutting statistics module 600 for statistically analyzing and outputting the partition walls from the factory building model to obtain a material cutting list and construction drawings for the partition walls.

[0053] See Figure 5 This is a structural block diagram of the material feeding device for the fireproof silicate board partition wall of a factory provided in an embodiment of the present invention. As shown in the figure, the material feeding device for the fireproof silicate board partition wall of a factory includes: a scanning module 100, a data processing module 200, a modeling module 300, a model integration module 400, a model partition wall adjustment module 500, a material feeding statistics module 600, and a data detection module 700; wherein, the scanning module 100 is used to scan the factory at each scanning station according to the scanning route to obtain the factory spatial point cloud data; the data processing module 200 is used to remove noise points from the obtained factory spatial point cloud data and stitch together the factory spatial point cloud data from multiple scanning stations to form a three-dimensional point cloud model of the factory through a stitching algorithm; the modeling module 300 is used to design the factory... The system performs design modeling of the factory to obtain a factory design BIM model; the model integration module 400 is used to match and integrate the 3D point cloud model of the factory with the factory design BIM model to obtain a BIM model of the actual factory building; the model partition wall panel adjustment module 500 is used to model, design and adjust the partition walls on the actual factory building BIM model to obtain a factory model; the material cutting statistics module 600 is used to perform statistics and output of the partition walls in the factory model to obtain a material cutting list and construction drawings; the data detection module 700 is used to perform data quality detection on the factory space point cloud data to determine whether there are any missing or abnormalities in the factory space point cloud data, and to rescan it.

[0054] Preferably, the model integration module 400 is used to adjust the factory design BIM model based on the factory's 3D point cloud model so that it matches the factory's spatial point cloud data.

[0055] Preferably, the data processing module 200 is used to perform data processing using Pointtools software.

[0056] Preferably, the modeling module 300 is used to model the factory building design BIM model using Rhino modeling software.

[0057] Electronic device example: See Figure 6 This is a structural block diagram of the electronic device provided in an embodiment of the present invention. For example... Figure 6 As shown, the electronic device 800 includes one or more processors 81 and memory 82.

[0058] The processor 81 may be a central processing unit (CPU) or other form of processing unit with data processing capabilities and / or instruction execution capabilities, and may control other components in the electronic device to perform desired functions.

[0059] The memory 82 may include one or more computer program products, which may include various forms of computer-readable storage media, such as volatile memory and / or non-volatile memory. Volatile memory may include, for example, random access memory (RAM) and / or cache memory. Non-volatile memory may include, for example, read-only memory (ROM), hard disk, flash memory, etc. One or more computer program instructions may be stored on the computer-readable storage medium, and the processor 81 may execute the program instructions to implement the methods of the software programs described in the various embodiments of the present invention above, and / or other desired functions. In one example, the electronic device may also include an input device 83 and an output device 84, these components being interconnected via a bus system and / or other forms of connection mechanisms (not shown).

[0060] In addition, the input device 83 may also include, for example, a keyboard, a mouse, etc.

[0061] The output device 84 can output various information to the outside. The output device 84 may include, for example, a display, a speaker, a printer, and a communication network and its connected remote output devices, etc.

[0062] Of course, for the sake of simplicity, Figure 6 Only some of the components of this electronic device relevant to the present invention are shown, omitting components such as buses, input / output interfaces, etc. In addition, the electronic device may include any other suitable components depending on the specific application.

[0063] Examples of computer program products and computer-readable storage media: In addition to the methods and apparatus described above, embodiments of the present invention may also be computer program products, which include computer program instructions that, when executed by a processor, cause the processor to perform the steps in the methods according to various embodiments of the present invention described in the "Exemplary Methods" section above.

[0064] The computer program product can be written in any combination of one or more programming languages ​​to perform the operations of the embodiments of the present invention. The programming languages ​​include object-oriented programming languages ​​such as Java and C++, as well as conventional procedural programming languages ​​such as C or similar languages. The program code can be executed entirely on the user's computing device, partially on the user's computing device, as a standalone software package, partially on the user's computing device and partially on a remote computing device, or entirely on a remote computing device or server.

[0065] Furthermore, embodiments of the present invention may also be computer-readable storage media storing computer program instructions thereon, which, when executed by a processor, cause the processor to perform the steps of the methods according to various embodiments of the present invention described in the "Exemplary Methods" section above.

[0066] The computer-readable storage medium may be any combination of one or more readable media. A readable medium may be a readable signal medium or a readable storage medium. A readable storage medium may be, for example, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, device, or any combination thereof. More specific examples (a non-exhaustive list) of readable storage media include: an electrical connection having one or more wires, a portable disk, a hard disk, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage device, magnetic storage device, or any suitable combination thereof.

[0067] The basic principles of the present invention have been described above with reference to specific embodiments. However, it should be noted that the advantages, benefits, and effects mentioned in the present invention are merely examples and not limitations, and should not be considered as essential features of each embodiment of the present invention. Furthermore, the specific details disclosed above are for illustrative and facilitative purposes only, and are not limitations. These details do not limit the present invention to the necessity of employing the aforementioned specific details.

[0068] The various embodiments in this specification are described in a progressive manner, with each embodiment focusing on its differences from other embodiments. Similar or identical parts between embodiments can be referred to interchangeably. For system embodiments, since they largely correspond to method embodiments, the description is relatively simple; relevant parts can be referred to the descriptions in the method embodiments.

[0069] The block diagrams of devices, systems, devices, and systems involved in this invention are merely illustrative examples and are not intended to require or imply that they must be connected, arranged, or configured in the manner shown in the block diagrams. As those skilled in the art will recognize, these devices, systems, devices, and systems can be connected, arranged, and configured in any manner. Words such as “comprising,” “including,” “having,” etc., are open-ended terms meaning “including but not limited to,” and are used interchangeably with them. The terms “or” and “and” as used herein refer to the terms “and / or,” and are used interchangeably with them unless the context clearly indicates otherwise. The term “such as” as used herein refers to the phrase “such as but not limited to,” and is used interchangeably with it.

[0070] The methods and systems of the present invention may be implemented in many ways. For example, they may be implemented by software, hardware, firmware, or any combination of software, hardware, and firmware. The above-described order of steps for the methods is for illustrative purposes only, and the steps of the methods of the present invention are not limited to the order specifically described above unless otherwise specifically stated. Furthermore, in some embodiments, the present invention may also be implemented as a program recorded on a recording medium, the program comprising machine-readable instructions for implementing the methods according to the present invention. Thus, the present invention also covers recording media storing programs for performing the methods according to the present invention.

[0071] It should also be noted that in the systems, apparatus, and methods of the present invention, the components or steps can be disassembled and / or recombined. These disassemblies and / or recombinations should be considered equivalents of the present invention. The above description of the disclosed aspects is provided to enable any person skilled in the art to make or use the invention. Various modifications to these aspects will be readily apparent to those skilled in the art, and the general principles defined herein can be applied to other aspects without departing from the scope of the invention. Therefore, the invention is not intended to be limited to the aspects shown herein, but rather to be carried out within the widest scope consistent with the principles and novel features disclosed herein.

[0072] The above description has been given for purposes of illustration and description. Furthermore, this description is not intended to limit the embodiments of the invention to the forms disclosed herein. Although numerous exemplary aspects and embodiments have been discussed above, those skilled in the art will recognize certain variations, modifications, alterations, additions, and sub-combinations therein.

Claims

1. A method for cutting materials for fire-resistant silicate board partitions in factory buildings, characterized in that, Includes the following steps: The scanning process involves sequentially scanning the factory building at each scanning station along the scanning route to obtain point cloud data of the factory space. The data processing steps involve removing noise points from the acquired factory space point cloud data and using a stitching algorithm to stitch together the factory space point cloud data from multiple scanning stations to form a 3D point cloud model of the factory. The modeling process involves designing and modeling the factory building to obtain a BIM model of the factory building design. The model integration step involves matching and integrating the 3D point cloud model of the factory building with the factory building design BIM model to obtain the actual factory building BIM model. The steps for adjusting the partition wall panels in the model are as follows: the partition wall panels are modeled, designed, and adjusted on the actual BIM model of the factory building to obtain the factory building model. The material cutting and statistics step involves compiling and outputting the statistics of the partition wall panels in the factory model to obtain the material cutting list and construction drawings for the partition wall panels.

2. The method for cutting materials for fire-resistant silicate board partition walls in factory buildings according to claim 1, characterized in that, Between the scanning step and the data processing step, the following step is also included: The data inspection step involves performing data quality inspection on the factory space point cloud data to determine whether there are any missing or abnormalities in the factory space point cloud data, and then jumping to the scanning step to re-scan.

3. The method for cutting materials for fire-resistant silicate board partition walls in factory buildings according to claim 1 or 2, characterized in that, In the model integration step, the factory design BIM model is adjusted based on the factory 3D point cloud model to match the factory spatial point cloud data.

4. The method for cutting materials for the fire-resistant silicate board partition wall of a factory building according to claim 1 or 2, characterized in that, In the data processing step, Pointtools software is used for data processing.

5. The method for cutting materials for fire-resistant silicate board partition walls in factory buildings according to claim 1 or 2, characterized in that, In the modeling step, Rhino modeling software is used to model the factory building BIM model.

6. A feeding device for fire-resistant silicate board partition walls in factory buildings, characterized in that, include: The scanning module is used to scan the factory building sequentially at each scanning station according to the scanning route to obtain point cloud data of the factory building space. The data processing module is used to remove noise points from the acquired factory space point cloud data and to stitch together the factory space point cloud data from multiple scanning stations to form a 3D point cloud model of the factory using a stitching algorithm. The modeling module is used to design and model the factory building to obtain the factory building design BIM model; The model integration module is used to match and integrate the 3D point cloud model of the factory building with the factory building design BIM model to obtain the actual factory building BIM model. The partition wall adjustment module is used to model, design, and adjust the partition walls on the actual factory building BIM model to obtain the factory building model. The material cutting statistics module is used to count and output the partition wall panels of the factory model, and obtain the material cutting list and construction drawings of the partition wall panels.

7. The feeding device for the fireproof silica board partition wall of the factory building according to claim 1, characterized in that, Also includes: The data inspection module is used to inspect the point cloud data of the factory space, determine whether there are any missing or abnormalities in the point cloud data of the factory space, and rescan.

8. The feeding device for the fireproof silica board partition wall of the factory building according to claim 1 or 2, characterized in that, The model integration module is used to adjust the factory design BIM model based on the factory's three-dimensional point cloud model so that it matches the factory's spatial point cloud data.

9. A computer-readable storage medium, characterized in that, The storage medium stores a computer program for performing the method as described in any one of claims 1 to 5.

10. An electronic device, characterized in that, The electronic device includes: processor; Memory used to store the processor's executable instructions; The processor is configured to read the executable instructions from the memory and execute the instructions to implement the method as described in any one of claims 1 to 5.