Ship insulation stud installation model construction method and system, medium and terminal
By collecting and analyzing the installation area information of the insulating staple installation area, formulating layout rules and generating installation models, the problems of high construction arbitraryness, low accuracy and high loss rate in the traditional insulating staple installation methods are solved, and higher installation precision and consistency are achieved, material resources are saved, and the ship's weight center of gravity is ensured accurately control.
Patent Information
- Application Number
- CN202510169895.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2025-05-23
AI Technical Summary
The traditional insulation staple installation method has the problems of high construction arbitraryness, low accuracy and high loss rate. Especially in the construction of ship segmentation stages, it is difficult to ensure the accuracy and consistency of installation.
By collecting the installation area information of the insulating staples on the ship, formulating the layout rules for the insulating staples, and modeling the insulating staples according to these rules to generate an accurate insulating staple installation model. The model can be distributed to the construction site in a visual three-dimensional form to guide workers to install it.
It improves the precision and consistency of the installation of insulating staples, reduces the subjectivity and experience dependence of workers, ensures a high consistency between the installation effect and the design, and at the same time, effectively counts the number of insulating staples, saves material resources, and accurately controls the weight and center of gravity of the ship.
Smart Images

Figure CN120024467A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of ship production and construction, and in particular to a ship insulation stud installation model construction method, system, medium and terminal. Background Art
[0002] Insulation laying is an important part of the shipbuilding process, and insulation rivets are the connectors between insulation and the hull. The insulation rivets are installed by first fixing them to the hull by welding, then passing the insulation through the insulation rivets and sticking them together with the hull, and then bending the insulation rivets to fix the insulation to meet the fire protection and sound insulation requirements of the ship. In traditional shipyard production, insulation rivets are output as insulation accessories, and workers only install them according to the typical installation nodes in the insulation installation drawings. The construction is more arbitrary, the accuracy is low, and the loss rate is high. In order to reduce the production cycle of shipbuilding, the installation of rivets needs to be advanced to the segmentation stage for construction. Due to the particularity of the segmentation stage structure, the difficulty of construction based on the insulation installation drawings is further increased. In order to ensure that the production process and construction progress are not affected, it is urgently necessary to provide separate segmentation stage insulation rivet installation deliverables.
[0003] The traditional method of installing insulating studs is that the designer sends the installation drawings of the studs to the site in the form of node diagrams, and reminds the corresponding installation conditions and specifications in the drawings. Then the on-site workers carry out construction and installation according to the corresponding requirements, specifications and past experience. The number of studs is determined by the laying area of ship insulation. Usually, the insulation laying area of a ship is relatively large, so the corresponding number of insulating studs to be installed is also very large. The installation drawings are only some typical node diagrams and roughly estimated installation quantities. It is impossible to accurately give an installation diagram with intuitive effects, and most of them are installed by on-site workers based on personal experience. This makes the installation of insulating studs have the following problems: the installation information of the drawings is relatively vague, and it is impossible to construct according to the drawings. There are many changes on the construction site, the installation is chaotic, and the aesthetics are poor; the relevant installation requirements and rules are relatively broad and subjective. Combined with the different actual conditions on site, it is easy to make mistakes, resulting in rework and material waste; the number of studs is not accurately counted, and more or less situations will occur during the installation process, affecting the overall weight and center of gravity control of the ship. Summary of the invention
[0004] In view of the problems existing in the prior art mentioned above, the present application provides a method, system, medium and terminal for constructing a ship insulating stud installation model to solve the problems of large construction arbitrariness, low accuracy and high loss rate during the installation of insulating studs.
[0005] To achieve the above-mentioned purpose and other related purposes, the present invention provides a method for constructing a ship insulation stud installation model, comprising the following steps:
[0006] Collect the installation area information of the insulating studs on the ship;
[0007] Formulate the layout rules of insulation spikes according to the installation area information;
[0008] The insulating spikes are modeled according to the layout rules to generate an insulating spike installation model.
[0009] Optionally, collecting the installation area information of the insulating spikes on the ship includes:
[0010] Determine the type of installation area, which includes the installation area of the stiffener and the installation area of the steel plate;
[0011] Collect installation requirements for different types of installation areas separately.
[0012] Optionally, the steel plate includes a pure steel plate, a round hole steel plate, a square hole steel plate, a porous steel plate and a rib-reinforced steel plate.
[0013] Optionally, the stiffener includes an L-shaped stiffener and a T-shaped stiffener.
[0014] Optionally, when the installation area is an installation area of a steel plate, establishing a layout rule of the insulating studs according to the installation area information includes:
[0015] Determine the type of steel plate;
[0016] Determine the reference position of the insulating studs on the steel plate according to the type of the steel plate;
[0017] The installation positions of the insulating studs in the remaining areas except the reference positions are determined, and the installation positions of the insulating studs in the remaining areas except the reference positions are distributed in a row.
[0018] Optionally, when the installation area is an installation area of a stiffener, the arrangement rules of the insulating studs are formulated according to the installation area information, including:
[0019] Determine the type of stiffener;
[0020] The arrangement position and number of insulating studs on the stiffeners, as well as the arrangement position and number of insulating studs on the steel enclosures on both sides of the stiffeners, are determined according to the type of stiffeners.
[0021] Optionally, the method for constructing the ship insulation stud installation model further includes the following steps:
[0022] The generated insulating stud installation model is sent to the construction site.
[0023] Another aspect of the present invention provides a system for constructing a ship insulation stud installation model, comprising:
[0024] A collection module, used to collect the installation area information of the insulating nails on the ship;
[0025] The rule base module formulates the layout rules of the insulation studs according to the installation area information;
[0026] The installation model generation module is used to model the insulating studs according to the arrangement rules and generate an insulating stud installation model.
[0027] Optionally, the construction system of the ship insulation stud installation model also includes:
[0028] A visualization module, used to display the generated insulation stud installation model in a three-dimensional visualization form;
[0029] The operation interface module is an interactive interface for user input and operation.
[0030] Another aspect of the present invention provides a storage medium having a computer program stored thereon, which, when executed by a processor, implements the method for constructing the above-mentioned ship insulation rivet installation model.
[0031] Another aspect of the present invention provides a terminal, comprising:
[0032] Memory for storing computer programs;
[0033] The processor is used to execute the computer program stored in the memory so that the terminal executes the method for constructing the ship insulation stud installation model described above.
[0034] As described above, the ship insulation stud installation model construction method, system, medium and terminal provided by the present invention have at least the following beneficial technical effects:
[0035] The method for constructing the ship insulation stud installation model of the present invention first collects the installation area information of the insulation studs on the ship; then formulates the layout rules of the insulation studs according to the installation area information; finally, the insulation studs are modeled according to the layout rules to generate the insulation stud installation model. The output form of the current insulation stud installation drawings is changed, the refinement of the deliverables is improved, the subjectivity and experience awareness of the workers are reduced, and the on-site workers have drawings to rely on, so that the design can truly guide the practice, and the deliverables and the installation effect are highly consistent. At the same time, the number of insulation studs can be effectively counted, material resources can be saved, and the weight center of gravity of the ship can be accurately controlled. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] Figure 1 Shown is a flow chart of a method for constructing a ship insulation stud installation model provided in Embodiment 1 of the present invention.
[0037] Figures 2 to 3Shown is a schematic diagram of the installation position of the insulating studs of the pure steel plate provided in Example 1 of the present invention.
[0038] Figure 4 Shown is a schematic diagram of the installation position of the insulating studs of the round hole steel plate provided in Example 1 of the present invention.
[0039] Figure 5 Shown is a schematic diagram of the installation position of the insulating studs of the square hole steel plate provided in Example 1 of the present invention.
[0040] Figure 6 Shown is a schematic diagram of the installation position of the insulating studs of the porous steel plate provided in Example 1 of the present invention.
[0041] Figure 7 Shown is a schematic diagram of the installation position of the insulating studs of the reinforcing rib type steel plate provided in Example 1 of the present invention.
[0042] Figure 8 It shows a schematic diagram of the installation position of the insulating studs when the depth of the L-shaped stiffener extending vertically downward from the steel plate surface provided in the first embodiment of the present invention is less than or equal to 170 mm.
[0043] Fig. 9 It shows a schematic diagram of the installation position of the insulating studs when the depth of the L-shaped stiffener extending vertically downward from the steel plate surface provided in the first embodiment of the present invention is greater than 170 mm.
[0044] Fig.10 A schematic diagram showing the insulating stud installation position of the insulating stud installation area of the fireproof insulating T-shaped stiffener provided in the first embodiment of the present invention is shown.
[0045] Fig.11 A schematic diagram showing the insulating stud installation position of the insulating stud installation area of the heat-insulating and sound-insulating T-shaped stiffener provided in the first embodiment of the present invention is shown.
[0046] Fig.12 Shown is a schematic diagram of the length of the insulating studs at the reinforcing rib provided in the first embodiment of the present invention.
[0047] Fig.13 Shown is a module schematic diagram of a system for constructing a ship insulation stud installation model provided in the second embodiment of the present invention.
[0048] Fig.14 Shown is a schematic diagram of the structure of a terminal provided by Embodiment 4 of the present invention.
[0049] Reference numerals
[0050] 1. Insulating studs; 2. Steel deck; 3. L-shaped stiffener; 4. T-shaped stiffener; 5. Round hole; 6. Square hole; 7. Reinforcement ribs; 8. Steel enclosure; 9. Steel plate. DETAILED DESCRIPTION
[0051] The following describes the embodiments of the present invention through specific examples, and those skilled in the art can easily understand other advantages and effects of the present invention from the contents disclosed in this specification. The present invention can also be implemented or applied through other different specific embodiments, and the details in this specification can also be modified or changed in various ways based on different viewpoints and applications without departing from the spirit of the present invention.
[0052] It should be noted that the illustrations provided in this embodiment only illustrate the basic concept of the present invention in a schematic manner. Although the illustrations only show components related to the present invention rather than being drawn according to the number, shape and size of components in actual implementation, the form, quantity, positional relationship and proportion of each component in actual implementation can be changed at will under the premise of realizing the technical solution of this party, and the component layout form may also be more complicated.
[0053] Embodiment 1
[0054] This embodiment provides a method for constructing a ship insulation nail installation model, such as Figure 1 As shown, the method comprises the following steps:
[0055] S100: Collecting installation area information of insulating studs on the ship;
[0056] The information collected about the installation area of the insulating studs on the ship includes:
[0057] S101: Determine the type of the installation area, where the installation area includes the installation area of the stiffener and the installation area of the steel plate;
[0058] Steel plates include pure steel plates, round hole steel plates, square hole steel plates, multi-hole steel plates, ribbed steel plates and other outfitting steel plates that affect insulation laying. Stiffeners include L-type stiffeners and T-type stiffeners.
[0059] S102: Collect installation requirements of different types of installation areas respectively.
[0060] The installation position, installation quantity and other information of the previous insulating studs 1 installation process are summarized, and the specific installation requirements of the installation area are obtained according to the above information. For example, the installation requirements of the insulating studs of the pure steel plate are as follows: first, the reference position of the insulating studs 1 of the pure steel plate is determined, and the insulating studs 1 are installed at the reference position. Then, the remaining installation areas except the reference position are determined, and the insulating studs 1 are installed in the remaining installation areas.
[0061] S200: formulating a layout rule for the insulating studs according to the installation area information;
[0062] When the installation area is the installation area of a steel plate, the rules for arranging insulating studs according to the installation area information include:
[0063] S201: Determine the type of the steel plate;
[0064] S202: Determine the reference position of the insulating studs on the steel plate according to the type of the steel plate;
[0065] S203: Determine the installation positions of the insulating studs in the remaining areas other than the reference position. The installation positions of the insulating studs in the remaining areas other than the reference position are arranged in columns.
[0066] Specifically, referring to Figure 2 , a pure-type steel plate means that there are no any features on the steel plate, neither perforations nor intersections with other outfitting parts, and the surface is a flat steel plate. When installing the insulating stud 1 in the installation area of the pure-type steel plate, the arrangement rule is that first, determine the reference position of the insulating stud 1 on the pure-type steel plate and install the insulating stud 1 at the reference position. The installation of the insulating stud 1 is generally from bottom to top on the steel plate 9. When installing the insulating stud 1 at the reference position, the distance d1 between the insulating stud 1 at the bottom of the installation area and the edge of the steel plate 9 is between 40 mm and 60 mm. In an optional embodiment of this embodiment, the distance d1 between the insulating stud 1 at the bottom of the installation area and the edge of the steel plate 9 is 50 mm. If the outermost row / column of insulating studs 1 is adjacent to a stiffener, a reinforcing rib 7 or the corner of an insulating extension, the distance d2 between the insulating stud 1 and these structural components is between 90 mm and 110 mm. In an optional embodiment of this embodiment, the distance d2 between the insulating stud and the stiffener, the reinforcing rib 7 or the corner of the insulating extension is 100 mm. If the actual distance is less than 100 mm or the installation edge is an insulating joint, the distance between the insulating stud 1 and the insulating joint is 50 mm. If the actual distance is less than 50 mm, take the middle position.
[0067] The installation positions of the insulating stud 1 in the remaining areas other than the reference position are arranged in columns. Referring to Figure 3For example, the location where the insulating studs 1 need to be installed is an area with a length of L and a height of H. The distance d3 from the insulating studs 1 at both ends to the left and right stiffeners is 100 mm, and the remaining insulating studs 1 are arranged according to a maximum spacing d4 not exceeding 325 mm. The number of insulating studs 1 is defined as n. When (L-200) / n≤325mm, there are (n-1) intervals between the horizontal insulating studs 1, and the spacing between the insulating studs 1 except the insulating studs 1 on both sides is (L-200) / n millimeters; the arrangement of the longitudinal insulating studs 1 is as follows: the distance from the top insulating stud 1 to the upper edge of the steel plate 9 is 100mm, the distance from the bottom insulating stud 1 to the lower edge of the steel plate 9 is 50mm, and the remaining insulating studs 1 are arranged according to a maximum spacing d5 not exceeding 250mm, that is, when (H-150) / n≤250, there are (n-1) intervals between the longitudinal insulating studs 1, and the spacing between the insulating studs 1 except the insulating studs 1 on both sides is (H-150) / n millimeters.
[0068] Reference Figure 4 Similarly, when installing the insulating studs 1 in the installation area of the circular hole steel plate, the layout rule is to first determine the reference position of the insulating studs 1 on the circular hole steel plate, and install the insulating studs 1 at the reference position. When installing the insulating studs 1 at the reference position, first set a circle of insulating studs 1 around the edge of the circular hole 5, and the spacing d6 from the insulating studs 1 to the edge of the circular hole 5 is between 40mm and 60mm. In an optional embodiment of this embodiment, the spacing d6 from the insulating studs 1 to the edge of the circular hole 5 is 50mm. The number of insulating studs is appropriately increased or decreased according to the size of the circular hole, and the insulating studs should follow the principle of a minimum spacing of 50mm. The installation positions of the insulating studs 1 in the remaining areas outside the reference position are also distributed in a row. The installation rules of the insulating studs in the remaining areas are similar to those of the remaining areas of the pure steel plate, and will not be repeated here. It should be noted that within the range of 50mm of the insulating studs set inside and around the circular hole 5, no insulating studs 1 are set.
[0069] Reference Figure 5Similarly, when installing the insulating studs 1 in the installation area of the square hole steel plate, the layout rule is to first determine the reference position of the insulating studs 1 on the square hole steel plate, and then install the insulating studs 1 at the reference position. When installing the insulating studs 1 at the reference position, first divide the distance from the edge of the square hole 6 to the edge of the installation area into two distances, L1 and L2, horizontally, and H1 and H2 vertically. Give priority to the arrangement of the insulating studs 1 in the four corner areas. For the arrangement of the insulating studs 1 horizontally, when L1 and L2 are less than 100mm, the insulating studs 1 are arranged in the middle of L1 and L2. When L1 and L2 are greater than 100mm and less than 150mm, an insulating stud 1 is arranged 50mm from the edge of the opening. When L1 and L2 are greater than 150mm and less than 200mm, an insulating stud 1 is respectively arranged 50mm from the edges of the installation areas on both sides. If L1 and L2 are greater than 200mm, an insulating stud 1 is arranged 50mm from the edge of the square hole 6, and an insulating stud 1 is arranged 100mm from the edge of the installation area on the other side. The remaining insulating studs 1 are evenly distributed and installed according to the remaining distances. Similarly, the arrangement of the insulating studs 1 in the longitudinal direction H1 and H2 is the same as the horizontal principle. The insulating studs 1 in the remaining areas outside the reference position are spaced apart from the already arranged insulating studs 1, and the distance between any two adjacent insulating studs 1 does not exceed 325mm in the horizontal direction and 250mm in the vertical direction.
[0070] Reference Figure 6 Similarly, when installing the insulating studs 1 in the installation area of the porous steel plate, the layout rule is to first determine the reference position of the insulating studs 1 on the porous steel plate, and install the insulating studs 1 at the reference position. When installing the insulating studs 1 at the reference position, first set a circle of insulating studs 1 around the holes at 50mm from the edge of each hole. The number of insulating studs 1 is appropriately increased or decreased according to the size of the hole, and the minimum distance between any two adjacent insulating studs 1 is 50mm. The installation rules for insulating studs in other areas are similar to those in other areas of the pure steel plate, so they will not be elaborated here. It should be noted that within the 50mm range of the insulating studs 1 set inside and around the circular hole 5, no insulating studs 1 are set. Install the insulating studs 1 by treating other outfitting parts that affect the insulation laying, such as angle steel, flat steel, etc., as holes.
[0071] Reference Figure 7Similarly, when installing the insulating studs 1 in the installation area of the ribbed steel plate, the layout rule is to first determine the reference position of the insulating studs 1 on the ribbed steel plate, and install the insulating studs 1 at the reference position. When installing the insulating studs 1 at the reference position, the ribs 7 are treated as the edge of the installation area. One more rib 7 divides one more installation area. The distance between the insulating studs 1 in the row or column closest to the rib 7 in each installation area and the rib 7 is between 90 mm and 110 mm. In an optional embodiment of the present embodiment, the distance between the insulating studs 1 in the row or column closest to the rib 7 in each installation area and the rib is between 100 mm. If the distance between the insulating studs 1 in the row or column closest to the reinforcement rib 7 and the reinforcement rib 7 is less than 100mm, then the distance between the insulating studs 1 in the row or column closest to the reinforcement rib 7 and the reinforcement rib 7 is 50mm. If it is less than 50mm, the distance between the reinforcement rib 7 and the other edge of the installation area is taken. The remaining insulating studs 1 are installed according to the layout rules of the insulating studs 1 of the pure steel plate. Secondly, the laying of the insulating material of the hull is spliced together piece by piece. It is usually assumed that the insulating material is arranged from the bottom of the hull to the top. According to the specifications of the insulating material, the position of the joints between the insulating materials can be confirmed. The layout rules of the insulating studs 1 at the joint position are similar to those of the insulating studs 1 at the reinforcement rib 7 position, except that the distance between the insulating studs 1 in the nearest row or column and the joint is greater than 50mm. The installation rules of insulating studs in other areas are similar to those in other areas of pure steel plates, which will not be repeated here.
[0072] When the installation area is the installation area of the stiffener, the layout rules of the insulating studs are formulated according to the installation area information, including:
[0073] S201: Determine the type of stiffener;
[0074] S202: Determine the arrangement positions and arrangement quantity of the insulating studs on the stiffeners according to the type of the stiffeners, and the arrangement positions and arrangement quantity of the insulating studs on the steel enclosures on both sides of the stiffeners.
[0075] Reference Figure 8 The arrangement rule of the insulating studs 1 in the insulating stud installation area of the L-shaped stiffener 3 is that when the distance that the L-shaped stiffener 3 extends vertically downward from the surface of the steel plate 9 is less than or equal to 170 mm, a row of insulating studs 1 is arranged at the top center of the L-shaped stiffener 3. Fig. 9 When the distance that the L-shaped stiffener 3 extends vertically downward from the surface of the steel plate 9 is greater than 170 mm, in addition to arranging a row of insulating studs 1 at the center of the top of the L-shaped stiffener 3, it is also necessary to arrange a row of insulating studs 1 at both sides of the L-shaped stiffener 3 at a distance of 100 mm from the steel surrounding wall 8.
[0076] Reference Figure 10 to Figure 11, the arrangement rule of the insulating studs 1 in the insulating stud installation area of the T-shaped stiffener 4 needs to be classified according to the insulation type of the T-shaped stiffener 4. Refer to Fig.10 , for the installation requirements of the insulating studs in the insulating stud installation area of the fireproof insulated T-shaped stiffener, when the distance that the T-shaped stiffener 4 extends vertically downward from the surface of the steel plate 9 is not greater than 450 mm, the insulating studs 1 are arranged at the center position of the top end of the T-shaped stiffener 4 and at the positions on both sides of the T-shaped stiffener 4 that are 100 mm away from the steel bulkhead 8; when the distance that the T-shaped stiffener 4 extends vertically downward from the surface of the steel plate 9 is greater than 450 mm, only two rows of insulating studs 1 are arranged at the positions on both sides of the T-shaped stiffener 4 with a spacing of 100 mm from the steel bulkhead 9, where the position of one row of insulating studs 1 is 100 mm away from the steel bulkhead 9, and the spacing distance d7 between the other row of insulating studs 1 and the previous row of insulating studs 1 is greater than or equal to 250 mm. Refer to Fig.11 , for the installation requirements of the insulating studs 1 in the insulating stud installation area of the heat-insulating and sound-insulating insulated T-shaped stiffener, when the distance that the insulating stud 1 extends vertically downward from the surface of the steel plate 9 is less than 300 mm, the insulating studs 1 are arranged at the center position of the top end of the T-shaped stiffener 4 and at the positions on both sides of the T-shaped stiffener 4 with a spacing of 100 mm from the steel bulkhead 9; when the distance that extends vertically downward from the surface of the steel plate 9 is greater than or equal to 300 mm, only two rows of insulating studs 1 are arranged at the positions on both sides of the T-shaped stiffener 4 respectively, one row of insulating studs 1 is spaced 100 mm from the steel bulkhead, and the spacing distance d8 between the other row of insulating studs 1 and the previous row of insulating studs 1 is greater than or equal to 160 mm. Optionally, in the arrangement method of the insulating studs 1 of the T-shaped stiffener 4 and the L-shaped stiffener 3 of all the above types, the insulating studs 1 at the top in the longitudinal distance between the T-shaped stiffener 4 and the L-shaped stiffener 3 are all spaced 100 mm from the top boundary where the T-shaped stiffener 4 or the L-shaped stiffener 3 contacts the steel bulkhead 9, and the bottom insulating studs 1 are all spaced 50 mm from the bottom boundary where the T-shaped stiffener 4 or the L-shaped stiffener 3 contacts the steel bulkhead 9, and the remaining insulating studs 1 are arranged at equal intervals in other areas where the insulating studs 1 are not installed.
[0077] In this embodiment, the arrangement rule of the bump post (not shown in the figure) is the same as that of the insulating stud 1. The length of the insulating stud 1 is fixed. The bump post is used when the insulation type of the stiffener is the stiffener with aluminum foil wrapping, and the length of the bump post is determined according to the thickness of the insulation. After determining the arrangement positions of the insulating studs 1 in various installation areas, it is necessary to determine the length of the bump post when the insulation type of the stiffener is the stiffener with aluminum foil wrapping. Refer to Figures 10 to 12, the L-shaped stiffener 3, the T-shaped stiffener 4 extending vertically downward from the surface of the steel plate 9 to a depth not greater than 450 mm, and the reinforcing rib 7 all need to be coated with aluminum foil. The contact posts in the rows or columns closest to these positions will have two layers of insulation. At this time, the length of the contact posts needs to meet the double-layer insulation thickness, while the length of the contact posts at the other stiffeners with a single-layer coated insulation layer only needs to meet the single-layer insulation thickness.
[0078] S300: Modeling the insulating spikes according to the arrangement rule to generate an insulating spike installation model;
[0079] Specifically, in an optional embodiment of the present embodiment, taking CATIA modeling software as an example, writing the insulation stud code includes the following steps:
[0080] S301: Create a new product at the corresponding position in the model structure tree. The product is named according to the area where it is located, and is named the upper building / cabin insulation stud installation model;
[0081] S302: If the number of rooms that require insulating studs is m, create m new products under the newly created product node and name them with the corresponding room names, for example, steel plate installation area;
[0082] S303: Insert a 3D part under the product of each room to provide a specific modeling space for the insulation stud model of each room;
[0083] S304: Create an insulation stud installation model under the 3D part.
[0084] First, select the room where the insulating studs need to be arranged. For example, select the steel plate installation area where the insulating studs need to be arranged, and determine whether the steel plate is the installation area or the extension area of the insulating studs. If the installation area is the installation area of the insulating studs, arrange it according to the arrangement rules. If it is an extension area, first select the installation area range, and then arrange it according to the arrangement rules. After the insulating studs of the steel plate are arranged, continue to arrange the insulating studs of the stiffener. After completing the insulating stud arrangement of a room, switch to the 3D part under the next room node to automatically generate the insulating studs, and so on for other rooms.
[0085] The method for constructing the ship insulation stud installation model of the present application accurately generates the insulation stud installation model of the hull area where insulation needs to be laid in the model stage before the output of the deliverables, and then sends it to the construction site through a visualized three-dimensional installation deliverable, so that the workers can construct according to the drawings. The refinement of the deliverables is improved, the subjectivity and experience awareness of the workers are reduced, and the on-site workers have drawings to rely on, so that the design can truly guide the practice, and the deliverables and installation effects are highly consistent. At the same time, the number of insulation studs can be effectively counted, material resources can be saved, and the weight center of gravity of the ship can be accurately controlled.
[0086] Embodiment 2
[0087] This embodiment provides a system for constructing a ship insulation nail installation model, such as Fig.13 As shown, the ship outfitting installation deliverables updating system of this embodiment includes a collection module, a rule base module and an installation model generation module. The collection module is used to collect the installation area information of the insulating studs on the ship; the rule base module is used to formulate the layout rules of the insulating studs according to the installation area information; the installation model generation module is used to model the insulating studs according to the layout rules and generate the insulating stud installation model.
[0088] The ship outfitting installation deliverables updating system of this embodiment also includes a visualization module and an operation interface module. The visualization module is used to display the generated stud model in a three-dimensional visualization form. The operation interface module is an interactive interface for user input and operation. The ship insulation stud installation model construction system of the present application can automatically and accurately generate the insulation stud installation model of the hull area where insulation needs to be laid in the model stage before the output of the deliverables, and then send it to the construction site through a visualized three-dimensional installation deliverable, so that workers can construct according to the drawings. It can solve the problems of large construction arbitrariness, low accuracy and high loss rate during the installation of insulation studs.
[0089] Embodiment 3
[0090] This embodiment provides a storage medium, on which a computer program is stored, and when the program is executed by a processor, the method for constructing a ship insulation stud installation model described in Embodiment 1 is implemented. The storage medium includes: ROM, RAM, disk, U disk, memory card, or CD, etc., various media that can store program codes.
[0091] Embodiment 4
[0092] This embodiment provides a terminal, such as Fig.14As shown, the terminal of this embodiment includes a memory and a processor. The memory is used to store computer programs. Preferably, the memory includes: ROM, RAM, disk, U disk, memory card or CD and other media that can store program codes. The processor is connected to the memory and is used to execute the computer program stored in the memory so that the terminal executes the method for constructing the ship insulation stud installation model described in Example 1. Preferably, the processor can be a general-purpose processor, including a central processing unit (CPU), a network processor (NP), etc.; it can also be a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic devices, discrete gates or transistor logic devices, discrete hardware components.
[0093] The above embodiments are merely illustrative of the principles and effects of the present invention, and are not intended to limit the present invention. Anyone familiar with the art may modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by a person of ordinary skill in the art without departing from the spirit and technical concept disclosed by the present invention shall still be covered by the claims of the present invention.
Claims
1. A method for constructing a ship insulation stud installation model, characterized in that: The following steps are involved: Collect the installation area information of the insulating studs on the ship; Formulate a layout rule for the insulating studs according to the installation area information; The insulating spikes are modeled according to the arrangement rules to generate an insulating spike installation model.
2. The method for constructing a ship insulation stud installation model according to claim 1, characterized in that: The information collected about the installation area of the insulating studs on the ship includes: Determine the type of the installation area, the installation area includes the installation area of the stiffener and the installation area of the steel plate; The installation requirements of different types of installation areas are collected respectively.
3. The method for constructing a ship insulation stud installation model according to claim 2, characterized in that: The steel plates include pure steel plates, round hole steel plates, square hole steel plates, multi-hole steel plates and reinforced rib steel plates.
4. The method for constructing a ship insulation stud installation model according to claim 2, characterized in that: The stiffeners include L-shaped stiffeners and T-shaped stiffeners.
5. The method for constructing a ship insulation stud installation model according to claim 2, characterized in that: When the installation area is an installation area of a steel plate, formulating the arrangement rules of the insulating studs according to the installation area information includes: determining the type of the steel plate; Determine the reference position of the insulating studs on the steel plate according to the type of the steel plate; The installation positions of the insulating studs in the remaining areas except the reference position are determined, and the installation positions of the insulating studs in the remaining areas except the reference position are distributed in a row.
6. The method for constructing a ship insulation stud installation model according to claim 2, characterized in that: When the installation area is an installation area of a stiffener, formulating the arrangement rules of the insulating studs according to the installation area information includes: Determine the type of stiffener; The arrangement positions and the number of the insulating studs on the stiffener are determined according to the type of the stiffener, as well as the arrangement positions and the number of the insulating studs on the steel surrounding walls on both sides of the stiffener.
7. The method for constructing a ship insulation stud installation model according to claim 1, characterized in that: The following steps are also included: The generated insulating stud installation model is sent to the construction site.
8. A system for constructing a ship insulation stud installation model, characterized in that: include: A collection module, used to collect the installation area information of the insulating studs on the ship; A rule base module, used to formulate the arrangement rules of the insulating studs according to the installation area information; The installation model generation module is used to model the insulating studs according to the arrangement rules to generate an insulating stud installation model.
9. The system for constructing a ship insulation stud installation model according to claim 8, characterized in that: Also includes: A visualization module, used for displaying the generated insulating stud installation model in a three-dimensional visualization form; The operation interface module is an interactive interface for user input and operation.
10. A storage medium having a computer program stored thereon, characterized in that: When the program is executed by a processor, the method for constructing a ship insulation stud installation model according to any one of claims 1 to 7 is implemented.
11. A terminal, characterized in that: include: Memory for storing computer programs; A processor is used to execute the computer program stored in the memory so that the terminal executes the method for constructing the ship insulation stud installation model according to any one of claims 1 to 7.
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CN120664080A