A cross-sectional drawing method and related device of a flexible photovoltaic support

By drawing section lines in specific directions on the mountain contour layer and drawing sectional views of flexible photovoltaic brackets based on the coordinates and elevation of the intersection points, the problem of low drawing efficiency in the prior art is solved, and more efficient construction efficiency is achieved.

CN119417941BActive Publication Date: 2025-05-09HUIYAO PINSHANG ENERGY TECHNOLOGY (HANGZHOU) CO LTD
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Patent Information

Application Number
CN202510003729.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-02
Publication Date
2025-05-09
Estimated Expiration
2045-01-02

AI Technical Summary

Technical Problem

The process of drawing a sectional view of a flexible photovoltaic bracket in the prior art depends on manual operation and human judgment of the technician, resulting in low drawing efficiency.

Method used

By drawing the cross-axis section line in the direction parallel to the main cable of the flexible photovoltaic bracket on the mountain contour layer, drawing the cross-axis section line in the direction perpendicular to the main cable of the flexible photovoltaic bracket according to the mid-point midline of the central bracket, and drawing the cross-sectional view of the flexible photovoltaic bracket according to the coordinates and elevation of the intersection points.

Benefits of technology

Reliance on manual operation and human judgment by technicians is reduced, the complexity of drawing is reduced, and the drawing efficiency is effectively improved, thereby improving the construction efficiency of flexible photovoltaic brackets.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The embodiment of the present application provides a method and related device for drawing a cross-sectional view of a flexible photovoltaic support, by drawing a cross-sectional line in the horizontal direction that intersects the midpoint centerline of the end support and the midpoint centerline of the middle support on a mountain contour line layer along a direction parallel to the main cable of the flexible photovoltaic support, and drawing a cross-sectional line in the vertical direction according to the midpoint centerline of the middle support along a direction perpendicular to the main cable of the flexible photovoltaic support. According to the coordinates and elevation of the intersection between the cross-sectional line in the horizontal direction and the cross-sectional line in the vertical direction, a cross-sectional view of the flexible photovoltaic support can be drawn. The method provided in the embodiment of the present application reduces the reliance on manual operation and human judgment of technicians, reduces the complexity of drawing, and can effectively improve drawing efficiency.
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Description

Technical Field

[0001] The present application relates to the field of computer technology, and in particular to a method for drawing a cross-sectional view of a flexible photovoltaic bracket and a related device. Background Art

[0002] Flexible photovoltaic support is a photovoltaic module support structure that is fixed at both ends, designed based on a tension structure system, and uses cables as module support components. It has the advantages of large span, long column distance, and strong adaptability, and can be widely used in mountainous environments.

[0003] Before constructing a flexible photovoltaic support in a mountainous environment, it is necessary to draw a cross-section of the flexible photovoltaic support in the mountainous environment as a construction drawing. At present, in the process of drawing the cross-section of the flexible photovoltaic support, technicians are required to operate the mouse and keyboard, and use software commands to determine the positions of the end brackets and middle brackets of each row of flexible photovoltaic brackets to draw the cross-section of the flexible photovoltaic bracket.

[0004] Since the entire process of drawing the cross-section of the flexible photovoltaic bracket currently relies on the manual operation and human judgment of technicians, there is a problem of low drawing efficiency. Therefore, a solution is urgently needed to solve the above technical problems. Summary of the invention

[0005] Based on the above problems, the present application provides a method for drawing a cross-sectional view of a flexible photovoltaic bracket and a related device.

[0006] The embodiments of the present application disclose the following technical solutions:

[0007] In the first aspect, the present application provides a method for drawing a cross-sectional view of a flexible photovoltaic bracket, comprising:

[0008] On the mountain contour layer, draw a section line in the horizontal direction parallel to the main cable of the flexible photovoltaic support, intersecting the midpoint centerline of the end support and the midpoint centerline of the middle support;

[0009] Along the direction perpendicular to the main cable of the flexible photovoltaic support, a section line in the longitudinal direction is drawn according to the midpoint centerline of the middle support, wherein the section line in the longitudinal direction includes a left end section line, a middle section line, and a right end section line;

[0010] A cross-sectional view of the flexible photovoltaic support is drawn according to the coordinates and elevation of the intersection point between the section line in the horizontal axis direction and the section line in the vertical axis direction.

[0011] In a possible implementation, the step of drawing a section line in the longitudinal direction according to the midpoint centerline of the middle bracket along a direction perpendicular to the main cable of the flexible photovoltaic bracket includes:

[0012] Along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the left end support, draw the left end cutting line intersecting with the midpoint centerline of the middle support; along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the right end support, draw the right end cutting line intersecting with the midpoint centerline of the middle support; along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the middle support, draw the middle cutting line intersecting with the midpoint centerline of the middle support.

[0013] In a possible implementation, drawing a cross-sectional view of the flexible photovoltaic support according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction includes:

[0014] A flexible photovoltaic bracket is drawn according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction, and a cable is drawn according to the height of the flexible photovoltaic bracket to obtain a cross-sectional view of the flexible photovoltaic bracket.

[0015] In a possible implementation, drawing a cross-sectional view of the flexible photovoltaic support according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction includes:

[0016] Draw the elevation and section view of the left end bracket, the elevation and section view of the middle bracket, and the elevation and section view of the right end bracket;

[0017] A cross-sectional view of the flexible photovoltaic bracket is drawn based on the elevation cross-sectional view of the left end bracket, the elevation cross-sectional view of the middle bracket, and the elevation cross-sectional view of the right end bracket, and the coordinates and elevation of the intersection between the cross-sectional line in the horizontal axis direction and the cross-sectional line in the vertical axis direction.

[0018] In a possible implementation, the section line in the horizontal axis direction exceeds the end bracket and intersects with the mountain contour line.

[0019] In a possible implementation, the section line in the horizontal axis direction, the section line in the vertical axis direction, and the mountain contour lines in the mountain contour layer are characterized by two-dimensional polylines.

[0020] Second aspect: The embodiment of the present application provides a cross-sectional drawing device of a flexible photovoltaic bracket, comprising:

[0021] A first drawing unit, a second drawing unit and a third drawing unit;

[0022] The first drawing unit is used to draw a section line in the horizontal axis direction that intersects the midpoint center line of the end support and the midpoint center line of the middle support on the mountain contour layer, along a direction parallel to the main cable of the flexible photovoltaic support;

[0023] The second drawing unit is used to draw a section line in the longitudinal direction according to the midpoint center line of the middle bracket along a direction perpendicular to the main cable of the flexible photovoltaic bracket, wherein the section line in the longitudinal direction includes a left end section line, a middle section line, and a right end section line;

[0024] The third drawing unit is used to draw a cross-sectional view of the flexible photovoltaic bracket according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction.

[0025] In a possible implementation, the second drawing unit is specifically configured to:

[0026] Along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the left end support, draw the left end cutting line intersecting with the midpoint centerline of the middle support; along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the right end support, draw the right end cutting line intersecting with the midpoint centerline of the middle support; along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the middle support, draw the middle cutting line intersecting with the midpoint centerline of the middle support.

[0027] In a possible implementation manner, the third drawing unit is specifically configured to:

[0028] A flexible photovoltaic bracket is drawn according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction, and a cable is drawn according to the height of the flexible photovoltaic bracket to obtain a cross-sectional view of the flexible photovoltaic bracket.

[0029] In a possible implementation manner, the third drawing unit is specifically configured to:

[0030] Draw the elevation and section view of the left end bracket, the elevation and section view of the middle bracket, and the elevation and section view of the right end bracket;

[0031] A cross-sectional view of the flexible photovoltaic bracket is drawn based on the elevation cross-sectional view of the left end bracket, the elevation cross-sectional view of the middle bracket, and the elevation cross-sectional view of the right end bracket, and the coordinates and elevation of the intersection between the cross-sectional line in the horizontal axis direction and the cross-sectional line in the vertical axis direction.

[0032] In a possible implementation, the section line in the horizontal axis direction exceeds the end bracket and intersects with the mountain contour line.

[0033] In a possible implementation, the section line in the horizontal axis direction, the section line in the vertical axis direction, and the mountain contour lines in the mountain contour layer are characterized by two-dimensional polylines.

[0034] A third aspect: An embodiment of the present application provides a computer device, the computer device comprising: a processor and a memory;

[0035] The memory is used to store program code and transmit the program code to the processor;

[0036] The processor is used to execute the steps of the above-mentioned method for drawing a cross-sectional view of a flexible photovoltaic bracket according to the instructions in the program code.

[0037] Aspect 4: An embodiment of the present application provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the steps of the method for drawing a cross-sectional view of a flexible photovoltaic bracket as described above are implemented.

[0038] Aspect 5: An embodiment of the present application provides a computer program product. When the computer program product is run on a computer, the computer executes the steps of the method for drawing a cross-sectional view of a flexible photovoltaic bracket as described above.

[0039] Compared with the prior art, this application has the following beneficial effects:

[0040] The embodiment of the present application provides a method and related device for drawing a cross-sectional view of a flexible photovoltaic support, by drawing a cross-sectional line in the horizontal direction that intersects the midpoint centerline of the end support and the midpoint centerline of the middle support on a mountain contour line layer along a direction parallel to the main cable of the flexible photovoltaic support, and drawing a cross-sectional line in the vertical direction according to the midpoint centerline of the middle support along a direction perpendicular to the main cable of the flexible photovoltaic support. According to the coordinates and elevation of the intersection between the cross-sectional line in the horizontal direction and the cross-sectional line in the vertical direction, a cross-sectional view of the flexible photovoltaic support can be drawn. The method provided in the embodiment of the present application reduces the reliance on manual operation and human judgment of technicians, reduces the complexity of drawing, and can effectively improve drawing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0041] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.

[0042] Figure 1 A flow chart of a method for drawing a cross-sectional view of a flexible photovoltaic support provided in an embodiment of the present application;

[0043] Figure 2 A flexible photovoltaic bracket layout diagram provided in an embodiment of the present application;

[0044] Figure 3A schematic diagram of a cross-sectional line in the horizontal direction corresponding to a flexible photovoltaic bracket arrangement diagram provided in an embodiment of the present application;

[0045] Figure 4 A schematic diagram of a section line in the longitudinal direction corresponding to a flexible photovoltaic bracket arrangement diagram provided in an embodiment of the present application;

[0046] Figure 5 A cross-sectional view of a flexible photovoltaic support provided in an embodiment of the present application in a mountainous environment;

[0047] Figure 6 A structural schematic diagram of a cross-sectional view drawing device of a flexible photovoltaic bracket is provided in an embodiment of the present application. DETAILED DESCRIPTION

[0048] In order to enable those skilled in the art to better understand the solution of the present application, the technical solution in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0049] Flexible photovoltaic brackets are widely used in mountainous environments due to their advantages such as large span, long column distance, and strong adaptability. Before constructing a flexible photovoltaic bracket in a mountainous environment, it is necessary to draw a cross-sectional view of the flexible photovoltaic bracket in the mountainous environment as a construction drawing.

[0050] However, the current process of drawing the cross-section of a flexible photovoltaic bracket is relatively complicated. Technicians need to survey and measure the mountain environment based on factors such as the site's topography, sunshine conditions, and soil bearing capacity. Then, drawing software is used to draw a cross-section of the flexible photovoltaic bracket in a mountain environment based on the survey and measurement data.

[0051] In the process of drawing the cross-section of the flexible photovoltaic bracket, technicians need to accurately determine the position of each row of flexible photovoltaic brackets, such as the geographical coordinates of the end brackets and the middle brackets, to ensure that the brackets can be firmly installed in the appropriate position of the mountain. At the same time, due to the complex and changeable mountain terrain, technicians need to adjust the elevation of the bracket according to the terrain to ensure the stability of the bracket and the optimal inclination angle of the photovoltaic module.

[0052] To this end, technicians need to operate the mouse and keyboard, and use software commands to determine and lay out the positions of the end brackets and middle brackets of each row of flexible photovoltaic brackets in order to draw a cross-sectional diagram of the flexible photovoltaic bracket.

[0053] Since the entire process of drawing the cross-section of a flexible photovoltaic bracket currently relies on manual operation and human judgment by technicians, it takes a lot of time and is prone to errors, resulting in low drawing efficiency.

[0054] Based on this, the embodiment of the present application provides a method and related device for drawing a cross-sectional view of a flexible photovoltaic bracket, by drawing a cross-sectional line in the horizontal direction that intersects the midpoint center line of the end bracket and the midpoint center line of the middle bracket on the mountain contour layer along a direction parallel to the main cable of the flexible photovoltaic bracket, and drawing a cross-sectional line in the vertical direction according to the midpoint center line of the middle bracket along a direction perpendicular to the main cable of the flexible photovoltaic bracket. According to the coordinates and elevation of the intersection between the cross-sectional line in the horizontal direction and the cross-sectional line in the vertical direction, a cross-sectional view of the flexible photovoltaic bracket can be drawn. The method provided in the embodiment of the present application reduces the reliance on manual operation and human judgment of technicians, reduces the complexity of drawing, and can effectively improve drawing efficiency.

[0055] Combine the following Figure 1 A method for drawing a cross-sectional view of a flexible photovoltaic bracket provided in an embodiment of the present application is introduced. Figure 1 A flow chart of a method for drawing a cross-sectional view of a flexible photovoltaic bracket provided in an embodiment of the present application.

[0056] S101. On the mountain contour layer, draw a section line in the horizontal direction parallel to the main cable of the flexible photovoltaic support, which intersects with the midpoint center line of the end support and the midpoint center line of the middle support.

[0057] In a possible implementation, based on the pre-surveyed and measured data, a mountain contour map can be drawn to create a mountain contour layer. Figure 2 As shown, this figure is a flexible photovoltaic bracket layout diagram provided in an embodiment of the present application. Among them, the characteristics of the mountain contour lines in the mountain contour line layer can be two-dimensional polylines.

[0058] The two-dimensional polyline is composed of a series of interconnected line segments, which can be straight line segments or circular arc segments, or a combination of the two. In the embodiment of the present application, by setting the mountain contour line as a two-dimensional polyline, the mountain contour line can be subsequently operated as a separate entity, which can facilitate the subsequent editing or modification of the mountain contour line.

[0059] After establishing the mountain contour layer, a section line in the horizontal axis direction intersecting the midpoint center line of the end bracket and the midpoint center line of the middle bracket can be drawn on the mountain contour layer along a direction parallel to the main cable of the flexible photovoltaic bracket.

[0060] For example, Figure 3As shown, this figure is a schematic diagram of the cross-section line in the horizontal axis direction corresponding to a flexible photovoltaic bracket layout diagram provided in an embodiment of the present application. Figure 3 S1-S17 in the figure are the cutting lines in the horizontal direction, which are parallel to the direction of the main cable of the flexible photovoltaic bracket and intersect with the midpoint midline of the end bracket and the midpoint midline of the middle bracket. The two-dimensional polyline ① is the cutting line of the left end, the two-dimensional polyline ⑥ is the cutting line of the right end, and the two-dimensional polylines ②, ③, ④, ⑤ are the cutting lines of the middle.

[0061] The characteristics of the section line in the horizontal axis direction may be a two-dimensional polyline, so that the section line in the horizontal axis direction can be edited or modified later.

[0062] In a possible implementation, in order to facilitate the subsequent determination of the elevation of the flexible photovoltaic support, when drawing the section line in the horizontal axis direction, the section line in the horizontal axis direction can exceed the end support and intersect with the mountain contour line.

[0063] S102. Draw a section line in the longitudinal direction according to the midpoint center line of the middle support along a direction perpendicular to the main cable of the flexible photovoltaic support.

[0064] The characteristics of the section line in the longitudinal direction can be a two-dimensional polyline, so that the section line in the longitudinal direction can be edited or modified later. The section line in the longitudinal direction includes a left end section line, a middle section line, and a right end section line.

[0065] In a possible implementation, the step of drawing a section line in the longitudinal direction according to the midpoint centerline of the middle bracket along a direction perpendicular to the main cable of the flexible photovoltaic bracket includes:

[0066] Along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the left end support, a left end section line intersecting with the midpoint centerline of the middle support can be drawn. Along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the right end support, a right end section line intersecting with the midpoint centerline of the middle support can be drawn. Along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the middle support, a middle section line intersecting with the midpoint centerline of the middle support can be drawn. Figure 4 As shown, this figure is a schematic diagram of the cross-section line in the longitudinal direction corresponding to a flexible photovoltaic bracket layout diagram provided in an embodiment of the present application.

[0067] like Figure 4 The two-dimensional polyline ① is the left end cutting line, the two-dimensional polyline ⑥ is the right end cutting line, and the two-dimensional polylines ②, ③, ④, and ⑤ are the middle cutting lines.

[0068] S103, drawing a cross-sectional view of the flexible photovoltaic support according to the coordinates and elevation of the intersection point between the section line in the horizontal axis direction and the section line in the vertical axis direction.

[0069] In one possible implementation, a flexible photovoltaic bracket can be drawn according to the coordinates and elevation of the intersection between the cutting line in the horizontal axis direction and the cutting line in the vertical axis direction, and a cable can be drawn according to the height of the flexible photovoltaic bracket to obtain a cross-sectional view of the flexible photovoltaic bracket.

[0070] In another possible implementation, after obtaining the left end section line, the middle section line, and the right end section line, the elevation section view of the left end bracket, the elevation section view of the middle bracket, and the elevation section view of the right end bracket can be drawn.

[0071] A cross-sectional view of the flexible photovoltaic bracket is drawn based on the elevation cross-sectional view of the left end bracket, the elevation cross-sectional view of the middle bracket, and the elevation cross-sectional view of the right end bracket, and the coordinates and elevation of the intersection between the cross-sectional line in the horizontal axis direction and the cross-sectional line in the vertical axis direction.

[0072] For example, Figure 5 As shown in FIG. 1 , this figure is a cross-sectional view of a flexible photovoltaic support provided in an embodiment of the present application in a mountainous environment. Among them, cross-sectional views s1-s17 are respectively Figure 3 The section lines S1-S17 in the mid-horizontal direction correspond one to one, that is, the section view s1 corresponds to Figure 3 The section line S1 in the mid-horizontal direction; the section view S2 corresponds to Figure 3 The section line S2 in the mid-horizontal direction; the section view S3 corresponds to Figure 3 The section line S3 in the mid-transverse axis direction, and so on.

[0073] In summary, the embodiment of the present application provides a method for drawing a cross-sectional view of a flexible photovoltaic support by drawing a cross-sectional line in the horizontal direction that intersects the midpoint center line of the end support and the midpoint center line of the middle support on the mountain contour line layer along the direction parallel to the main cable of the flexible photovoltaic support, and drawing a cross-sectional line in the vertical direction according to the midpoint center line of the middle support along the direction perpendicular to the main cable of the flexible photovoltaic support. According to the coordinates and elevation of the intersection between the cross-sectional line in the horizontal direction and the cross-sectional line in the vertical direction, a cross-sectional view of the flexible photovoltaic support can be drawn. The method provided in the embodiment of the present application reduces the reliance on manual operation and human judgment of technicians, reduces the complexity of drawing, and can effectively improve drawing efficiency. When the drawing efficiency is improved, the construction efficiency of the flexible photovoltaic support can be improved accordingly, the construction period can be shortened accordingly, and the amount of foundation excavation during the construction process can be effectively reduced.

[0074] At the same time, based on the cross-sectional view of the flexible photovoltaic bracket, the rationality of the position of the flexible photovoltaic bracket can be judged, and it can be determined whether the flexible photovoltaic bracket has fallen into a ditch and whether there is a rope dragging on the ground, so that technicians can quickly adjust the position of the end bracket and the middle bracket to improve the efficiency of the layout design of the photovoltaic power station.

[0075] For ease of understanding, the following uses the automatic list processing language (AutoLISP) language to draw a cross-sectional view of a flexible photovoltaic bracket as an example to comprehensively introduce a method for drawing a cross-sectional view of a flexible photovoltaic bracket provided in an embodiment of the present application.

[0076] Step 1: Draw a mountain contour map in the specified standard layer.

[0077] Among them, it is stipulated that the standard layer can be named "DGX" and its characteristics can be set to a two-dimensional polyline segment.

[0078] Step 2: Draw a section line in the horizontal direction parallel to the main cable of the flexible photovoltaic bracket, which intersects with the midpoint centerline of the end bracket and the midpoint centerline of the middle bracket.

[0079] For example, the layer where the section line in the horizontal direction is located can be named "SECLINE" and its characteristics can be set as a two-dimensional polyline segment. In order to facilitate the subsequent determination of the elevation of the flexible photovoltaic bracket, when drawing the section line in the horizontal direction, the section line in the horizontal direction can be made to exceed the end bracket and intersect with the mountain contour line.

[0080] Step 3: Draw a left end section line that intersects with the midpoint centerline of the middle bracket according to the position of the front end pile of the left end bracket in a direction perpendicular to the main cable of the flexible photovoltaic bracket.

[0081] For example, the layer where the left end section line is located can be named "IBlock-BaseL", and its properties can be set to a two-dimensional polyline segment.

[0082] Step 4: Draw a right end section line that intersects with the midpoint centerline of the middle bracket according to the position of the front end pile of the right end bracket in a direction perpendicular to the main cable of the flexible photovoltaic bracket.

[0083] For example, the layer where the right end section line is located can be named "IBlock-BaseR", and its properties can be set to a two-dimensional polyline segment.

[0084] Step 5: Draw a middle section line that intersects with the midpoint centerline of the middle bracket according to the position of the front end pile of the middle bracket in a direction perpendicular to the main cable of the flexible photovoltaic bracket.

[0085] For example, the layer where the middle section line is located can be named "IBlock-BaseM" and its properties can be set to a two-dimensional polyline segment.

[0086] It is understandable that the execution order of step 3, step 4, and step 5 is not specifically limited in the embodiment of the present application.

[0087] Step 6: Draw the elevation and section view of the left end bracket, the elevation and section view of the middle bracket, and the elevation and section view of the right end bracket.

[0088] Exemplarily, after obtaining the elevation cross-section view of the left end bracket, the elevation cross-section view of the middle bracket, and the elevation cross-section view of the right end bracket, they can be set as a "block".

[0089] Blocks are a way to combine a group of images into a single object. This single object can be inserted multiple times in a drawing, and each time it is inserted, its original properties can be maintained, or it can be scaled, rotated, or mirrored as needed.

[0090] For example, in the embodiment of the present application, the block corresponding to the elevation cross-section of the left end bracket can be named "BaseL", the block corresponding to the elevation cross-section of the right end bracket can be named "BaseR", and the block corresponding to the elevation cross-section of the middle bracket can be named "BaseM".

[0091] It is understandable that in the embodiments of the present application, there is no specific limitation on the naming of each layer, and the above is only an example.

[0092] Step 7. In response to the user selecting all current cutting lines according to the prompt, draw the flexible photovoltaic bracket according to the coordinates and elevation of the intersection of the cutting line of the "SECLINE" layer with the cutting lines of the "IBlock-BaseL" layer, the "IBlock-BaseM" layer and the "IBlock-BaseR" layer, and draw the cable according to the height of the flexible photovoltaic bracket to obtain a cross-sectional view of the flexible photovoltaic bracket.

[0093] Among them, the "IBlock-BaseL" layer corresponds to the block "BaseL"; the "IBlock-BaseR" layer corresponds to the block "BaseR"; and the "IBlock-BaseM" layer corresponds to the block "BaseM".

[0094] Step 8: Output the cross-sectional view of the flexible photovoltaic bracket.

[0095] In summary, the embodiment of the present application provides a method for drawing a cross-sectional view of a flexible photovoltaic bracket, which reduces the reliance on manual operation and human judgment of technicians, reduces the complexity of drawing, and can effectively improve drawing efficiency. When the drawing efficiency is improved, the construction efficiency of the flexible photovoltaic bracket can be improved accordingly, the construction period can be shortened accordingly, and the amount of foundation excavation during the construction process can be effectively reduced. At the same time, based on the cross-sectional view of the flexible photovoltaic bracket, the rationality of the position of the flexible photovoltaic bracket can be judged, and at the same time, it can be determined whether the flexible photovoltaic bracket has fallen into a gully and whether there is a rope dragging on the ground, so that technicians can quickly adjust the position of the end bracket and the middle bracket, and improve the efficiency of the design of the photovoltaic power station layout.

[0096] The present application provides a cross-sectional drawing device for a flexible photovoltaic bracket, see Figure 6 This figure is a structural schematic diagram of a cross-sectional view drawing device for a flexible photovoltaic bracket provided in an embodiment of the present application. Its specific implementation method is consistent with the implementation method and the technical effect achieved in the embodiment of the above method, and some contents will not be repeated here.

[0097] A cross-sectional drawing device 1100 for a flexible photovoltaic support includes:

[0098] A first drawing unit 1101, a second drawing unit 1102 and a third drawing unit 1103;

[0099] The first drawing unit 1101 is used to draw a section line in the horizontal axis direction that intersects the midpoint center line of the end support and the midpoint center line of the middle support on the mountain contour layer, along a direction parallel to the main cable of the flexible photovoltaic support;

[0100] The second drawing unit 1102 is used to draw a section line in the longitudinal direction according to the midpoint center line of the middle bracket along a direction perpendicular to the main cable of the flexible photovoltaic bracket, wherein the section line in the longitudinal direction includes a left end section line, a middle section line, and a right end section line;

[0101] The third drawing unit 1103 is used to draw a cross-sectional view of the flexible photovoltaic support according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction.

[0102] In a possible implementation, the second drawing unit is specifically configured to:

[0103] Along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the left end support, draw the left end cutting line intersecting with the midpoint centerline of the middle support; along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the right end support, draw the right end cutting line intersecting with the midpoint centerline of the middle support; along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the middle support, draw the middle cutting line intersecting with the midpoint centerline of the middle support.

[0104] In a possible implementation manner, the third drawing unit is specifically configured to:

[0105] A flexible photovoltaic bracket is drawn according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction, and a cable is drawn according to the height of the flexible photovoltaic bracket to obtain a cross-sectional view of the flexible photovoltaic bracket.

[0106] In a possible implementation manner, the third drawing unit is specifically configured to:

[0107] Draw the elevation and section view of the left end bracket, the elevation and section view of the middle bracket, and the elevation and section view of the right end bracket;

[0108] A cross-sectional view of the flexible photovoltaic bracket is drawn based on the elevation cross-sectional view of the left end bracket, the elevation cross-sectional view of the middle bracket, and the elevation cross-sectional view of the right end bracket, and the coordinates and elevation of the intersection between the cross-sectional line in the horizontal axis direction and the cross-sectional line in the vertical axis direction.

[0109] In a possible implementation, the section line in the horizontal axis direction exceeds the end bracket and intersects with the mountain contour line.

[0110] In a possible implementation, the section line in the horizontal axis direction, the section line in the vertical axis direction, and the mountain contour lines in the mountain contour layer are characterized by two-dimensional polylines.

[0111] In summary, the embodiment of the present application provides a cross-sectional drawing device for a flexible photovoltaic bracket, which reduces the reliance on manual operation and human judgment of technicians, reduces the complexity of drawing, and can effectively improve drawing efficiency. When the drawing efficiency is improved, the construction efficiency of the flexible photovoltaic bracket can be improved accordingly, the construction period can be shortened accordingly, and the amount of foundation excavation during the construction process can be effectively reduced. At the same time, based on the cross-sectional view of the flexible photovoltaic bracket, the rationality of the position of the flexible photovoltaic bracket can be judged, and at the same time, it can be determined whether the flexible photovoltaic bracket has fallen into a gully and whether there is a rope dragging on the ground, so that technicians can quickly adjust the position of the end bracket and the middle bracket, thereby improving the efficiency of the design of the photovoltaic power station layout.

[0112] An embodiment of the present application provides a computer device, the computer device comprising: a processor and a memory;

[0113] The memory is used to store program code and transmit the program code to the processor;

[0114] The processor is used to execute the steps of the above-mentioned method for drawing a cross-sectional view of a flexible photovoltaic bracket according to the instructions in the program code.

[0115] An embodiment of the present application provides a computer-readable storage medium having a computer program stored thereon. When the computer program is executed by a processor, the steps of the method for drawing a cross-sectional view of a flexible photovoltaic bracket as described above are implemented.

[0116] An embodiment of the present application provides a computer program product. When the computer program product is run on a computer, the computer executes the steps of the method for drawing a cross-sectional view of a flexible photovoltaic bracket as described above.

[0117] It should be noted that the various embodiments in this specification are described in a progressive manner, and the same or similar parts between the various embodiments can be referred to each other, and each embodiment focuses on the differences from other embodiments. In particular, for the computer device, apparatus, and computer-readable storage medium embodiments, since they are basically similar to the method embodiments, the description is relatively simple, and the relevant parts can be referred to the partial description of the method embodiments.

[0118] The computer equipment, apparatus, and computer-readable storage medium embodiments described above are merely illustrative, wherein the units described as separate components may or may not be physically separated, and the components indicated as units may or may not be physical units, i.e., they may be located in one place, or they may be distributed on multiple network units. Some or all of the modules may be selected according to actual needs to achieve the purpose of the present embodiment. Those of ordinary skill in the art may understand and implement the present invention without creative work.

[0119] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any changes or substitutions that can be easily thought of by a person skilled in the art within the technical scope disclosed in the present application should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be based on the protection scope of the claims.

Claims

1. A method for drawing a cross-sectional view of a flexible photovoltaic support, characterized in that: include: On the mountain contour layer, draw a section line in the horizontal direction that intersects the midpoint center line of the end bracket and the midpoint center line of the middle bracket in a direction parallel to the main cable of the flexible photovoltaic bracket; the section line in the horizontal direction exceeds the end bracket and intersects with the mountain contour; Along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the left end support, draw the left end section line intersecting with the midpoint centerline of the middle support; along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the right end support, draw the right end section line intersecting with the midpoint centerline of the middle support; along the direction perpendicular to the main cable of the flexible photovoltaic support, according to the position of the front end pile of the middle support, draw the middle section line intersecting with the midpoint centerline of the middle support; Draw a cross-sectional view of the flexible photovoltaic bracket according to the coordinates and elevation of the intersection between the cross-sectional line in the horizontal axis direction and the cross-sectional line in the vertical axis direction; the cross-sectional line in the vertical axis direction includes a left end cross-sectional line, a middle cross-sectional line, and a right end cross-sectional line; The step of drawing a cross-sectional view of the flexible photovoltaic support according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction comprises: Draw the elevation and section view of the left end bracket, the elevation and section view of the middle bracket, and the elevation and section view of the right end bracket; A cross-sectional view of the flexible photovoltaic bracket is drawn based on the elevation cross-sectional view of the left end bracket, the elevation cross-sectional view of the middle bracket, and the elevation cross-sectional view of the right end bracket, and the coordinates and elevation of the intersection between the cross-sectional line in the horizontal axis direction and the cross-sectional line in the vertical axis direction.

2. The method according to claim 1, characterized in that The step of drawing a cross-sectional view of the flexible photovoltaic support according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction comprises: A flexible photovoltaic bracket is drawn according to the coordinates and elevation of the intersection between the section line in the horizontal axis direction and the section line in the vertical axis direction, and a cable is drawn according to the height of the flexible photovoltaic bracket to obtain a cross-sectional view of the flexible photovoltaic bracket.

3. The method according to any one of claims 1 to 2, characterized in that: The cutting line in the horizontal axis direction, the cutting line in the vertical axis direction, and the mountain contour lines in the mountain contour layer are characterized by two-dimensional polylines.

4. A cross-sectional drawing device for a flexible photovoltaic support, characterized in that: include: A first drawing unit, a second drawing unit and a third drawing unit; The first drawing unit is used to draw a section line in the horizontal direction on the mountain contour layer, which intersects with the midpoint center line of the end bracket and the midpoint center line of the middle bracket in a direction parallel to the main cable of the flexible photovoltaic bracket; the section line in the horizontal direction exceeds the end bracket and intersects with the mountain contour; The second drawing unit is used to draw a left end section line intersecting with the midpoint centerline of the middle bracket according to the position of the front end pile of the left end bracket along the direction perpendicular to the main cable of the flexible photovoltaic bracket; draw a right end section line intersecting with the midpoint centerline of the middle bracket according to the position of the front end pile of the right end bracket along the direction perpendicular to the main cable of the flexible photovoltaic bracket; draw a middle section line intersecting with the midpoint centerline of the middle bracket according to the position of the front end pile of the middle bracket along the direction perpendicular to the main cable of the flexible photovoltaic bracket; The third drawing unit is used to draw a cross-sectional view of the flexible photovoltaic bracket according to the coordinates and elevation of the intersection between the cutting line in the horizontal axis direction and the cutting line in the vertical axis direction; the cutting line in the vertical axis direction includes a left end cutting line, a middle cutting line, and a right end cutting line; The third drawing unit is specifically used for: Draw the elevation and section view of the left end bracket, the elevation and section view of the middle bracket, and the elevation and section view of the right end bracket; A cross-sectional view of the flexible photovoltaic bracket is drawn based on the elevation cross-sectional view of the left end bracket, the elevation cross-sectional view of the middle bracket, and the elevation cross-sectional view of the right end bracket, and the coordinates and elevation of the intersection between the cross-sectional line in the horizontal axis direction and the cross-sectional line in the vertical axis direction.

5. A computer device, characterized in that: The computer device comprises: a processor and a memory; The memory is used to store program code and transmit the program code to the processor; The processor is used to execute the steps of a method for drawing a cross-sectional view of a flexible photovoltaic bracket as described in any one of claims 1 to 3 according to the instructions in the program code.

6. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps of a method for drawing a cross-sectional view of a flexible photovoltaic bracket as described in any one of claims 1 to 3 are implemented.

7. A computer program product, characterized in that When the computer program product is run on a computer, the computer executes the steps of a method for drawing a cross-sectional view of a flexible photovoltaic support as described in any one of claims 1 to 3.

Citation Information

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