THREE-DIMENSIONAL GROUND MODEL GENERATION AND AUTOMATED EARTHWORK TARGET MODEL GENERATION SYSTEM BASED ON PARAMETER INPUT
20200393595 ยท 2020-12-17
Inventors
- Seung Soo Lee (Seoul, KR)
- Min Sung Kang (Incheon, KR)
- Seung Man Yang (Yongin-si, KR)
- Woo Yong Jung (Seoul, KR)
- Jong Won Seo (Gimpo-si, KR)
Cpc classification
E01C1/00
FIXED CONSTRUCTIONS
G06T19/00
PHYSICS
G06F17/00
PHYSICS
E21D9/00
FIXED CONSTRUCTIONS
G06F30/13
PHYSICS
E01C23/01
FIXED CONSTRUCTIONS
International classification
Abstract
The present disclosure relates to a three-dimensional ground model generation and an automated earthwork target model generation system based on a parameter input.
Claims
1. An earthwork target model generation system comprising: an input module which is configured to store a three-dimensional topography shape model and drill boring data in the system; a three-dimensional ground model generation module which is configured to generate a three-dimensional ground model using the three-dimensional topography shape model and the drill boring data which are input through the input module; a normal surface information generation module which is configured to generate three-dimensional normal surface information in consideration of a design condition for each rock quality using the three-dimensional ground model which is generated by the three-dimensional ground model generation module; and a normal surface condition setting module which is configured to set the design condition.
2. The earthwork target model generation system of claim 1, wherein the three-dimensional ground model generation module is configured to generate a three-dimensional borehole model using the drill boring information, generate interpolation data through a linear interpolation in consideration of a depth value for each rock quality, generate a rock layer line through the interpolation data, and generate a three-dimensional ground model by offsetting information of the three-dimensional topography shape model to the rock layer line.
3. The earthwork target model generation system of claim 2, wherein the three-dimensional ground model generation module is configured to generate layer information in the form of three-dimensional surface data for each rock quality.
4. The earthwork target model generation system of claim 1, wherein the normal surface condition setting module comprises a design reference boundary setting engine which is configured to determine a design reference boundary corresponding to a starting line from which a normal surface design is started or an outermost line of an earthwork of the trenching.
5. The earthwork target model generation system of claim 4, wherein the normal surface condition setting module comprises a design parameter setting engine which is configured to receive a design parameter for the altitude or gradient of the design reference boundary.
6. The earthwork target model generation system of claim 4, wherein the normal surface condition setting module comprises a normal surface generation direction setting engine which is configured to designate a direction in which a normal surface is to be generated for each surface if the design reference boundary is a closed poly-line form.
7. The earthwork target model generation system of claim 4, wherein the normal surface information generation module comprises a ground condition recognition engine which is configured to analyze whether there is a transverse change in the rock quality by recognizing ground conditions comprising the design reference boundary, and is configured to generate a new boundary line from a changing point if there is the change in the rock quality.
8. The earthwork target model generation system of claim 7, wherein the ground condition recognition engine is configured to analyze a vertical boundary condition of the rock quality associated with each boundary using a gradient value for each rock quality or normal surface design information for each ground condition which is classified as a condition of generating a berm.
9. The earthwork target model generation system of claim 4, wherein the normal surface information generation module comprises: an outermost point line generation engine which is configured to generate a line of a certain gradient at a starting point and an ending point of the design reference boundary, but is configured to generate the line of the gradient up to a boundary surface of a vertical condition in which the rock quality is changed; and an intersection point generation engine which is configured to generate an intersection point between the line of the gradient and a vertical boundary condition surface based on the vertical boundary condition analyzed by the ground condition recognition engine.
10. An earthwork target model generation method comprising: inputting a three-dimensional topography shape model and drill boring data to a system; generating a three-dimensional ground model using the three-dimensional topography shape model and the drill boring data; generating three-dimensional normal surface information in consideration of a design condition for each rock quality using the three-dimensional ground model; and setting a normal surface condition which sets the design condition.
11. The earthwork target model generation method of claim 10, wherein the generating of the three-dimensional ground model generates a three-dimensional borehole model using the drill boring information, generates interpolation data through a linear interpolation in consideration of a depth value for each rock quality, generates a rock layer line through the interpolation data, and generates a three-dimensional ground model by offsetting information of the three-dimensional topography shape model to the rock layer line.
12. The earthwork target model generation method of claim 11, wherein the generating of the three-dimensional ground model generates layer information in the form of three-dimensional surface data for each rock quality.
13. The earthwork target model generation method of claim 10, wherein the setting of the normal surface condition comprises setting a design reference boundary which determines a design reference boundary corresponding to a starting line from which a normal surface design is started or an outermost line of an earthwork of the trenching.
14. The earthwork target model generation method of claim 13, wherein the setting of the normal surface condition comprises setting a design parameter which receives a design parameter for the altitude or gradient of the design reference boundary.
15. The earthwork target model generation method of claim 13, wherein the setting of the normal surface condition comprises setting a normal surface generation direction which designates a direction in which a normal surface is to be generated for each surface if the design reference boundary is a closed poly-line form.
16. The earthwork target model generation method of claim 13, wherein the generating of the normal surface information comprises recognizing a ground condition which analyzes whether there is a transverse change in the rock quality by recognizing ground conditions comprising the design reference boundary, and generates a new boundary line from a changing point if there is the change in the rock quality.
17. The earthwork target model generation method of claim 16, wherein the recognizing of the ground condition analyzes a vertical boundary condition of the rock quality associated with each boundary using a gradient value for each rock quality or normal surface design information for each ground condition which is classified as a condition of generating a berm.
18. The earthwork target model generation method of claim 13, wherein the generating of the normal surface information comprises: generating an outermost point line which generates a line of a certain gradient at a starting point and an ending point of the design reference boundary, but generates the line of the gradient up to a boundary surface of a vertical condition in which the rock quality is changed; and generating an intersection point between the line of the gradient and a vertical boundary condition surface based on the vertical boundary condition analyzed by the ground condition recognition engine.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The accompanying drawings, which are included to provide a further understanding of the disclosure and are incorporated in and constitute a part of this specification, illustrate embodiments of the disclosure and together with the description serve to explain the principles of the disclosure. In the drawings:
[0026]
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DESCRIPTION OF CERTAIN INVENTIVE EMBODIMENTS
[0035] Hereinafter, exemplary embodiments of the present disclosure will be described in detail with reference to the accompanying drawings.
[0036]
[0037] Referring to
[0038] A physical configuration of the earthwork target model system according to the present disclosure may be configured as software (program) or hardware in a computer system such as a general PC or a web server.
[0039] The input module 100 stores a three-dimensional topography shape model and drill boring data in the system.
[0040] The three-dimensional ground model generation module 200 generates a three-dimensional borehole model using the drill boring information, and generates interpolation data through a linear interpolation in consideration of a depth value for each rock quality.
[0041] Further, the three-dimensional ground model generation module 200 generates a rock layer line through the interpolation data, and generates the three-dimensional ground model by offsetting the information of the three-dimensional topography shape model to the rock layer line.
[0042] Further, the three-dimensional ground model generation module 200 generates layer information in the form of three-dimensional surface data for each rock quality.
[0043] The normal surface condition setting module 300 sets design conditions of the normal surface information generation module 400 when the normal surface information generation module 400 generates normal surface information. That is, the normal surface condition setting module 300 severs to set the normal surface condition, which means to set condition information such as height, berm, and gradient related to the banking and cut earth of the normal surface. The normal surface condition setting module 300 includes a design reference boundary setting engine 310, a design parameter setting engine 320, and a normal surface generation direction setting engine 330.
[0044]
[0045] Referring to
[0046] The design parameter setting engine 320 receives design parameters for a step height or a gradient between the berms of the design reference boundary. A number of berms may be designed on the normal surface, and a difference in altitude between the respective berms may also be determined by law. The input design parameters are used to create a final design reference boundary.
[0047] The normal surface generation direction setting engine 330 designates a direction in which the normal surface is to be generated for each surface if the design reference boundary is a closed poly-line form. The direction may be designated by clicking a mouse by classifying the direction into left and right or up and down spaces with respect to the selected boundary line. Whether it is the trenching work or the banking work is determined depending upon the designated direction. Further, in the case of road work, the design reference boundary may also be linear rather than the closed poly-line form.
[0048] The normal surface information generation module 400 generates three-dimensional normal surface information in consideration of the design conditions for each rock quality using the three-dimensional ground model generated by the three-dimensional ground model generation module. The normal surface information generation module 400 includes a ground condition recognition engine 410, an outermost point line generation engine 420, and an intersection point generation engine 430.
[0049]
[0050] Referring to
[0051] The outermost point line generation engine 420 generates a line of a certain gradient at the starting point and the ending point of the design reference boundary, but generates the line of the gradient up to the boundary surface of the vertical condition in which the rock quality is changed.
[0052] The intersection point generation engine 430 generates an intersection point between the line of the gradient and a vertical boundary condition surface based on the vertical boundary condition which is analyzed by the ground condition recognition engine.
[0053] Accordingly, the normal surface information generation module 400 generates three-dimensional normal surface information.
[0054] The display processing module 500 serves to automatically display the three-dimensional data and the resulting data on a display unit for each step in conjunction with the input module 100, the three-dimensional ground model generation module 200, the normal surface condition setting module 300, and the normal surface information generation module 400.
[0055]
[0056] An earthwork target model generation method includes inputting a three-dimensional topography shape model (S110), inputting drill boring data into a system (S120), generating a three-dimensional borehole model using the drill boring information, and generating interpolation data through a linear interpolation in consideration of a depth value for each rock quality (S210), generating a three-dimensional ground model using the three-dimensional topography shape model and the drill boring data (S220), setting normal surface conditions which sets a design condition for each rock quality (S300), and generating three-dimensional normal surface information in consideration of the design condition for each rock quality using the three-dimensional ground model (S400).
[0057] The generating of the three-dimensional ground model (S220) may generate a rock layer line through the interpolation data, generate a three-dimensional ground model by offsetting information of a three-dimensional topography shape model to the rock layer line, and generate layer information in the form of three-dimensional surface data for each rock quality.
[0058] The setting of the normal surface conditions (S300) includes setting a design reference boundary which determines a design reference boundary corresponding to a starting line from which a normal surface design is started or an outmost line of an earthwork of the trenching (S310), setting design parameters which receives design parameters for the altitude or gradient of the design reference boundary (S320), and setting a normal surface generation direction which designates a direction in which the normal surface is to be generated for each surface if the design reference boundary is a closed poly-line form (S330).
[0059] The generating of the normal surface information (S400) includes recognizing ground conditions which analyzes whether there is a transverse change in the rock quality by recognizing ground conditions including the design reference boundary, and generates a new boundary line from a changing point if there is the change in the rock quality (S410), generating an outmost point line which generates a line of a certain gradient at a starting point and an ending point of the design reference boundary, but generates the line of the gradient up to the boundary surface of vertical conditions in which the rock quality is changed (S420), and generating an intersection point between the line of the gradient and a vertical boundary condition surface based on the vertical boundary conditions analyzed by the ground condition recognition engine (S430).
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[0064] As described above, the present disclosure may automatically generate three-dimensional normal surface information from the design reference boundary only by inputting the normal surface design condition for each rock layer using the three-dimensional digital ground information.
[0065] Further, the present disclosure may generate the automated three-dimensional ground model only by inputting the three-dimensional topography data and drill boring information, and automatically update all information only by updating the drill information even when the rock quality is changed, thereby largely reducing the time and the cost required for changing the design.
[0066] Although embodiments have been described with reference to a number of illustrative embodiments thereof, it should be understood that numerous other modifications and embodiments may be devised by those skilled in the art that will fall within the scope of the principles of this disclosure. More particularly, various variations and modifications are possible in the component parts and/or arrangements of the subject combination arrangement within the scope of the disclosure, the drawings and the appended claims. Further to variations and modifications in the component parts and/or arrangements, alternative uses will also be apparent to those skilled in the art.