Model configuration method and device of smoke exhaust system, electronic equipment and storage medium

By establishing a smoke exhaust system model and configuring parameters using a two-dimensional matrix, the problem of configuration errors caused by the complexity of debugging commercial smoke exhaust systems was solved, achieving efficient and safe parameter configuration and debugging.

CN115017664BActive Publication Date: 2025-11-04HANGZHOU ROBAM APPLIANCES CO LTD
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Patent Information

Application Number
CN202210757480.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-06-29
Publication Date
2025-11-04
Estimated Expiration
2042-06-29

AI Technical Summary

Technical Problem

The installation and commissioning process of commercial smoke exhaust systems is complex and can easily lead to errors or omissions in parameter configuration, posing a significant risk of abnormalities.

Method used

By establishing a smoke exhaust system model, including the main unit, smoke exhaust ducts, and terminal equipment, the visualization of the model is improved. The working parameters of each terminal equipment and the size parameters of the smoke exhaust ducts are configured. The smoke exhaust ducts are arranged in an M*N two-dimensional matrix, and the parameters are configured row by row or column by column.

Benefits of technology

This improves the accuracy and reliability of the smoke exhaust system model, ensures the efficiency and safety of commissioning or control, and reduces the risk of parameter omissions and configuration errors.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the application discloses a model configuration method and device of a smoke exhaust system, electronic equipment and a storage medium, comprising: establishing a smoke exhaust system model, wherein the smoke exhaust system model comprises a host, a smoke exhaust pipeline and at least one terminal device, the host is connected with the at least one terminal device through the smoke exhaust pipeline; and the working parameters of each terminal device and the size parameters of the smoke exhaust pipeline in the smoke exhaust system model are configured. The technical scheme provided by the embodiment of the application improves the model visualization degree of the smoke exhaust system and facilitates rapid and accurate configuration of the model.
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Description

TECHNICAL FIELD

[0001] The embodiment of the application relates to the technical field of smoke exhaust systems, and particularly relates to a model configuration method and device of a smoke exhaust system, an electronic device and a storage medium. BACKGROUND

[0002] A commercial smoke exhaust system is a complex pipeline system with multiple layers and different numbers of air valves in each layer. The smoke exhaust system is connected by branch pipes in the smoke exhaust pipeline, and then connected to the main pipe of the smoke exhaust pipeline, and then connected to the smoke exhaust fan. When installing and debugging the smoke exhaust system, various parameters in the smoke exhaust system need to be configured by the host.

[0003] However, due to the high complexity of the smoke exhaust system and the complex situation on site, the debugging process is very complex, especially the numerous parameters to be configured, which is easy to cause configuration errors or omissions, and further cause great abnormal risks of the smoke exhaust system. SUMMARY

[0004] The embodiment of the application provides a model configuration method and device of a smoke exhaust system, an electronic device and a storage medium, so as to improve the model visualization degree of the smoke exhaust system and facilitate rapid and accurate configuration of the model.

[0005] In a first aspect, the embodiment of the application provides a model configuration method of a smoke exhaust system, comprising:

[0006] establishing a smoke exhaust system model, wherein the smoke exhaust system model comprises a host, a smoke exhaust pipeline and at least one terminal device, and the host is connected with the at least one terminal device through the smoke exhaust pipeline;

[0007] configuring working parameters of each terminal device in the smoke exhaust system model and size parameters of the smoke exhaust pipeline.

[0008] In a second aspect, the embodiment of the application further provides a model configuration device of a smoke exhaust system, comprising:

[0009] a model establishing module configured to establish a smoke exhaust system model, wherein the smoke exhaust system model comprises a host, a smoke exhaust pipeline and at least one terminal device, and the host is connected with the at least one terminal device through the smoke exhaust pipeline;

[0010] a parameter configuration module configured to configure working parameters of each terminal device in the smoke exhaust system model and size parameters of the smoke exhaust pipeline.

[0011] In a third aspect, the embodiment of the application further provides an electronic device, comprising:

[0012] one or more processors;

[0013] a storage device storing one or more programs;

[0014] When the one or more programs are executed by the one or more processors, the one or more processors implement the model configuration method of the smoke exhaust system according to any one of the first aspect.

[0015] In a fourth aspect, the embodiments of the present application further provide a computer readable storage medium storing computer instructions, the computer instructions being used to make the processor execute the model configuration method of the smoke exhaust system according to any one of the first aspect.

[0016] The technical scheme of the embodiments of the present application establishes a smoke exhaust system model, wherein the smoke exhaust system model comprises a host, a smoke exhaust pipeline and at least one terminal device, the host is connected with the at least one terminal device through the smoke exhaust pipeline, the smoke exhaust system model is more visualized, and it is convenient for the staff to quickly and accurately understand the connection mode and structural features of the entire smoke exhaust system. Then, the working parameters of each terminal device and the size parameters of the smoke exhaust pipeline in the smoke exhaust system model are configured, which can further avoid the problems of omission and configuration errors caused by complex model and numerous parameters, improve the accuracy of the smoke exhaust system model, and ensure the efficiency and safety of the staff when debugging or controlling through the smoke exhaust system model.

[0017] It should be understood that the content described in this part is not intended to identify the key or important features of the embodiments of the present application, nor is it used to limit the scope of the present application. Other features of the present application will become apparent from the following description. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments description. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor.

[0019] Figure 1 A flow chart of a model configuration method of a smoke exhaust system provided by the embodiments of the present application;

[0020] Figure 2 A structural schematic diagram of a smoke exhaust system provided by the embodiments of the present application;

[0021] Figure 3 A flow chart of another model configuration method of a smoke exhaust system provided by the embodiments of the present application;

[0022] Figure 4A model structure schematic diagram of a smoke exhaust system provided by an embodiment of the present application;

[0023] Figure 5 A flow chart of a model configuration method of a smoke exhaust system provided by an embodiment of the present application;

[0024] Figure 6 A flow chart of a model configuration method of a smoke exhaust system provided by an embodiment of the present application;

[0025] Figure 7 A flow chart of a model configuration method of a smoke exhaust system provided by an embodiment of the present application;

[0026] Figure 8 A flow chart of a model configuration method of a smoke exhaust system provided by an embodiment of the present application;

[0027] Figure 9 A flow chart of a model configuration method of a smoke exhaust system provided by an embodiment of the present application;

[0028] Figure 10 A schematic diagram of a parameter setting window provided by an embodiment of the present application;

[0029] Figure 11 A flow chart of a model configuration method of a smoke exhaust system provided by an embodiment of the present application;

[0030] Figure 12 A structure schematic diagram of a model configuration device of a smoke exhaust system provided by an embodiment of the present application;

[0031] Figure 13 A structure schematic diagram of an electronic device provided by an embodiment of the present application. DETAILED DESCRIPTION

[0032] In order to make the personnel in the art better understand the present application, the technical solutions in the embodiments of the present application will be described clearly and completely in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by the personnel in the art without creative labor should belong to the protection scope of the present application.

[0033] It should be noted that the terms "first", "second", and the like in the description and in the claims of the present application and the above-described drawings are used to distinguish similar objects, and do not necessarily have to be used to describe a specific order or sequence. It should be understood that the data thus used can be interchanged under appropriate circumstances, so that the embodiments of the application described herein can be implemented in an order other than that illustrated or described herein. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion, for example, a process, method, system, product or device including a series of steps or units does not have to be limited to only those steps or units clearly listed, but can include other steps or units not clearly listed or inherent to these processes, methods, products or devices.

[0034] Figure 1 A flowchart of a model configuration method of a smoke exhaust system provided for an embodiment of the present application is shown in Figure 1 The model configuration method of the smoke exhaust system includes:

[0035] S101, a smoke exhaust system model is established, wherein the smoke exhaust system model includes a host, a smoke exhaust duct and at least one terminal device, the host is connected with the at least one terminal device through the smoke exhaust duct.

[0036] It can be understood that, Figure 2 A structural schematic diagram of a smoke exhaust system provided for an embodiment of the present application is shown in Figure 2 The host 10 in the smoke exhaust system is usually installed at the outlet of the roof exhaust main pipe, the fan 11 in the host 10 plays a role in exhausting smoke inside the smoke exhaust duct 20, the host 10 further includes a host IoT control device 12, which is used to realize control of the fan 11. The terminal device 30 refers to a hood device installed at the outlet of the kitchen branch pipe, and specifically includes a damper 31, a terminal IoT control device 32, a switching device 33, a smoke collecting hood 3 and a smoke stove 35, wherein the switching device 33 is in communication connection with the terminal IoT control device 32, and is used to control the opening or closing of the terminal device 30. The smoke exhaust duct 20 connects each terminal device 30 in each floor kitchen through a transverse branch pipe, and is collected to a longitudinal main pipe, and under the action of the fan 11, the oil smoke is exhausted to the high altitude. In addition, the smoke exhaust system usually further includes a cloud platform 40, the host IoT control device 12 performs wireless communication with the cloud platform 40 to detect the working condition of the entire smoke exhaust system in real time, and can also remotely control the smoke exhaust system. Wherein, the host 10 and the terminal device 30 realize the interaction of information through the bidirectional communication of the IoT control device, which can be communicated through a wireless mode or a wired mode, and the embodiments of the present application do not limit this, which can be selectively set according to the actual working condition.

[0037] Since the actual smoke exhaust system is relatively complex, the existing control method is complex, and in the process of debugging the smoke exhaust system, electronic equipment is usually needed for control, for example, a notebook or a portable handheld device is used to control the smoke exhaust system, however, since the smoke exhaust system is relatively complex, and there are many control parameters in the control process, configuration errors or omissions are easy to occur, and thus the smoke exhaust system has a large abnormal risk. Therefore, after the cloud platform and the host establish communication, through the platform software or other operating systems in the cloud platform, a smoke exhaust system model can be established according to the connection condition of the actual smoke exhaust system, and the model visualization degree of the smoke exhaust system is improved.

[0038] S102, the working parameters of each terminal device in the smoke exhaust system model and the size parameters of the smoke exhaust pipeline are configured.

[0039] Specifically, after the smoke exhaust system model is established, the working parameters of each terminal device in the smoke exhaust system and the size parameters of the smoke exhaust pipeline need to be configured. Since the visualization degree of the smoke exhaust system model is high, the personnel working on the parameter configuration of the smoke exhaust system model greatly avoids the risk of parameter configuration errors or omissions, thereby improving the accuracy and stability of the entire control when the smoke exhaust system is controlled and debugged through the smoke exhaust system model, and shortening the debugging time period.

[0040] It should be noted that the size parameters of the smoke exhaust pipeline include but are not limited to the length of the smoke exhaust pipeline and the cross-sectional area of the smoke exhaust pipeline, and the working parameters of the terminal device include but are not limited to the air volume of the terminal device, which can be set according to the actual situation.

[0041] In the embodiment of the application, the smoke exhaust system model is established, wherein the smoke exhaust system model includes a host, a smoke exhaust pipeline and at least one terminal device, the host is connected with the at least one terminal device through the smoke exhaust pipeline, the smoke exhaust system model is more visualized, which is convenient for the personnel to quickly and accurately understand the connection mode and structural characteristics of the entire smoke exhaust system, and then the working parameters of each terminal device in the smoke exhaust system model and the size parameters of the smoke exhaust pipeline are configured, which can further avoid the problems of omissions and configuration errors caused by complex models and numerous parameters, improve the accuracy of the smoke exhaust system model, and ensure the efficiency and safety of the personnel when the smoke exhaust system is debugged or controlled through the smoke exhaust system model.

[0042] Optionally, continuing to refer to Figure 2As shown, the smoke exhaust duct 20 includes a main pipe 21, at least one branch pipe 22, and at least one sub-pipe 23; the main pipe 21 includes at least one sub-main pipe 211, a first elbow connecting part 212, and at least one first tee connecting part 213, one end of the first elbow connecting part 212 and one end of the first tee connecting part 213 are connected with one end of the branch pipe 22 respectively, and the other two ends of the first tee connecting part 213 are connected between adjacent two sub-main pipes 211; the branch pipe 22 includes a plurality of sub-branch pipes 221, a second elbow connecting part 222, and at least one second tee connecting part 223, one end of the second elbow connecting part 222 and one end of the second tee connecting part 223 are connected with one end of the sub-pipe 23 respectively, and the other two ends of the second tee connecting part 223 are connected between adjacent two sub-branch pipes 221; the terminal device 30 is connected with the other end of the sub-pipe 23, and the terminal device 30 is used for completing smoke exhaust through the sub-pipe 23, the branch pipe 22, the main pipe 21, and the fan 11 in the host machine 10 in sequence.

[0043] Thus, on the basis of Figure 1 , a smoke exhaust system model is established, including: the smoke exhaust system model is established as a model in the form of an M*N two-dimensional matrix of the smoke exhaust duct, wherein the number of rows of the M*N two-dimensional matrix is the number of branch pipes, the number of columns of the M*N two-dimensional matrix is the maximum value of the number of sub-pipes connected on the same branch pipe, and M and N are both integers greater than or equal to 1.

[0044] Figure 3 The flow chart of another model configuration method of a smoke exhaust system provided by the embodiment of the present application is as shown in Figure 3 Thus, the model configuration method of the smoke exhaust system includes:

[0045] S301, a smoke exhaust system model is established as a model in the form of an M*N two-dimensional matrix of the smoke exhaust duct, wherein the number of rows of the M*N two-dimensional matrix is the number of branch pipes, the number of columns of the M*N two-dimensional matrix is the maximum value of the number of sub-pipes connected on the same branch pipe, and M and N are both integers greater than or equal to 1.

[0046] The values of M and N can be set according to the connection mode of the main pipe 21, the at least one branch pipe 22, and the at least one sub-pipe 23 in the actual smoke exhaust duct, and the embodiment of the present application does not limit this.

[0047] Exemplarily, Figure 4 The model structure schematic diagram of a smoke exhaust system provided by the embodiment of the present application is as shown in Figure 4As shown, the smoke exhaust system model is a model in which the smoke exhaust ducts are in a 3*4 two-dimensional matrix form, and the intersection of the rows and columns in the matrix corresponds to the actual terminal device 30. Since the number of connected terminal devices 30 on different branch pipes 22 in the actual smoke exhaust duct 20 can be different. In order to facilitate understanding, the parameters corresponding to the terminal devices 30 or the smoke exhaust ducts 20 that have differences in the actual connection relationship (i.e., the terminal devices 30 or the smoke exhaust ducts 20 that do not exist) can not be configured, and other colors, annotations or dashed lines can be used for illustration and indication, thereby further improving the visualization and accuracy of the smoke exhaust system model. It should be noted that the present application does not limit the specific difference form, and the person skilled in the art can select the optional setting according to the actual situation.

[0048] S302, the working parameters of each terminal device in the smoke exhaust system model and the size parameters of the smoke exhaust duct are configured.

[0049] In this embodiment, by establishing the smoke exhaust system model as a 2D matrix of M*N of the smoke exhaust duct 20, various application scenarios can be met. On the one hand, the frequency of re-establishing the calculation model due to the change of the connection mode of the smoke exhaust duct 20 is reduced. On the other hand, by establishing the smoke exhaust duct 20 in the smoke exhaust system into a two-dimensional matrix form, the calculation complexity can be simplified and the calculation efficiency can be improved. At the same time, when configuring the working parameters of each terminal device 30 in the smoke exhaust system model and the size parameters of the smoke exhaust duct 20, the two-dimensional matrix form of the smoke exhaust duct 20 can be used to configure the parameters row by row or column by column, thereby greatly reducing the risk of omission or error in the parameter configuration process, and improving the accuracy and reliability of the smoke exhaust system model.

[0050] Optionally, Figure 5 The flow chart of another model configuration method of a smoke exhaust system provided by the embodiment of the present application is shown in Figure 5 As shown, on the basis of the above embodiment, after establishing the smoke exhaust system model, the method comprises: numbering the smoke exhaust ducts and each terminal device in the smoke exhaust system model; configuring the working parameters of each terminal device and the size parameters of the smoke exhaust duct in the smoke exhaust system model, comprising: configuring the working parameters of each terminal device and the size parameters of the smoke exhaust duct in the smoke exhaust system model according to the numbering of the smoke exhaust duct according to a preset rule, and the preset rule comprises the arrangement order of the numbering of the smoke exhaust duct. Therefore, the model configuration method of the smoke exhaust system comprises:

[0051] S501, establishing a smoke exhaust system model as a model in which the smoke exhaust ducts are in a 2D matrix form of M*N, wherein the number of rows of the 2D matrix is the number of branch pipes, the number of columns of the 2D matrix is the maximum value of the number of sub-pipes connected on the same branch pipe, and M and N are both integers greater than or equal to 1.

[0052] S502, numbering the exhaust ducts and the terminal devices in the exhaust system model.

[0053] The numbering of the exhaust ducts and the terminal devices in the exhaust system model can be performed according to any numbering rule, and the numbering of the exhaust ducts can present different sequences. The embodiments of the present application do not limit the specific numbering rule, and do not limit the presentation of the numbering, for example, Arabic numerals or English letters.

[0054] Specifically, the numbering of the exhaust ducts and the terminal devices in the exhaust system model enables each terminal device 30 or the main duct 21, the branch duct 22 or the sub-duct 23 in the exhaust duct 20 to correspond to a unique number, so that the staff can accurately distinguish. Meanwhile, the sub-main duct 211 in each main duct 21 and the sub-branch duct 221 in each branch duct 22 also correspond to different numbers, so as to further improve the visualization of the exhaust system model, and improve the accuracy of the model configuration by the staff.

[0055] S503, according to the numbering of the exhaust ducts, the working parameters of the terminal devices and the size parameters of the exhaust ducts in the exhaust system model are configured according to a preset rule, and the preset rule includes the arrangement sequence of the numbering of the exhaust ducts.

[0056] Specifically, after the numbering of the exhaust ducts and the terminal devices in the exhaust system model, each terminal device 30 and the main duct 21, the branch duct 22 or the sub-duct 23 in the exhaust duct 20 correspond to a unique number. Further, the working parameters of the terminal devices and the size parameters of the exhaust ducts can be configured according to the arrangement sequence of the numbering of the exhaust ducts 20, for example, the sequence of the numbering of the branch ducts 22 corresponding to all rows, or the sequence of the numbering of the sub-ducts 23 corresponding to all columns, so as to avoid omission or error in the configuration of the parameters, and improve the accuracy of the exhaust system model.

[0057] Optionally, Figure 6 Another flowchart of a model configuration method of an exhaust system provided by the embodiments of the present application is shown in Figure 6 Figure 5 ​On the basis of the step S502, the exhaust ducts and the terminal devices in the exhaust system model are numbered, including: configuring the number of the terminal device corresponding to the m1th row and the n1th column in the two-dimensional matrix as m1_n1, wherein 1≤m1≤M, 1≤n1≤N; configuring the number of the sub-pipe to be the same as the number of the terminal device connected to the sub-pipe; configuring the number of the branch pipe corresponding to the m2th row in the two-dimensional matrix as M-m2+1, and the number of the nth2 sub-branch pipe of the branch pipe as (M-m2+1)_n2, wherein n2 is sequentially increased in the direction of increasing the number of the column in the two-dimensional matrix, 1≤m2≤M, 1≤n2≤N; configuring the number of the sub-main pipe m3, which is sequentially increased in the direction of increasing the number of the branch pipe, wherein 1≤m3≤M. Therefore, the model configuration method of the exhaust system includes:

[0058] S601, the exhaust system model is established as a model in the form of M*N two-dimensional matrix of the exhaust duct, wherein the number of rows of the M*N two-dimensional matrix is the number of branch pipes, the number of columns of the M*N two-dimensional matrix is the maximum value of the number of sub-pipes connected to the same branch pipe, and M and N are both integers greater than or equal to 1.

[0059] S602, the number of the terminal device corresponding to the m1th row and the n1th column in the two-dimensional matrix is configured as M-m1+1_n1, wherein 1≤m1≤M, 1≤n1≤N.

[0060] For example, the exhaust duct 20 is in the form of a 3*4 two-dimensional matrix, i.e., M is 3 and N is 4. Since the two-dimensional matrix is a standard matrix, the intersection of the row and the column in the matrix corresponds to an actual terminal device 30. Thus, according to the numbering rule that the number of the terminal device corresponding to the m1th row and the n1th column in the two-dimensional matrix is M-m1+1_n1, the number of the terminal device 30 in the 1st row and the 1st column is 3_1, and the number of the terminal device 30 in the 3rd row and the 1st column is 1_1.

[0061] S603, the number of the sub-pipe is configured to be the same as the number of the terminal device connected to the sub-pipe.

[0062] Specifically, continuing to refer to the Figure 4 Each terminal device is connected to the branch pipe through a sub-pipe 23. Thus, the number of the sub-pipe 23 is configured to be the same as the number of the terminal device 30 connected to the sub-pipe 23. After determining the number of one of the sub-pipe 23 or the terminal device 30, the number of the other one can be determined, which reduces the complexity of numbering and facilitates the checking and model configuration of the staff.

[0063] S604, configure the number of the branch pipe corresponding to the m2th row of the two-dimensional matrix as M-m2+1, and the number of the sub-branch pipe as (M-m2+1)_n2, where n2 is the n2th sub-branch pipe of the branch pipe, n2 increases in sequence along the direction in which the number of the column of the two-dimensional matrix increases, 1≤m2≤M, and 1≤n2≤N.

[0064] Specifically, since each branch pipe 22 is divided into N branch pipes 221, i.e., corresponding to N columns, meanwhile, the number of the branch pipe 22 corresponding to the 1st row is M, and the number of the branch pipe 22 corresponding to the Mth row is 1, thus, the number of the corresponding sub-branch pipe can be set as (M-m2+1)_n2. For example, continuing to refer to Figure 4 As shown, the number of the sub-branch pipe 221 corresponding to the 1st row and the 2nd column is 3_2.

[0065] S605, configure the number of the sub-main pipe m3, which increases in sequence along the direction in which the number of the branch pipe increases, where 1≤m3≤M.

[0066] Specifically, the main pipe 31 is divided into M sub-main pipes 211 by M branch pipes, and the number of the main pipe increases in sequence along the direction in which the number of the branch pipe increases, i.e., the direction in which the number of the row of the two-dimensional matrix decreases. For example, the number of the sub-main pipe connected between the branch pipe 22 corresponding to the 1st row and the branch pipe 22 corresponding to the 2nd row is 3.

[0067] S606, according to the number of the smoke exhaust duct, configure the working parameters of each terminal device and the size parameters of the smoke exhaust duct in the smoke exhaust system model according to a preset rule, and the preset rule includes the arrangement order of the number of the smoke exhaust duct.

[0068] In this embodiment, after the number corresponding to the terminal device 30 is determined, the sub-pipes and the branch pipes and the main pipes through which the terminal device 30 passes in sequence according to the smoke exhaust path can be numbered in a certain number order, which can further improve the visualization degree of the smoke exhaust system model, facilitate the operation of the staff, and simplify the configuration complexity of the model.

[0069] It should be noted that the above numbering method is not the only numbering method, and other numbering methods can also be used to represent the order and rule of the number of the smoke exhaust duct, which will not be described one by one here, and any adaptive changes can be made by the person skilled in the art to facilitate the visualization of the model.

[0070] Optionally, Figure 7 A flowchart of another model configuration method of a smoke exhaust system provided by an embodiment of the present application is shown in Figure 7 As shown in Figure 6On the basis of the numbering of the smoke exhaust ducts, the working parameters of each terminal device and the size parameters of the smoke exhaust ducts in the smoke exhaust system model are configured according to preset rules, the preset rules including the arrangement order of the numbering of the smoke exhaust ducts, including: along the increasing direction of the numbering of the branch pipes, the size parameters of the branch pipes and the size parameters of the main pipes are sequentially configured, and for the same branch pipe, along the increasing direction of the numbering of the sub-branch pipes, the size parameters of the sub-pipes are sequentially configured, wherein the size parameters of the smoke exhaust ducts include the cross-sectional area and length of each sub-main pipe, the cross-sectional area and length of each sub-branch pipe, and the cross-sectional area and length of each sub-pipe; according to the working parameters of the terminal device, the order of the numbering of the sub-branch pipes referred to when configuring the working parameters of each terminal device is adjusted, wherein the working parameters of the terminal device include the terminal target air volume, if the terminal target air volume of the terminal device is zero, the working parameters of each terminal device are sequentially configured along the decreasing direction of the numbering of the sub-branch pipes; if the terminal target air volume of the terminal device is not zero, the working parameters of each terminal device are sequentially configured along the increasing direction of the numbering of the sub-branch pipes. Therefore, the model configuration method of the smoke exhaust system includes:

[0071] S701, a smoke exhaust system model is established as a model in the form of an M*N two-dimensional matrix of smoke exhaust ducts, wherein the number of rows of the M*N two-dimensional matrix is the number of branch pipes, the number of columns of the M*N two-dimensional matrix is the maximum value of the number of sub-pipes connected on the same branch pipe, and M and N are both integers greater than or equal to 1.

[0072] S702, the numbering of the terminal device corresponding to the m1th row and the n1th column in the two-dimensional matrix is configured as m1_n1, wherein 1≤m1≤M and 1≤n1≤N.

[0073] S703, the numbering of the sub-pipe is configured to be the same as the numbering of the terminal device connected to the sub-pipe.

[0074] S704, the numbering of the branch pipe corresponding to the m2th row in the two-dimensional matrix is configured as M-m2+1, and the numbering of the sub-branch pipe is (M-m2+1)_n2, wherein n2 is the n2th sub-branch pipe of the branch pipe, n2 increases sequentially along the increasing direction of the numbering of the columns in the two-dimensional matrix, 1≤m2≤M, and 1≤n2≤N.

[0075] S705, the numbering m3 of the sub-main pipe is configured, and along the increasing direction of the numbering of the branch pipes, m3 increases sequentially, wherein 1≤m3≤M.

[0076] S706, along the increasing direction of the numbering of the branch pipes, the size parameters of the branch pipes and the size parameters of the main pipes are sequentially configured, and for the same branch pipe, along the increasing direction of the numbering of the sub-branch pipes, the size parameters of the sub-pipes are sequentially configured, wherein the size parameters of the smoke exhaust ducts include the cross-sectional area and length of each sub-main pipe, the cross-sectional area and length of each sub-branch pipe, and the cross-sectional area and length of each sub-pipe.

[0077] Continue to refer to Figure 4 As shown, it can be understood that, following the increasing direction of the branch pipe 22's numbering, i.e., along the column direction of the two-dimensional matrix, the parameters of each branch pipe 22 and main pipe 21 are configured sequentially, starting from the branch pipe 22 furthest from the host 11. Corresponding to the same branch pipe 22, the dimensional parameters of the sub-branch pipes 221 are configured sequentially, following the increasing direction of the sub-branch pipe 221's numbering, i.e., starting from the sub-branch pipe 221 furthest from the main pipe 21. Thus, by using the order of branch pipes 22 (rows) and sub-branch pipes 221 (columns) in the two-dimensional matrix to configure the dimensional parameters of the smoke exhaust duct 20, omissions and parameter configuration errors can be avoided, providing accuracy and reliability for the smoke exhaust system model. The dimensional parameters of the smoke exhaust duct include the cross-sectional area and length of each sub-main pipe, the cross-sectional area and length of each sub-branch pipe, and the cross-sectional area and length of each sub-pipe, but are not limited to these. Depending on the shape of the smoke exhaust duct, the cross-sectional area of ​​each pipe can also be represented by its diameter or the length and width of the cross-section. This embodiment of the invention does not impose any limitations on this.

[0078] S707. Based on the operating parameters of the terminal equipment, adjust the order of the sub-branch numbers referenced when configuring the operating parameters of each terminal equipment. The operating parameters of the terminal equipment include the terminal target air volume. If the terminal target air volume of the terminal equipment is zero, configure the operating parameters of each terminal equipment sequentially in the direction of decreasing sub-branch numbers. If the terminal target air volume of the terminal equipment is not zero, configure the operating parameters of each terminal equipment sequentially in the direction of increasing sub-branch numbers.

[0079] Specifically, the operating parameters of the terminal equipment include the target air volume, which is the air volume value corresponding to the terminal equipment's operation. When the target air volume is zero, the terminal equipment is considered to be in a disabled state, while when the target air volume is not zero, the terminal equipment is considered to be in an enabled state. It's important to understand that "enabled" and "disabled" here do not refer to the terminal equipment's operating status being running or stopped, but rather to the correspondence between the terminal equipment in the smoke exhaust system model and the actual terminal equipment in the smoke exhaust system. That is, when a terminal equipment is enabled, there is a corresponding actual terminal equipment; when a terminal equipment is disabled, there is no corresponding actual terminal equipment.

[0080] Since the resistance of the flue during the flue gas extraction process needs to be accurately calculated when the model using the flue gas extraction system is used for control operation, when the terminal target air volume of the terminal device is configured, the control accuracy of the model can be improved by setting according to the flow direction of the oil fume during the flue gas extraction process. In this way, if the terminal target air volume of the terminal device is zero, the working parameters of each terminal device are sequentially configured in the direction in which the number of the sub-branch decreases, and if the terminal target air volume of the terminal device is not zero, the working parameters of each terminal device are sequentially configured in the direction in which the number of the sub-branch increases.

[0081] With reference to the foregoing Figure 4 , the working parameters of each terminal device are sequentially configured in the direction in which the number of the sub-branch decreases, i.e., in the direction in which the number of columns in the flue gas extraction pipeline two-dimensional matrix increases, and the working parameters of each terminal device are sequentially configured in the direction in which the number of the sub-branch increases, i.e., in the direction in which the number of columns in the flue gas extraction pipeline two-dimensional matrix decreases.

[0082] In the embodiment, when the working parameters of each terminal device and the size parameters of the flue gas extraction pipeline in the flue gas extraction system model are configured, the preset rule includes the arrangement order of the numbers of the flue gas extraction pipelines, the arrangement order of the numbers of the flue gas extraction pipelines can be used as a reference parameter to configure a sequential reference direction, the accuracy of the parameter configuration of the flue gas extraction system model can be improved, and the reliability of the flue gas extraction system model is ensured.

[0083] Optionally, Figure 8 A flowchart of another method for configuring a model of a flue gas extraction system according to an embodiment of the present application is shown in Figure 8 , which is based on the method shown in Figure 7 . According to the number of the flue gas extraction pipeline, the working parameters of each terminal device and the size parameters of the flue gas extraction pipeline in the flue gas extraction system model are configured according to a preset rule, the preset rule includes the arrangement order of the numbers of the flue gas extraction pipelines, and further includes: confirming the arrangement order of the numbers of the corresponding flue gas extraction pipelines when the working parameters of each terminal device or the size parameters of the flue gas extraction pipeline in the flue gas extraction system model are configured; and when the arrangement order of the numbers of the flue gas extraction pipelines does not meet the preset rule, an alarm is given. Therefore, the method for configuring a model of a flue gas extraction system includes:

[0084] S801. A model of a flue gas extraction system is established as a model in the form of an M*N two-dimensional matrix of flue gas extraction pipelines, where the number of rows of the M*N two-dimensional matrix is the number of branches, the number of columns of the M*N two-dimensional matrix is the maximum number of sub-pipes connected to the same branch, and M and N are both integers greater than or equal to 1.

[0085] S802. The number of the terminal device corresponding to the m1th row and the n1th column in the two-dimensional matrix is configured as m1_n1, where 1≤m1≤M and 1≤n1≤N.

[0086] S803, the number of the sub-pipe is configured to be the same as the number of the terminal device connected to the sub-pipe.

[0087] S804, the number of the branch pipe corresponding to the m2th row of the two-dimensional matrix is configured to be M-m2+1, and the number of the sub-branch pipe is (M-m2+1)_n2, where n2 is the n2th sub-branch pipe of the branch pipe, n2 increases in turn along the direction in which the number of the column in the two-dimensional matrix increases, 1≤m2≤M, and 1≤n2≤N.

[0088] S805, the number of the sub-main pipe m3 is configured, which increases in turn along the direction in which the number of the branch pipe increases, where 1≤m3≤M.

[0089] S806, the size parameters of the branch pipe and the size parameters of the main pipe are configured in turn along the direction in which the number of the branch pipe increases, and for the same branch pipe, the size parameters of the sub-pipe are configured in turn along the direction in which the number of the sub-branch pipe increases, where the size parameters of the smoke exhaust duct include the cross-sectional area and the length of each sub-main pipe, the cross-sectional area and the length of each sub-branch pipe, and the cross-sectional area and the length of each sub-pipe.

[0090] S807, according to the working parameters of the terminal device, the order of the number of the sub-branch pipe referred to when configuring the working parameters of each terminal device is adjusted, where the working parameters of the terminal device include the terminal target air volume, if the terminal target air volume of the terminal device is zero, the working parameters of each terminal device are configured in turn along the direction in which the number of the sub-branch pipe decreases, and if the terminal target air volume of the terminal device is not zero, the working parameters of each terminal device are configured in turn along the direction in which the number of the sub-branch pipe increases.

[0091] S808, the arrangement order of the number of the corresponding smoke exhaust duct when configuring the working parameters of each terminal device or the size parameters of the smoke exhaust duct in the smoke exhaust system model is confirmed.

[0092] Specifically, when configuring the working parameters of each terminal device or the size parameters of the smoke exhaust duct in the smoke exhaust system model, the arrangement order of the number of the corresponding smoke exhaust duct can be determined, and compared with the preset rule to determine whether the arrangement order of the number of the corresponding smoke exhaust duct in the actual parameter configuration process meets the preset rule.

[0093] S809, when the arrangement order of the number of the smoke exhaust duct does not meet the preset rule, an alarm prompt is given.

[0094] The alarm prompt can be a sound prompt, or an icon, text, or other display prompt, which is not limited in the embodiments of the present application and can be selectively set according to actual conditions.

[0095] In this embodiment of the invention, by configuring the working parameters of each terminal device and the size parameters of the exhaust pipe in the exhaust system model according to the exhaust pipe number and preset rules, the arrangement order of the exhaust pipe number corresponding to the working parameters of each terminal device or the size parameters of the exhaust pipe in the exhaust system model is monitored in real time, compared with the preset rules, and an alarm is issued when it is determined that the preset rules are not met. This can further improve the accuracy of the exhaust system model parameter configuration and thus ensure the reliability of the exhaust system model.

[0096] Optional, Figure 9 A flowchart of another smoke exhaust system model configuration method provided in an embodiment of the present invention is shown below. Figure 9 As shown, in Figure 1 Based on this, the operating parameters of each terminal device and the dimensional parameters of the smoke exhaust duct in the smoke exhaust system model are configured. This includes: obtaining instructions for parameter configuration of the terminal devices or smoke exhaust ducts in the model; generating parameter setting windows for the terminal devices or smoke exhaust ducts according to the instructions; and configuring the operating parameters of each terminal device or the dimensional parameters of the smoke exhaust duct in the smoke exhaust system model through the parameter setting windows. Therefore, the model configuration method for this smoke exhaust system includes:

[0097] S901. Establish a smoke exhaust system model, wherein the smoke exhaust system model includes a main unit, a smoke exhaust duct, and at least one terminal device, and the main unit is connected to at least one terminal device through the smoke exhaust duct.

[0098] S902. Obtain the instruction for parameter configuration of the terminal device or smoke exhaust duct in the model, and generate the parameter setting window of the terminal device or smoke exhaust duct according to the instruction.

[0099] Specifically, the instructions for configuring parameters of terminal devices or smoke exhaust ducts can be generated based on the operator's actions. The generated instructions can be different or the same for different terminal devices or specific smoke exhaust ducts; this embodiment of the invention does not limit this. Based on the corresponding instructions, a parameter setting window for the corresponding terminal device or smoke exhaust duct will be generated to facilitate parameter configuration by the operator. After the operator inputs the corresponding parameter values, they can further configure the parameters using the "Confirm" or "Cancel" commands in the parameter setting window, so that the model can ultimately complete the configuration after receiving the corresponding parameter values.

[0100] S903. Configure the working parameters of each terminal device or the size parameters of the smoke exhaust duct in the smoke exhaust system model through the parameter setting window.

[0101] For example, Figure 10 This is a schematic diagram of a parameter setting window provided in an embodiment of the present invention, as shown below. Figure 10As shown, since the sub-pipes and the terminal devices have the same numbering, all parameters can be configured through one parameter setting window, and the embodiment of the present application does not limit this, wherein Q represents the terminal target air volume of the terminal device, L represents the length of the sub-pipe section, W represents the width of the sub-pipe section, and R represents the length of the sub-pipe.

[0102] In the embodiment, when the working parameters of each terminal device in the smoke exhaust system model and the size parameters of the smoke exhaust duct are configured, the parameter setting window corresponding to the terminal device or the smoke exhaust duct is used to configure the parameters, thereby further improving the visualization degree of the smoke exhaust system model and avoiding the phenomenon of parameter configuration error.

[0103] Optionally, Figure 11 A flowchart of another model configuration method of a smoke exhaust system provided by the embodiment of the present application is shown in Figure 11 As shown, on the basis of Figure 1 After the working parameters of each terminal device in the smoke exhaust system model and the size parameters of the smoke exhaust duct are configured, the method further includes: controlling the display state of the terminal device in the smoke exhaust system model to be different according to the different working parameters configured by the terminal device, and the display state includes a display color. Therefore, the model configuration method of the smoke exhaust system includes:

[0104] S1101, establishing a smoke exhaust system model, wherein the smoke exhaust system model includes a host, a smoke exhaust duct and at least one terminal device, and the host is connected with the at least one terminal device through the smoke exhaust duct.

[0105] S1102, configuring the working parameters of each terminal device in the smoke exhaust system model and the size parameters of the smoke exhaust duct.

[0106] S1103, controlling the display state of the terminal device in the smoke exhaust system model to be different according to the different working parameters configured by the terminal device, and the display state includes a display color.

[0107] In the embodiment, the different working parameters configured by the terminal device will represent the working state of the terminal device or the difference from the actual smoke exhaust system, therefore, according to the different working parameters configured by the terminal device, different display colors can be used for marking in the model, so as to facilitate the inspection and operation of the staff, avoid the error of the model, and improve the accuracy and reliability of the model.

[0108] It should be noted that the embodiment of the present application does not limit the display color of the terminal device under different working parameters, and the display color can be selectively set according to the actual situation.

[0109] Based on the same inventive concept, the embodiment of the present application also provides a model configuration device of a smoke exhaust system, Figure 12This is a schematic diagram of a model configuration device for a smoke exhaust system provided in an embodiment of the present invention. The device includes: a model building module 121, used to build a smoke exhaust system model, wherein the smoke exhaust system model includes a host, a smoke exhaust duct, and at least one terminal device, and the host is connected to at least one terminal device through the smoke exhaust duct; and a parameter configuration module 122, used to configure the operating parameters of each terminal device and the dimensional parameters of the smoke exhaust duct in the smoke exhaust system model. Therefore, the model configuration device for a smoke exhaust system provided in this embodiment of the present invention includes the technical features of the model configuration method for a smoke exhaust system provided in any embodiment of the present invention, and can achieve the beneficial effects of the model configuration method for a smoke exhaust system provided in any embodiment of the present invention. Similarities can be referred to the above description of the model configuration method for a smoke exhaust system provided in this embodiment of the present invention, and will not be repeated here.

[0110] This invention also provides an electronic device. Figure 13 This is a schematic diagram of the structure of an electronic device provided in an embodiment of the present invention, such as... Figure 13 As shown, the electronic device includes a display terminal 100; the display terminal includes at least one processor 101; and a memory 102 communicatively connected to at least one processor 101; wherein the memory 102 stores a computer program that can be executed by at least one processor 101, the computer program being executed by at least one processor 101 to enable at least one processor 101 to execute the model configuration method of the smoke exhaust system in any of the above embodiments.

[0111] Specifically, the electronic device may also include an input device 103 and an output device 104.

[0112] The processor 101, memory 102, input device 103, and output device 104 in this electronic device can be connected via a bus or other means. Figure 13 Taking the example of a connection between China and Israel via a bus.

[0113] The memory 102 in this electronic device serves as a computer-readable storage medium, capable of storing one or more programs. These programs can be software programs, computer-executable programs, or modules, such as the program instructions / modules corresponding to the smoke exhaust system model configuration method provided in this embodiment of the invention. The processor 101 executes various functional applications and data processing of the electronic device by running the software programs, instructions, and modules stored in the memory 102, thereby implementing the smoke exhaust system model configuration method described in the above method embodiment.

[0114] The memory 102 can include a program storage area and a data storage area. The program storage area can store an operating system, application programs required for at least one function, etc. The data storage area can store data created according to the use of the electronic device, etc. Furthermore, the memory 102 can include a high-speed random access memory, and can also include a nonvolatile memory such as at least one disk memory device, a flash memory device, or other nonvolatile solid state memory device. In some examples, the memory 102 can further include a memory remotely located with respect to the processor 101, which can be connected to the device through a network. Examples of the network include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.

[0115] The input device 103 can be used to receive input digital or character information, and to generate key signal inputs related to user settings and function controls of the electronic device. The output device 104 can include a display device such as a display screen, etc.

[0116] And when the above electronic device includes one or more programs executed by one or more processors 101, the program performs the following operations:

[0117] establishing a model of a smoke exhaust system, wherein the model of the smoke exhaust system includes a host, a smoke exhaust duct, and at least one terminal device, the host being connected to the at least one terminal device through the smoke exhaust duct;

[0118] configuring working parameters of each terminal device and size parameters of the smoke exhaust duct in the model of the smoke exhaust system.

[0119] Of course, those skilled in the art can understand that when the above electronic device includes one or more programs executed by one or more processors 101, the program can also perform the related operations in the model configuration method of the smoke exhaust system provided in any embodiment of the present application.

[0120] The embodiment of the present application also provides a computer readable storage medium, which stores a computer program, and the program is executed by a processor to perform a model configuration method of a smoke exhaust system, and the method includes:

[0121] establishing a model of a smoke exhaust system, wherein the model of the smoke exhaust system includes a host, a smoke exhaust duct, and at least one terminal device, the host being connected to the at least one terminal device through the smoke exhaust duct;

[0122] configuring working parameters of each terminal device and size parameters of the smoke exhaust duct in the model of the smoke exhaust system.

[0123] The computer storage medium of the embodiments of the present application can adopt any combination of one or more computer readable media. The computer readable medium can be a computer readable signal medium or a computer readable storage medium. The computer readable storage medium may, for example, be, but is not limited to, an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, device or apparatus, or any combination thereof. More specific examples (a non-exhaustive list) of the computer readable storage medium include an electrical connection having one or more wires, a portable computer diskette, a hard disk, a random access memory (RAM), a read only memory (ROM), an erasable programmable read only memory (EPROM), a flash memory, an optical fiber, a portable CD-ROM, an optical storage device, a magnetic storage device, or any suitable combination of the above. The computer readable storage medium can be any tangible medium containing or storing a program that can be used by or in connection with an instruction execution system, apparatus or device.

[0124] The computer readable signal medium can include a data signal propagated in baseband or propagated as a carrier wave in a propagated data signal, in which the computer readable program code is contained. Such propagated data signal can take a variety of forms, including but not limited to electro-magnetic, optical or any suitable combination thereof. The computer readable signal medium can also be any computer readable medium that is not a storage medium and that can communicate, propagate or transport program for use by or in connection with an instruction execution system, apparatus or device.

[0125] The program code contained on the computer readable medium can be transmitted using any suitable medium, including but not limited to wireless, wire line, optical fiber cable, radio frequency (RF), or any suitable combination thereof.

[0126] Computer program code for carrying out operations of the present application can be written in any combination of one or more programming languages, including an object oriented programming language such as Java, Smalltalk, C++ or the like and conventional procedural programming languages, such as the "C" programming language or similar programming languages. The program code can execute entirely on the user's computer, partly on the user's computer, as a stand-alone software package, partly on the user's computer and partly on a remote computer or entirely on the remote computer or server. In the latter scenario, the remote computer can be connected to the user's computer through any type of network, including a local area network (LAN) or a wide area network (WAN), or the connection can be made to an external computer (for example, through the Internet using an Internet Service Provider).

[0127] The specific embodiments discussed above have been presented by way of example only and not limitation. It will be apparent to persons skilled in the art that various modifications, combinations, sub-combinations and alternatives can be made to the specific embodiments without departing from the spirit and principles of the application. Any such modifications, equivalents, alternatives and combinations, therefore, are expressly intended to be included within the scope of the present application.

Claims

1. A method for configuring a model of a smoke exhaust system, characterized in that, The method comprises the following steps: establishing a smoke exhaust system model, wherein the smoke exhaust system model comprises a host, a smoke exhaust pipeline and at least one terminal device, the host is connected with at least one terminal device through the smoke exhaust pipeline; configuring the working parameters of each terminal device and the size parameters of the smoke exhaust pipeline in the smoke exhaust system model; configuring the working parameters of each terminal device and the size parameters of the smoke exhaust pipeline in the smoke exhaust system model comprises: configuring the working parameters of each terminal device and the size parameters of the smoke exhaust pipeline in the smoke exhaust system model according to the number of the smoke exhaust pipeline and according to a preset rule, wherein the preset rule comprises the arrangement order of the number of the smoke exhaust pipeline; configuring the working parameters of each terminal device and the size parameters of the smoke exhaust pipeline in the smoke exhaust system model according to the number of the smoke exhaust pipeline and according to a preset rule, wherein the preset rule comprises the arrangement order of the number of the smoke exhaust pipeline, comprises: configuring the size parameters of the branch pipes and the size parameters of the main pipe in the order of increasing number of the branch pipes, and for the same branch pipe, configuring the size parameters of the sub-pipes in the order of increasing number of the sub-branch pipes, wherein the size parameters of the smoke exhaust pipeline comprise the cross-sectional area and length of each sub-main pipe, the cross-sectional area and length of each sub-branch pipe, and the cross-sectional area and length of each sub-pipe; adjusting the order of the number of the sub-branch pipes referred to when configuring the working parameters of each terminal device according to the working parameters of the terminal device, wherein the working parameters of the terminal device comprise terminal target air volume, if the terminal target air volume of the terminal device is zero, configuring the working parameters of each terminal device in the order of decreasing number of the sub-branch pipes; if the terminal target air volume of the terminal device is not zero, configuring the working parameters of each terminal device in the order of increasing number of the sub-branch pipes.

2. The model configuration method of a smoke exhaust system according to claim 1, characterized by, The smoke exhaust pipeline comprises a main pipe, at least one branch pipe and at least one sub-pipe; The main pipe comprises at least one sub-main pipe, a first elbow connecting component and at least one first tee connecting component, one end of the first elbow connecting component and one end of the first tee connecting component are connected with one end of the branch pipe respectively, and the other two ends of the first tee connecting component are connected between adjacent two sub-main pipes; The branch pipe comprises a plurality of sub-branch pipes, a second elbow connecting component and at least one second tee connecting component, one end of the second elbow connecting component and one end of the second tee connecting component are connected with one end of the sub-pipe respectively, and the other two ends of the second tee connecting component are connected between adjacent two sub-branch pipes; The terminal device is connected with the other end of the sub-pipe, and the terminal device is used for completing smoke exhaust through the sub-pipe, the branch pipe, the main pipe and the host in sequence; establishing the smoke exhaust system model comprises: The model of the smoke exhaust system is a model in the form of an M*N two-dimensional matrix of the smoke exhaust ducts, where the number of rows of the M*N two-dimensional matrix is the number of the branch pipes, the number of columns of the M*N two-dimensional matrix is the maximum value of the number of the sub-pipes connected to the same branch pipe, M and N are both integers greater than or equal to 1.

3. The model configuration method of a smoke exhaust system according to claim 2, characterized by, After the model of the smoke exhaust system is established, the method comprises: numbering the smoke exhaust ducts and the terminal devices in the model of the smoke exhaust system.

4. The model configuration method of a smoke exhaust system according to claim 3, characterized by, The numbering of the smoke exhaust ducts and the terminal devices in the model of the smoke exhaust system comprises: configuring the number of the terminal device corresponding to the m1th row and the n1th column in the two-dimensional matrix as (M-m1+1)_n1, where 1≤m1≤M and 1≤n1≤N; configuring the number of the sub-pipe to be the same as the number of the terminal device connected to the sub-pipe; configuring the number of the branch pipe corresponding to the m2th row in the two-dimensional matrix as M-m2+1, and the number of the sub-branch pipe as (M-m2+1)_n2, where n2 is the n2th sub-pipe of the branch pipe, n2 increases in turn along the direction in which the number of the column in the two-dimensional matrix increases, 1≤m2≤M and 1≤n2≤N; configuring the number m3 of the sub-main pipe, which increases in turn along the direction in which the number of the branch pipe increases, where 1≤m3≤M.

5. The model configuration method of a smoke exhaust system according to claim 1, characterized by, According to the numbering of the smoke exhaust ducts, the working parameters of the terminal devices and the size parameters of the smoke exhaust ducts in the model of the smoke exhaust system are configured according to a preset rule, the preset rule comprising the arrangement order of the numbering of the smoke exhaust ducts, and further comprising: confirming the arrangement order of the numbering of the smoke exhaust ducts when the working parameters of the terminal devices or the size parameters of the smoke exhaust ducts in the model of the smoke exhaust system are configured; when the arrangement order of the numbering of the smoke exhaust ducts does not meet the preset rule, an alarm is given.

6. The model configuration method of a smoke exhaust system according to Claim 1, wherein The configuration of the working parameters of the terminal devices and the size parameters of the smoke exhaust ducts in the model of the smoke exhaust system comprises: obtaining an instruction for parameter configuration of the terminal devices or the smoke exhaust ducts in the model, and generating a parameter setting window of the terminal devices or the smoke exhaust ducts according to the instruction; the working parameters of the terminal devices or the size parameters of the smoke exhaust ducts in the model of the smoke exhaust system are configured through the parameter setting window.

7. The model configuration method of a smoke exhaust system according to Claim 1, wherein After the working parameters of the terminal devices and the size parameters of the smoke exhaust ducts in the model of the smoke exhaust system are configured, the method further comprises: controlling the display state of the terminal devices in the model of the smoke exhaust system to be different according to the different working parameters of the terminal devices, the display state comprising a display color.

8. A model configuration device of an exhaust system, which is controlled by the model configuration method of the exhaust system according to any one of claims 1 to 7, characterized by The method comprises: a model establishing module for establishing a model of a smoke exhaust system, wherein the model of the smoke exhaust system comprises a host, a smoke exhaust duct and at least one terminal device, the host is connected to at least one terminal device through the smoke exhaust duct; a parameter configuration module for configuring the working parameters of the terminal devices and the size parameters of the smoke exhaust ducts in the model of the smoke exhaust system.

9. An electronic device, comprising: The method comprises: one or more processors; a storage device storing one or more programs; When the one or more programs are executed by the one or more processors, the one or more processors implement the model configuration method of the smoke exhaust system according to any one of claims 1-7.

10. A computer-readable storage medium, characterized in that, The computer readable storage medium stores computer instructions for causing the processor to implement the model configuration method of the smoke exhaust system according to any one of claims 1-7 when executed.

Citation Information

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