A multi-level engineering geological 3D modeling method

By designing a vibration mechanism for the coordination of rotating convex rings and groove rings in a three-dimensional modeling equipment, combined with the active air inlet of the fan blades, the problem of dust accumulation affecting heat dissipation is solved, and the heat dissipation performance of the equipment is significantly improved.

CN118927625BActive Publication Date: 2025-06-06NUCLEAR IND JINHUA ENG EXPLORATION INSTITUTIONS
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Patent Information

Application Number
CN202411235292.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-04
Publication Date
2025-06-06
Estimated Expiration
2044-09-04

AI Technical Summary

Technical Problem

In three-dimensional modeling equipment, dust on the surface of the heat dissipation hole accumulates during long-term use, affecting the heat dissipation performance and causing the equipment to overheat.

Method used

By designing the coordination between the rotating convex ring and the groove ring, the spring assembly is used to drive the first and second screen plates to vibrate, shake off the dust on the surface, and at the same time, the rotation of the fan blades is used to actively inject air to improve heat dissipation.

Benefits of technology

Effectively remove dust, avoid it from clogging the heat dissipation holes, improve the heat dissipation performance of three-dimensional modeling equipment, and ensure the stable operation of the equipment under high load conditions.

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Abstract

The present invention belongs to the technical field of three-dimensional modeling devices, and discloses a multi-stage engineering geological three-dimensional modeling method, wherein the specific modeling method steps include geological scanning, data transmission, and three-dimensional modeling; wherein the inner cavity of the modeling device is fixedly connected with a motor, the output shaft of the motor is fixedly sleeved with a rotating rod, the surface of the rotating rod is fixedly connected with a fan blade, the inner cavity of the modeling device is fixedly connected with a spring component 1, the side of the spring component 1 away from the motor is connected with a first sieve plate, the side of the modeling device away from the first sieve plate is fixedly connected with a spring component 2, the side of the spring component 2 close to the first sieve plate is fixedly connected with a second sieve plate, and the rotating rod is fixedly connected with a rotating convex ring at the center of the side of the first sieve plate. The dust on the surface of the first sieve plate and the second sieve plate is processed while the heat is dissipated to avoid the blockage affecting the heat dissipation performance, and the active air intake is carried out through the rotation of the fan blades, which further improves the heat dissipation.
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Description

Technical Field

[0001] The invention belongs to the technical field of three-dimensional modeling devices, and specifically relates to a multi-level engineering geological three-dimensional modeling method. Background Art

[0002] Before the construction of the project, the geology must first be scanned with surveying equipment, and then the geology must be modeled using 3D modeling equipment to facilitate the planning of subsequent projects. However, when performing 3D modeling, the 3D modeling equipment needs to process a lot of data, which makes the 3D modeling equipment have a higher temperature when modeling. In order to avoid overheating and affect the performance of the 3D modeling equipment, heat dissipation holes are set on the side of the equipment for heat dissipation. However, dust accumulates on the surface of these heat dissipation holes during long-term use, which will affect the heat dissipation performance. Summary of the invention

[0003] The object of the present invention is to provide a multi-level engineering geological three-dimensional modeling method to solve the problems raised in the above background technology.

[0004] In order to achieve the above object, the present invention provides the following technical solution: a multi-level engineering geological three-dimensional modeling method, the specific modeling method steps are as follows:

[0005] S1. Geological scanning: Use survey equipment to survey the geology that needs to be modeled and scan the geology;

[0006] S2, data transmission: then the scanned geological conditions are converted into data and transmitted to the modeling equipment;

[0007] S3, 3D modeling: using modeling equipment to process data and perform 3D modeling;

[0008] The above steps S2 and S3 need to be completed by a modeling device, wherein the inner cavity of the modeling device is fixedly connected to a motor, the output shaft of the motor is fixedly sleeved with a rotating rod, the surface of the rotating rod is fixedly connected to a fan blade, the inner cavity of the modeling device is fixedly connected to a spring component 1, the side of the spring component 1 away from the motor is connected to a first sieve plate, the side of the modeling device away from the first sieve plate is fixedly connected to a spring component 2, the side of the spring component 2 close to the first sieve plate is fixedly connected to a second sieve plate, the center of the rotating rod close to the first sieve plate is fixedly connected to a rotating convex ring, and the center of the first sieve plate close to the rotating rod is fixedly connected to a groove ring.

[0009] Preferably, the bottom end of the modeling device is fixedly connected to a heat-conducting base plate, the left and right sides of the heat-conducting base plate are fixedly connected to a cooling water inlet pipe, the top of the cooling water inlet pipe is fixedly connected to a heat dissipation pipe, the heat dissipation pipe is fixedly connected to a conveying hose on the side close to the rotating rod, the surface of the rotating rod is fixedly connected to a three-head extrusion disk, the inner cavity of the modeling device is fixedly connected to a fixing frame, and the side of the fixing frame away from the motor is fixedly connected to a limiting ring, a fixing block and a limiting column.

[0010] Preferably, a display screen is hinged at the top of the modeling device, a pressing wheel is fixedly connected to the front side of the display screen, passing grooves are provided on the left and right sides of the modeling device, a sloped rod is fixedly connected to the side of the second sieve plate away from the first sieve plate, and an operation panel is provided at the top of the modeling device.

[0011] Preferably, the first spring assembly is composed of a damping telescopic rod and a spring, the second spring assembly is composed of a damping rod and a spring, and the damping rod passes through the modeling device and is fixedly connected to the second sieve plate.

[0012] Preferably, a groove is formed on a side of the groove ring close to the rotating convex ring, and the rotating convex ring is fitted on the surface of the groove ring.

[0013] Preferably, a delivery pipe is fixedly connected to the front side of the heat-conducting bottom plate, the delivery pipe is communicated with the inner cavity of the heat-dissipating pipe, and a heat-conducting sheet is arranged on the top of the heat-conducting bottom plate.

[0014] Preferably, the delivery hose passes through the fixing block and contacts the limiting column, the delivery hose is located in the inner cavity of the limiting ring, and the three-head extrusion disk extrudes the delivery hose.

[0015] Preferably, the heat dissipation pipe is located between the motor and the fan blades, and the cooling water inlet pipe passes through the modeling device and is fixedly connected to the heat dissipation pipe.

[0016] Preferably, the surface sieve holes of the first sieve plate and the second sieve plate are arranged alternately, and the inclined rod is located below the through slot.

[0017] The beneficial effects of the present invention are as follows:

[0018] 1. The present invention rotates the rotating convex ring so that the rotating convex ring moves out of the groove of the groove ring and presses the groove ring. At this time, the elasticity of the spring component one causes the first sieve plate to be displaced and then contacts the second sieve plate through the first sieve plate, so that the second sieve plate is displaced to press the spring component two. When the rotating convex ring is located in the groove of the groove ring, the spring component one and the spring component two bounce, thereby driving the first sieve plate and the second sieve plate to vibrate, and then shaking off the dust on their surfaces, thereby achieving the processing of dust on the surfaces of the first sieve plate and the second sieve plate while dissipating heat, avoiding its clogging and affecting the heat dissipation performance, and actively intakes air through the rotation of the fan blades, further improving the heat dissipation.

[0019] 2. The present invention dissipates heat at the bottom of the modeling device through the heat-conducting base plate, thereby further improving the heat dissipation performance of the modeling device. Then, the three-head extrusion disk is driven to rotate by the rotating rod. The three-head extrusion disk squeezes the delivery hose, so that the negative pressure in the inner cavity of the delivery hose draws the cooling water in the inner cavity of the heat-conducting base plate from the cooling water inlet pipe to the inner cavity of the heat dissipation pipe. The cooling water in the inner cavity of the heat dissipation pipe is contacted with the high-speed flowing air in the inner cavity of the modeling device through the heat dissipation pipe, thereby cooling the cooling water. After cooling, it returns to the inner cavity of the heat-conducting base plate to conduct heat and cool the bottom of the modeling device, thereby improving the heat dissipation performance of the modeling device.

[0020] 3. In the present invention, after the modeling is completed, the user covers the display screen, and the pressing wheel passes through the groove to press the inclined rod, thereby driving the second sieve plate to move in the direction of the first sieve plate. At this time, after the second sieve plate and the first sieve plate are in contact and cooperate, the inner cavity of the modeling device can be completely sealed, thereby preventing cooling water vapor from entering the interior of the modeling device when the modeling device is placed in a humid environment. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a connection schematic diagram of the present invention;

[0022] Figure 2 For the present invention Figure 1 The connection diagram at A is enlarged;

[0023] Figure 3 This is a schematic diagram of the connection of the heat-conducting bottom plate of the structure of the present invention;

[0024] Figure 4 This is a schematic diagram of the motor connection structure of the present invention;

[0025] Figure 5 This is a schematic diagram of the connection of the first sieve plate of the structure of the present invention;

[0026] Figure 6 This is a schematic diagram of the connection of the structural delivery pipe of the present invention.

[0027] In the figure: 1. Modeling equipment; 2. Motor; 3. Rotating rod; 4. Fan blade; 5. Spring assembly one; 6. First sieve plate; 7. Spring assembly two; 8. Second sieve plate; 9. Rotating convex ring; 10. Groove ring; 11. Heat-conducting bottom plate; 12. Cooling water inlet pipe; 13. Heat dissipation pipe; 14. Delivery hose; 15. Delivery pipe; 16. Three-head extrusion plate; 17. Fixed frame; 18. Limiting ring; 19. Fixed block; 20. Limiting column; 21. Pressing wheel; 22. Through slot; 23. Inclined rod; 24. Display screen; 25. Operation panel. DETAILED DESCRIPTION

[0028] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0029] like Figures 1 to 6 As shown, the embodiment of the present invention provides a multi-level engineering geological three-dimensional modeling method, and the specific modeling method steps are as follows:

[0030] S1. Geological scanning: Use survey equipment to survey the geology that needs to be modeled and scan the geology;

[0031] S2, data transmission: then the scanned geological conditions are converted into data and transmitted to the modeling device 1;

[0032] S3, three-dimensional modeling: using the modeling device 1 to process the data and perform three-dimensional modeling;

[0033] The above steps S2 and S3 need to be completed by the modeling device 1, wherein the inner cavity of the modeling device 1 is fixedly connected to the motor 2, the output shaft of the motor 2 is fixedly sleeved with a rotating rod 3, the surface of the rotating rod 3 is fixedly connected to the fan blade 4, the inner cavity of the modeling device 1 is fixedly connected to the spring component 1 5, the side of the spring component 1 5 away from the motor 2 is connected to the first sieve plate 6, the side of the modeling device 1 away from the first sieve plate 6 is fixedly connected to the spring component 2 7, the side of the spring component 2 7 close to the first sieve plate 6 is fixedly connected to the second sieve plate 8, the center of the rotating rod 3 close to the first sieve plate 6 is fixedly connected to the rotating convex ring 9, and the center of the first sieve plate 6 close to the rotating rod 3 is fixedly connected to the groove ring 10;

[0034] The working principle and beneficial effects of the above technical solution are as follows: when the modeling device 1 is running, the rotating rod 3 is driven to rotate by starting the motor 2, thereby driving the fan blades 4 to rotate to generate wind force to filter the external air through the first sieve plate 6 and the second sieve plate 8, and only blow it into the interior of the modeling device 1 to cool down the components inside the modeling device 1. Then, by rotating the rotating convex ring 9, the rotating convex ring 9 is moved out of the groove of the groove ring 10 and presses the groove ring 10. At this time, through the elasticity of the spring component 1, the first sieve plate 6 is displaced and then contacts the second sieve plate 8 through the first sieve plate 6, so that the second sieve plate 8 is displaced to press the spring component 2 7. When the rotating convex ring 9 is located in the groove of the groove ring 10, the spring component 1 5 and the spring component 2 7 are bounced, thereby driving the first sieve plate 6 and the second sieve plate 8 to vibrate, and then shaking off the dust on their surfaces, thereby achieving the dust on the surfaces of the first sieve plate 6 and the second sieve plate 8 while dissipating heat, avoiding its blockage and affecting the heat dissipation performance, and actively taking in air through the rotation of the fan blades 4, further improving the heat dissipation.

[0035] like Figure 5 As shown, in one embodiment, a heat-conducting bottom plate 11 is fixedly connected to the bottom end of the modeling device 1, and a cooling water inlet pipe 12 is fixedly connected to the left and right sides of the heat-conducting bottom plate 11, and a heat dissipation pipe 13 is fixedly connected to the top of the cooling water inlet pipe 12, and a conveying hose 14 is fixedly connected to the side of the heat dissipation pipe 13 close to the rotating rod 3, and a three-head extrusion disk 16 is fixedly connected to the surface of the rotating rod 3, and a fixing frame 17 is fixedly connected to the inner cavity of the modeling device 1, and a limiting ring 18, a fixing block 19, and a limiting column 20 are fixedly connected to the side of the fixing frame 17 away from the motor 2;

[0036] The working principle and beneficial effects of the above technical scheme are as follows: the bottom end of the modeling device 1 is cooled by the heat-conducting base plate 11, thereby further improving the heat dissipation performance of the modeling device 1, and then the three-head extrusion disk 16 is driven to rotate by the rotating rod 3, and the three-head extrusion disk 16 squeezes the delivery hose 14, so that the negative pressure in the inner cavity of the delivery hose 14 draws the cooling water in the inner cavity of the heat-conducting base plate 11 from the cooling water inlet pipe 12 to the inner cavity of the delivery heat dissipation pipe 13, and the heat dissipation pipe 13 contacts the high-speed flowing air in the inner cavity of the modeling device 1, thereby cooling the cooling water in the inner cavity of the heat dissipation pipe 13, and after cooling, it returns to the inner cavity of the heat-conducting base plate 11 to conduct heat and cool the bottom of the modeling device 1, thereby improving the heat dissipation performance of the modeling device 1.

[0037] like Figure 1 As shown, in one embodiment, a display screen 24 is hingedly connected to the top of the modeling device 1, a pressing wheel 21 is fixedly connected to the front side of the display screen 24, a through slot 22 is provided on both the left and right sides of the modeling device 1, a side of the second sieve plate 8 away from the first sieve plate 6 is fixedly connected to an inclined rod 23, and an operation panel 25 is provided on the top of the modeling device 1;

[0038] The working principle and beneficial effects of the above technical solution are as follows: after the modeling is completed, the user covers the display screen 24, and the pressing wheel 21 passes through the groove 22 to press the inclined rod 23, thereby driving the second sieve plate 8 to move in the direction of the first sieve plate 6. At this time, after the second sieve plate 8 and the first sieve plate 6 are in contact and cooperate, the inner cavity of the modeling device 1 can be completely sealed, thereby preventing cooling water vapor from entering the interior of the modeling device 1 when the modeling device 1 is placed in a humid environment.

[0039] like Figure 4 As shown, in one embodiment, the spring assembly 1 5 is composed of a damping telescopic rod and a spring, the spring assembly 2 7 is composed of a damping rod and a spring, and the damping rod passes through the modeling device 1 and is fixedly connected to the second sieve plate 8;

[0040] The working principle and beneficial effects of the above technical solution are as follows: by setting the spring assembly 1 5, the first sieve plate 6 can move after being squeezed by the rotating convex ring 9, and then by setting the spring and the spring assembly 2 7, the second sieve plate 8 can move after being squeezed by the first sieve plate 6, thereby making the first sieve plate 6 and the second sieve plate 8 vibrate, and the spring is positioned and guided by the damping telescopic rod and the damping rod to avoid its displacement during movement.

[0041] like Figure 2 As shown, in one embodiment, a groove is provided on one side of the groove ring 10 close to the rotating convex ring 9, and the rotating convex ring 9 is fitted on the surface of the groove ring 10;

[0042] The working principle and beneficial effects of the above technical solution are as follows: by means of the groove ring 10 close to the groove on one side of the rotating convex ring 9, when the rotating convex ring 9 is located in the groove, the spring assembly 5 is in a normal state; when the rotating convex ring 9 moves out of the groove and contacts the groove ring 10, the groove ring 10 is squeezed, and then the first screen plate 6 is squeezed so that the spring assembly 5 is in a compressed state.

[0043] like Figure 3 As shown, in one embodiment, a delivery pipe 15 is fixedly connected to the front side of the heat-conducting bottom plate 11, the delivery pipe 15 is connected to the inner cavity of the heat-dissipating pipe 13, and a heat-conducting sheet is arranged on the top of the heat-conducting bottom plate 11;

[0044] The working principle and beneficial effects of the above technical solution are as follows: through the delivery pipe 15 on the front side of the heat-conducting base plate 11, the cooling water passes through the heat dissipation pipe 13 and then returns to the inner cavity of the heat-conducting base plate 11 through the delivery pipe 15, so that the heat generated by the modeling device 1 during use is absorbed by the heat-conducting plate on the top of the heat-conducting base plate 11, thereby improving the heat dissipation capacity of the modeling device 1.

[0045] like Figure 6As shown, in one embodiment, the delivery hose 14 passes through the fixing block 19 and contacts the limiting column 20, the delivery hose 14 is located in the inner cavity of the limiting ring 18, and the three-head extrusion disk 16 extrudes the delivery hose 14;

[0046] The working principle and beneficial effects of the above technical solution are as follows: the conveying hose 14 is limited by the limiting ring 18, the fixing block 19 and the limiting column 20, so that the conveying hose 14 can present an arc shape. At this time, the conveying hose 14 is rotated and squeezed by the three-head extrusion disk 16, so that the negative pressure in the inner cavity of the conveying hose 14 transports the cooling water, thereby transporting the cooling water in the inner cavity of the modeling device 1.

[0047] like Figure 5 As shown, in one embodiment, the heat dissipation pipe 13 is located between the motor 2 and the fan blade 4, and the cooling water inlet pipe 12 passes through the modeling device 1 and is fixedly connected to the heat dissipation pipe 13;

[0048] The working principle and beneficial effects of the above technical solution are as follows: the heat dissipation pipe 13 is located between the motor 2 and the fan blade 4, so that the wind blown toward the inside of the modeling device 1 by the rotation of the fan blade 4 can pass through the heat dissipation pipe 13, thereby cooling the cooling water in the inner cavity of the heat dissipation pipe 13 and dissipating the heat.

[0049] like Figure 4 As shown, in one embodiment, the surface sieve holes of the first sieve plate 6 and the second sieve plate 8 are arranged alternately, and the inclined rod 23 is located below the through slot 22;

[0050] The working principle and beneficial effects of the above technical solution are as follows: by staggered arrangement of the sieve holes on the surfaces of the first sieve plate 6 and the second sieve plate 8, when the first sieve plate 6 and the second sieve plate 8 are in contact, the air can be completely blocked by the first sieve plate 6 and the second sieve plate 8, thereby sealing the interior of the modeling device 1, so that when the modeling device 1 is placed in a humid environment, water vapor and the like can be prevented from entering the interior of the modeling device 1.

[0051] Working principle and use process: Use the modeling device 1 through the operation panel 25, and then display it through the display screen 24 to perform modeling. During the modeling process, start the motor 2 to drive the rotating rod 3 to rotate and drive the fan blades 4 to suck the external air into the interior of the modeling device 1, so as to cool the components inside the modeling device 1. Then, by rotating the convex ring 9 and fitting the groove ring 10, the groove ring 10 is pressed to move the groove ring 10, thereby making the first sieve plate 6 move. When the first sieve plate 6 moves, it contacts the second sieve plate 8 and pushes the second sieve plate 8 to move. When the convex ring 9 is rotated back into the groove of the groove ring 10, the spring assembly 5 loses its restriction, and then the first sieve plate 6 and the second sieve plate 8 are reset and vibrated, so as to shake off the dust blocked on the surface.

[0052] When the rotating rod 3 rotates and drives the three-head extrusion disk 16 to rotate, the three-head extrusion disk 16 squeezes the delivery hose 14, and the cooling water in the inner cavity of the heat-conducting base plate 11 is extracted and flows to the inner cavity of the heat dissipation pipe 13 through the negative pressure of the inner cavity of the delivery hose 14, and then the heat dissipation pipe 13 is contacted with the high-speed air flowing in the modeling device 1 to cool down, thereby cooling the cooling water in the inner cavity of the heat dissipation pipe 13, and the cooling water is transported to the inner cavity of the heat-conducting base plate 11 along the delivery pipe 15;

[0053] Then, the bottom of the modeling device 1 is cooled by absorbing heat through the heat-conducting bottom plate 11 to improve the heat dissipation performance of the modeling device 1. After the modeling is completed, the user closes the display screen 24 downward, thereby driving the pressing wheel 21 to pass through the groove 22 to press the inclined rod 23, so that the second sieve plate 8 moves toward the direction of the first sieve plate 6, so that the first sieve plate 6 and the second sieve plate 8 overlap, thereby sealing the inner cavity of the modeling device 1.

[0054] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0055] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A multi-level engineering geological three-dimensional modeling method, characterized in that: The specific modeling steps are as follows: S1. Geological scanning: Use survey equipment to survey the geology that needs to be modeled and scan the geology; S2, data transmission: then the scanned geological conditions are converted into data and transmitted to the modeling equipment; S3, 3D modeling: using modeling equipment to process data and perform 3D modeling; The above steps S2 and S3 need to be completed by a modeling device, wherein the inner cavity of the modeling device is fixedly connected to a motor, a rotating rod is fixedly mounted on the output shaft of the motor, a fan blade is fixedly connected to the surface of the rotating rod, a spring component 1 is fixedly connected to the inner cavity of the modeling device, a first sieve plate is connected to the side of the spring component 1 away from the motor, a spring component 2 is fixedly connected to the side of the modeling device away from the first sieve plate, a second sieve plate is fixedly connected to the side of the spring component 2 close to the first sieve plate, a rotating convex ring is fixedly connected to the center of the rotating rod close to the first sieve plate, and a groove ring is fixedly connected to the center of the side of the first sieve plate close to the rotating rod; A display screen is hinged on the top of the modeling device, a pressing wheel is fixedly connected to the front side of the display screen, through slots are provided on the left and right sides of the modeling device, a sloped rod is fixedly connected to the side of the second sieve plate away from the first sieve plate, and an operation panel is provided on the top of the modeling device; The surface sieve holes of the first sieve plate and the second sieve plate are arranged alternately, and the inclined rod is located below the through slot; Cover the display screen, and then the pressing wheel passes through the groove to press the inclined rod, thereby driving the second sieve plate to move towards the first sieve plate. At this time, after the second sieve plate and the first sieve plate are in contact and cooperate, the inner cavity of the modeling device can be completely sealed.

2. A multi-level engineering geological three-dimensional modeling method according to claim 1, characterized in that: The bottom end of the modeling device (1) is fixedly connected to a heat-conducting base plate (11), the left and right sides of the heat-conducting base plate (11) are fixedly connected to a cooling water inlet pipe (12), the top of the cooling water inlet pipe (12) is fixedly connected to a heat dissipation pipe (13), the side of the heat dissipation pipe (13) close to the rotating rod (3) is fixedly connected to a conveying hose (14), the surface of the rotating rod (3) is fixedly connected to a three-head extrusion disk (16), the inner cavity of the modeling device (1) is fixedly connected to a fixing frame (17), and the side of the fixing frame (17) away from the motor (2) is fixedly connected to a limiting ring (18), a fixing block (19), and a limiting column (20).

3. A multi-level engineering geological three-dimensional modeling method according to claim 1, characterized in that: The spring assembly 1 (5) is composed of a damping telescopic rod and a spring, and the spring assembly 2 (7) is composed of a damping rod and a spring. The damping rod passes through the modeling device (1) and is fixedly connected to the second sieve plate (8).

4. A multi-level engineering geological three-dimensional modeling method according to claim 1, characterized in that: A groove is provided on one side of the groove ring (10) close to the rotating convex ring (9), and the rotating convex ring (9) is fitted on the surface of the groove ring (10).

5. A multi-level engineering geological three-dimensional modeling method according to claim 2, characterized in that: A delivery pipe (15) is fixedly connected to the front side of the heat-conducting bottom plate (11), the delivery pipe (15) is in communication with the inner cavity of the heat-dissipating pipe (13), and a heat-conducting sheet is arranged at the top end of the heat-conducting bottom plate (11).

6. A multi-level engineering geological three-dimensional modeling method according to claim 2, characterized in that: The delivery hose (14) passes through the fixed block (19) and contacts the limiting column (20); the delivery hose (14) is located in the inner cavity of the limiting ring (18); and the three-head extrusion disk (16) extrudes the delivery hose (14).

7. A multi-level engineering geological three-dimensional modeling method according to claim 2, characterized in that: The heat dissipation pipe (13) is located between the motor (2) and the fan blade (4), and the cooling water inlet pipe (12) passes through the modeling device (1) and is fixedly connected to the heat dissipation pipe (13).

Citation Information

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