A building engineering surveying device based on optoelectronic technology
By designing the rotating support structure, support locking structure and adjustment support structure in the construction engineering measurement equipment, the support stability and center of gravity adjustment of the equipment on soft soil are solved, and higher stability and applicability are achieved.
Patent Information
- Application Number
- CN202210827873.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-07-13
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2042-07-13
AI Technical Summary
The existing construction engineering measurement equipment has poor support stability in soft land, high center of gravity is inconvenient for adjustment, and the horizontal adjustment components cannot be disassembled and placed, which is easily damaged.
A construction engineering measurement equipment based on photoelectric technology is designed, using a rotating support structure, a support locking structure, and an adjusting support structure, including a bearing support, a sliding support frame, a rotating support seat, an adjusting load seat and a storage seat. These structures are used to achieve stable support and height adjustment.
It improves the support stability of the equipment on soft soil, reduces the overall center of gravity, enhances the stability and applicability of the equipment, and protects the horizontal adjustment components through a detachable design, extending the service life of the equipment.
Smart Images

Figure CN115218073B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of engineering surveying equipment, and particularly relates to a building engineering surveying equipment based on optoelectronic technology. Background Art
[0002] Optoelectronic technology includes the theoretical basis of optical radiation detection, the structural principles and application technologies of common optoelectronic devices such as optical radiation sources, photodetectors, thermal detectors, and image sensors. In the construction industry, commonly used optoelectronic application equipment includes surveying equipment such as rangefinders, levels, and theodolites. When in use, these devices all require a bracket to place the device for measurement.
[0003] However, currently, the support stability of surveying equipment on soft soil is poor. At the same time, the center of gravity is high and not easy to adjust during support, and the horizontal adjustment components of the surveying equipment cannot be disassembled and placed, which easily causes the horizontal adjustment components to be damaged by external forces such as extrusion, affecting the applicability of device transportation. Summary of the Invention
[0004] In view of this, the present invention provides a building engineering surveying equipment based on optoelectronic technology, which has a rotating support structure, a support locking structure, and an adjustable support structure, thereby solving the problems that the current surveying equipment has poor support stability on soft soil, the center of gravity is high and not easy to adjust during support, and the horizontal adjustment components of the surveying equipment cannot be disassembled and placed.
[0005] The present invention provides a building engineering surveying equipment based on optoelectronic technology, specifically including: a bearing support, a sliding support frame, a rotating carrier, an adjustable carrier, and an object placement seat;
[0006] An assembly cylinder is fixedly installed inside the bearing support. At the same time, a locking shaft seat is arranged at the top of the assembly cylinder, and a rotating support structure is arranged on the side of the bearing support. The sliding support frame is arranged at the bottom of the bearing support. A bearing chute is opened inside the sliding support frame. At the same time, a sliding support block is slidably arranged inside the bearing chute. A support locking structure is arranged at the bottom end of the sliding support block. The support locking structure includes a load-bearing pillar, and the load-bearing pillar is fixedly installed at the bottom end of the sliding support block. The rotating carrier is rotatably arranged on the top of the bearing support. At the same time, the rotating carrier is sleeved outside the locking shaft seat. An installation block is fixedly installed on the top of the rotating carrier. An assembly carrier shaft is arranged on the side of the installation block. A support sleeve column is rotatably sleeved outside the assembly carrier shaft. An assembly groove is opened at the top end of the support sleeve column. And an adjustment support structure is arranged at the top end of the support sleeve column. The adjustment support structure includes a sliding pillar, the sliding pillar is arranged inside the assembly groove. A rotating connecting column is rotatably installed at the top end of the sliding pillar. A rotating carrier block is rotatably installed at the top end of the rotating connecting column. A bearing shaft block is rotatably installed on the side of the rotating carrier block. A positioning clamping frame and a docking clamping frame are rotatably installed on the side of the bearing shaft block. The adjustment carrier is arranged above the rotating carrier. At the same time, an installation shaft seat is rotatably installed inside the adjustment carrier. The storage seat is fixedly installed on the top of the installation shaft seat. At the same time, a storage frame is fixedly installed on the top of the storage seat. A measurement host is installed inside the storage frame. And a bearing side plate is installed on the side of the storage seat and the storage frame. A display panel is installed on the top of the bearing side plate. At the same time, the display panel is electrically connected to the measurement host through a circuit.
[0007] Optionally, the bearing support further includes: a locking screw hole and a locking bolt;
[0008] The locking screw hole is penetrated and opened inside the assembly cylinder; the locking bolt is arranged inside the locking screw hole. At the same time, the locking bolt is arranged inside the locking shaft seat through a threaded structure.
[0009] Optionally, the rotating support structure includes: an installation groove, a self-locking rotating block and an installation shaft block;
[0010] The installation groove is opened on the side of the bearing support; the self-locking rotating block is rotatably installed inside the installation groove through a rotating shaft; the installation shaft block is rotatably installed at the bottom end of the self-locking rotating block.
[0011] Optionally, the sliding support frame is further provided with: a locking slot, a locking stud and a locking sleeve block;
[0012] The locking slot is penetrated and opened on the side of the sliding support frame; the locking stud is fixedly installed on the side of the sliding support block. At the same time, the locking stud is arranged inside the locking slot; the locking sleeve block is sleeved outside the locking stud through a threaded structure.
[0013] Optionally, the support locking structure further includes: a self-locking shaft block, a positioning support block and a positioning support nail;
[0014] The self-locking shaft block is fixedly installed at the bottom end of the load-bearing pillar; the positioning support block is rotatably installed at the bottom end of the self-locking shaft block; and the positioning support nail is fixedly installed at the bottom of one end of the positioning support block.
[0015] Optionally, the rotating carrier is further provided with: a stabilizing column, a bearing block and a locking bolt;
[0016] The stabilizing column is fixedly installed on the side of the supporting sleeve column; the bearing block is fixedly installed on the side of the top end of the supporting sleeve column; and the side of the locking bolt is installed on the inner side of the bearing block.
[0017] Optionally, the adjustment support structure further comprises: a locking hole, a docking block, a docking groove and a docking bolt;
[0018] The locking hole is arranged on the side of the sliding support; the docking blocks are fixedly installed on the two ends of the side of the positioning clamp frame; the docking grooves are arranged on the two ends of the side of the docking clamp frame; and the docking bolts are rotatably installed on the two ends of the side of the docking clamp frame.
[0019] Optionally, the adjusting carrier is further provided with: a bearing bottom block, a threaded shaft, a threaded block, an assembly side block and an adjusting support shaft;
[0020] The bearing bottom block is fixedly installed at the bottom of the adjustment base; the threaded shaft is rotatably installed at the inner side of the bearing bottom block; the threaded block is sleeved on the outer side of the threaded shaft through a threaded structure, and the threaded block is arranged between the positioning clamp frame and the docking clamp frame; the assembly side block is fixedly installed at the bottom of the adjustment base; the adjustment support shaft is rotatably installed at the bottom of the assembly side block, and the adjustment support shaft is transmission connected with the threaded shaft through a bevel gear.
[0021] Beneficial Effects
[0022] According to various embodiments of the present invention, a construction engineering measurement device based on photoelectric technology is more applicable when used in support compared with traditional measurement equipment.
[0023] In addition, by cooperating with the load-bearing support, the self-locking rotating block and the installing shaft block, the sliding support frame and the load-bearing pillar can be rotatably supported, and the measuring host can be stably supported at the same time, and the locking stud cooperates with the locking sleeve block to lock and position the sliding support block, thereby adjusting the support height of the sliding support frame and the load-bearing pillar, thereby reducing the support height of the sliding support frame and the load-bearing pillar, thereby lowering the overall center of gravity of the device and improving the stability of the device. At the same time, the self-locking shaft block cooperates with the positioning support block to synchronously adjust the support angle of the load-bearing pillar, so that the positioning support block provides horizontal support while vertically supporting the positioning support nail, so that the positioning support nail is locked to the ground, thereby providing auxiliary locking support for the entire device, and the self-locking shaft block can drive the positioning support block to rotate inward, so that the positioning support block cooperates with the load-bearing pillar to stably support the entire device and the flat ground.
[0024] In addition, by locking the locking bolt in cooperation with the locking hole, the sliding strut can be assembled. When the measuring main unit needs to be used, the docking block cooperates with the docking groove to dock the positioning clamp frame and the docking clamp frame. At the same time, the docking bolt can lock the positioning clamp frame and the docking clamp frame, so that the positioning clamp frame and the docking clamp frame are clamped and supported on the outside of the threaded block, thereby quickly assembling and supporting the adjusting carrier seat. Moreover, rotating the adjusting support shaft can drive the threaded shaft to rotate, thereby driving the threaded block to adjust its position. Thus, the threaded block cooperates with the support sleeve column, the sliding strut, the rotating connecting column, the rotating carrier block, and the bearing shaft block to stably horizontally adjust the adjusting carrier seat, and further horizontally adjust the measuring main unit. Brief Description of the Drawings
[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments will be briefly introduced below.
[0026] The drawings in the following description only relate to some embodiments of the present invention and do not limit the present invention.
[0027] In the drawings:
[0028] Figure 1 The front view structural schematic diagram of the device assembly according to the embodiment of the present invention is shown;
[0029] Figure 2 The bottom view structural schematic diagram of the device assembly according to the embodiment of the present invention is shown;
[0030] Figure 3 The front view structural schematic diagram of the device expansion according to the embodiment of the present invention is shown;
[0031] Figure 4 The bottom view structural schematic diagram of the device expansion according to the embodiment of the present invention is shown;
[0032] Figure 5 The structural schematic diagram of the bearing support assembly according to the embodiment of the present invention is shown;
[0033] Figure 6 The structural schematic diagram of the sliding support frame assembly according to the embodiment of the present invention is shown;
[0034] Figure 7 The structural schematic diagram of the rotating carrier seat assembly according to the embodiment of the present invention is shown;
[0035] Figure 8 The front view structural schematic diagram of the support sleeve column assembly according to the embodiment of the present invention is shown;
[0036] Figure 9 The bottom view structural schematic diagram of the support sleeve column assembly according to the embodiment of the present invention is shown;
[0037] Figure 10Shows a schematic diagram of the adjustment carrier assembly structure according to an embodiment of the present invention;
[0038] Figure 11 Shows a schematic diagram of the assembly structure of Embodiment 2 according to an embodiment of the present invention;
[0039] Figure 12 Shows a schematic diagram of the assembly structure of Embodiment 3 according to an embodiment of the present invention.
[0040] List of reference numerals
[0041] 1. Bearing support;
[0042] 101. Assembly cylinder; 102. Locking screw hole; 103. Locking shaft seat; 104. Locking bolt; 105. Installation groove; 1051. Self-locking rotating block; 1052. Installation shaft block;
[0043] 2. Sliding support frame;
[0044] 201. Bearing chute; 202. Locking slot; 203. Sliding support block; 204. Locking stud; 205. Locking sleeve block; 206. Load-bearing support pillar; 2061. Self-locking shaft block; 2062. Positioning support block; 2063. Positioning support pin;
[0045] 3. Rotating carrier;
[0046] 301. Installation block; 302. Assembly carrier shaft; 303. Support sleeve column; 304. Stabilizing column; 305. Assembly groove; 306. Bearing block; 307. Locking support bolt; 308. Sliding support pillar; 3081. Locking hole; 3082. Rotating connecting column; 3083. Rotating carrier block; 3084. Bearing shaft block; 3085. Positioning clamping frame; 3086. Docking block; 3087. Docking clamping frame; 3088. Docking groove; 3089. Docking bolt;
[0047] 4. Adjustment carrier;
[0048] 401. Installation shaft seat; 402. Bearing bottom block; 403. Threaded shaft; 404. Threaded block; 405. Assembly side block; 406. Adjustment support shaft;
[0049] 5. Placing seat;
[0050] 501. Placing frame; 502. Shaft side block; 5021. Locking bolt block; 5022. Rotating side block; 5023. Load-bearing support block; 5024. Protective cover frame; 5025. Limiting hole; 503. Measuring host; 504. Bearing side plate; 505. Display panel;
[0051] 6. Load-bearing base;
[0052] 601, Load-bearing rotating block; 602, Docking shaft block; 603, Bearing shaft seat; 604, Bearing groove; 605, Mounting screw hole; 606, Locking seat; 607, Preset hole; 608, Shielding cylinder; 609, Assembly bolt. Detailed implementation mode
[0053] In order to make the purpose, scheme and advantages of the technical scheme of the present invention clearer, the technical scheme of the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings of the specific embodiments of the present invention. Unless otherwise specified, the terms used herein have the common meanings in the art. The same reference numerals in the drawings represent the same components.
[0054] Example 1: Please refer to Figures 1 to 12 :
[0055] The present invention provides a building engineering surveying device based on optoelectronic technology, including: a bearing support 1, a sliding support frame 2, a rotating carrier 3, an adjusting carrier 4 and an object placement seat 5;
[0056] An assembly cylinder 101 is fixedly installed inside the bearing support 1. At the same time, a locking shaft seat 103 is arranged at the top of the assembly cylinder 101, and a rotating support structure is arranged on the side of the bearing support 1; a sliding support frame 2 is arranged at the bottom of the bearing support 1. A bearing sliding groove 201 is opened inside the sliding support frame 2. At the same time, a sliding support block 203 is slidably arranged inside the bearing sliding groove 201. A support locking structure is arranged at the bottom end of the sliding support block 203. The support locking structure includes a load-bearing pillar 206, and the load-bearing pillar 206 is fixedly installed at the bottom end of the sliding support block 203; a rotating carrier 3 is rotatably arranged on the top of the bearing support 1. At the same time, the rotating carrier 3 is sleeved outside the locking shaft seat 103, and an installation block 301 is fixedly installed on the top of the rotating carrier 3. An assembly carrier shaft 302 is arranged on the side of the installation block 301. A support sleeve column 303 is rotatably sleeved outside the assembly carrier shaft 302. An assembly groove 305 is opened at the top end of the support sleeve column 303, and an adjustment support structure is arranged at the top end of the support sleeve column 303. The adjustment support structure includes a sliding pillar 308, the sliding pillar 308 is arranged inside the assembly groove 305, a rotating connecting column 3082 is rotatably installed at the top end of the sliding pillar 308, a rotating carrier block 3083 is rotatably installed at the top end of the rotating connecting column 3082, a load-bearing shaft block 3084 is rotatably installed on the side of the rotating carrier block 3083, and a positioning clamping frame 3085 and a docking clamping frame 3087 are rotatably installed on the side of the load-bearing shaft block 3084; an adjustment carrier 4 is arranged above the rotating carrier 3. At the same time, an installation shaft seat 401 is rotatably installed inside the adjustment carrier 4; an object placing seat 5 is fixedly installed on the top of the installation shaft seat 401. At the same time, an object placing frame 501 is fixedly installed on the top of the object placing seat 5. A measuring host 503 is installed inside the object placing frame 501, and a bearing side plate 504 is installed on the side of the object placing seat 5 and the object placing frame 501. A display panel 505 is installed on the top of the bearing side plate 504. At the same time, the display panel 505 is electrically connected to the measuring host 503 through a circuit.
[0057] Such as Figure 7 And Figure 10As shown, the rotating carrier 3 is also provided with: a stabilizing column 304, a bearing block 306 and a locking bolt 307; the stabilizing column 304 is fixedly installed on the side of the supporting sleeve column 303; the bearing block 306 is fixedly installed on the side of the top end of the supporting sleeve column 303; the locking bolt 307 is installed on the inner side of the bearing block 306; the adjusting support structure also includes: a locking hole 3081, a docking block 3086, a docking groove 3088 and a docking bolt 3089; the locking hole 3081 is opened on the side of the sliding pillar 308; the docking block 3086 is fixedly installed on both ends of the side of the positioning clamp frame 3085 ; Docking grooves 3088 are provided at both ends of the side of the docking clamp frame 3087; docking bolts 3089 are rotatably installed at both ends of the side of the docking clamp frame 3087; the adjusting carrier 4 is also provided with: a bearing bottom block 402, a threaded shaft 403, a threaded block 404, an assembly side block 405 and an adjusting support shaft 406; the bearing bottom block 402 is fixedly installed at the bottom of the adjusting carrier 4; the threaded shaft 403 is rotatably installed on the inner side of the bearing bottom block 402; the threaded block 404 is sleeved on the outer side of the threaded shaft 403 through a threaded structure, and the threaded block 404 is provided at the positioning clamp frame 3085 and the docking clamp frame 30 87; the assembly side block 405 is fixedly installed at the bottom of the adjustment carrier 4; the adjustment support shaft 406 is rotatably installed at the bottom of the assembly side block 405, and the adjustment support shaft 406 is connected to the threaded shaft 403 through a bevel gear; by locking the support bolt 307 and the locking hole 3081, the sliding support 308 can be assembled, so that when the measuring host 503 needs to be used, the docking block 3086 cooperates with the docking groove 3088 to dock the positioning clamp frame 3085 with the docking clamp frame 3087, and the docking bolt 3089 can lock the positioning clamp frame 3085 with the docking clamp The frame 3087 is locked, so that the positioning clamp frame 3085 and the docking clamp frame 3087 are clamped and supported on the outside of the threaded block 404, so as to quickly assemble and support the adjustment carrier 4, and the rotating adjustment support shaft 406 can drive the threaded shaft 403 to rotate, thereby driving the threaded block 404 to adjust the position, so that the threaded block 404 cooperates with the supporting sleeve column 303, the sliding support column 308, the rotating connecting column 3082, the rotating carrier block 3083, and the bearing shaft block 3084 to stably adjust the adjustment carrier 4 to the level, and then adjust the measuring host 503 to the level.
[0058] like Figures 1 to 6As shown in the figure, the bearing support 1 further includes: a locking screw hole 102 and a locking bolt 104; the locking screw hole 102 is penetrated and opened on the inner side of the assembly cylinder 101; the locking bolt 104 is arranged inside the locking screw hole 102, and at the same time, the locking bolt 104 is arranged inside the locking shaft seat 103 through a threaded structure; the rotating support structure includes: a mounting groove 105, a self-locking rotating block 1051 and a mounting shaft block 1052; the mounting groove 105 is opened on the side surface of the bearing support 1; the self-locking rotating block 1051 is rotatably mounted inside the mounting groove 105 through a rotating shaft; the mounting shaft block 1052 is rotatably mounted at the bottom end of the self-locking rotating block 1051; the sliding support frame 2 is further provided with: a locking slot 202, a locking stud 204 and a locking sleeve block 205; the locking slot 202 is penetrated and opened on the side surface of the sliding support frame 2; the locking stud 204 is fixedly mounted on the side surface of the sliding block 203, and at the same time, the locking stud 204 is arranged inside the locking slot 202; the locking sleeve block 205 is sleeved outside the locking stud 204 through a threaded structure; the support locking structure further includes: a self-locking shaft block 2061, a positioning support block 2062 and a positioning support pin 2063; the self-locking shaft block 2061 is fixedly mounted at the bottom end of the load-bearing pillar 206; the positioning support block 2062 is rotatably mounted at the bottom end of the self-locking shaft block 2061; the positioning support pin 2063 is fixedly mounted at the bottom of one end of the positioning support block 2062; through the cooperation of the bearing support 1 with the self-locking rotating block 1051 and the mounting shaft block 1052, the sliding support frame 2 and the load-bearing pillar 206 can be rotationally supported, and at the same time, the measuring host 503 can be stably supported, and the locking stud 204 cooperates with the locking sleeve block 205 to lock and position the sliding block 203, so as to adjust the support height of the sliding support frame 2 and the load-bearing pillar 206, thereby reducing the support height of the sliding support frame 2 and the load-bearing pillar 206, thereby reducing the overall center of gravity of the device and improving the stability of the device. At the same time, the self-locking shaft block 2061 cooperates with the positioning support block 2062 to be synchronously adjusted according to the support angle of the load-bearing pillar 206, so that while the positioning support block 2062 provides lateral support, the positioning support pin 2063 is vertically supported, so that the positioning support pin 2063 is locked to the ground, thereby providing auxiliary locking support for the whole device, and the self-locking shaft block 2061 can drive the positioning support block 2062 to rotate and retract, so that the positioning support block 2062 cooperates with the load-bearing pillar 206 to stably support the whole device on a flat ground.
[0059] Embodiment 2: As Figure 3 shown in Figure 11 the figure, under the condition that other structures remain unchanged, a shielding and protecting structure can be added. The shielding and protecting structure includes: an axial side block 502, a locking bolt block 5021, a rotating side block 5022, a load-bearing support block 5023, a protecting shielding frame 5024 and a limiting hole 5025;
[0060] The shaft side blocks 502 are fixedly installed on both sides of the storage frame 501; the locking bolt blocks 5021 are fixedly installed on both sides of one end of the shaft side blocks 502; the rotating side blocks 5022 are rotatably installed on the side surfaces of the shaft side blocks 502; the load-bearing support blocks 5023 are fixedly installed on the side surfaces of the shaft side blocks 502; the protective cover frame 5024 is fixedly installed on the side surfaces of the rotating side blocks 5022 and the load-bearing support blocks 5023; the limiting holes 5025 are opened on the side surface of one end of the protective cover frame 5024; through the cooperation of the shaft side blocks 502 and the rotating side blocks 5022, the protective cover frame 5024 can be rotationally butted, and at the same time, the locking bolt blocks 5021 cooperate with the limiting holes 5025 to lock the limiting holes 5025, so that the protective cover frame 5024 protects and shields the measuring host 503, thereby improving the stability of the measuring host 503 during disassembly and transportation. At the same time, the protective cover frame 5024 shields the display panel 505 from light, further improving the stability during the assembly operation of the device.
[0061] Embodiment 3: As Figure 1 With Figure 12 shown, under the condition that other structures remain unchanged, a rotating bearing structure can be added. The rotating bearing structure includes: a load-bearing base 6, a load-bearing rotating block 601, a docking shaft block 602, a bearing seat 603, a bearing groove 604, a mounting screw hole 605, a locking seat 606, a preset hole 607, a shielding cylinder 608, and an assembly bolt 609;
[0062] The load-bearing base 6 is rotatably installed with the load-bearing rotating block 601 at the bottom; the docking shaft block 602 is rotatably installed on the top of the load-bearing base 6; the bearing seat 603 is sleeved outside the docking shaft block 602; the bearing groove 604 is opened on the side surface of the top of the bearing seat 603; the mounting screw hole 605 is opened in the middle of the top of the bearing seat 603; the locking seat 606 is installed above the bearing seat 603; the preset hole 607 is penetrated and opened on the side surface of the locking seat 606; the shielding cylinder 608 is fixedly installed on the top of the locking seat 606; the assembly bolt 609 is rotatably installed inside the locking seat 606, and at the same time, the bottom end of the assembly bolt 609 is arranged inside the mounting screw hole 605 through a threaded structure; through the load-bearing rotating block 601, the load-bearing base 6 can be stably supported. At the same time, the load-bearing base 6 cooperates with the bearing seat 603 to rotatably assemble the bearing groove 604, and the assembly bolt 609 cooperates with the assembly bolt 609 to install the locking seat 606, so that the bearing groove 604 cooperates with the preset hole 607 and the shielding cylinder 608 to lock and bear the positioning support block 2062 and the positioning pin 2063, so that the load-bearing base 6 cooperates with the bearing seat 603 to rotatably bear the whole device, further enabling the device to adjust and lower the center of gravity, and making the device stably placed on a flat ground.
[0063] Specific usage method and function of this embodiment: In the present invention, through the cooperation of the bearing support 1, the self-locking rotating block 1051, and the mounting shaft block 1052, the sliding support frame 2 and the load-bearing pillar 206 are rotationally supported, and at the same time, the measurement host 503 is stably supported. Moreover, the locking stud 204 cooperates with the locking sleeve block 205 to lock and position the sliding support block 203, thereby adjusting the support height of the sliding support frame 2 and the load-bearing pillar 206, thereby reducing the support height of the sliding support frame 2 and the load-bearing pillar 206. At the same time, the self-locking shaft block 2061 cooperates with the positioning support block 2062 and is synchronously adjusted with the support angle of the load-bearing pillar 206, so that while the positioning support block 2062 provides lateral support, it also provides vertical support for the positioning support pin 2063, so that the positioning support pin 2063 is locked to the ground, thereby providing auxiliary locking support for the entire device. Moreover, the self-locking shaft block 2061 drives the positioning support block 2062 to rotate and retract, so that the positioning support block 2062 cooperates with the load-bearing pillar 206 to stably support the entire device on a flat ground. The locking bolt 307 cooperates with the locking hole 3081 to assemble the sliding pillar 308. When the measurement host 503 needs to be used, the docking block 3086 cooperates with the docking groove 3088 to dock the positioning clamping frame 3085 and the docking clamping frame 3087. At the same time, the docking bolt 3089 can lock the positioning clamping frame 3085 and the docking clamping frame 3087, so that the positioning clamping frame 3085 and the docking clamping frame 3087 clamp and support the outside of the threaded block 404, thereby quickly assembling and supporting the adjustment carrier 4. Moreover, rotating the adjustment support shaft 406 can drive the threaded shaft 403 to rotate, thereby driving the threaded block 404 to adjust its position, so that the threaded block 404 cooperates with the support sleeve column 303, the sliding pillar 308, the rotating connecting column 3082, the rotating carrier block 3083, and the bearing shaft block 3084 to stably horizontally adjust the adjustment carrier 4, and further horizontally adjust the measurement host 503.
[0064] Finally, it should be noted that when the present invention describes the positions of various components and their cooperation relationships, etc., usually one / a pair of components are taken as examples. However, those skilled in the art should understand that such positions, cooperation relationships, etc. also apply to other components / other pairs of components.
[0065] The above is only an exemplary implementation manner of the present invention and is not used to limit the protection scope of the present invention. The protection scope of the present invention is determined by the appended claims.
Claims
1. A building engineering surveying device based on optoelectronic technology, characterized in that, Including: a bearing support (1), a sliding support frame (2), a rotating carrier (3), an adjusting carrier (4) and an object placing seat (5); An assembly cylinder (101) is fixedly installed inside the bearing support (1). At the same time, a locking shaft seat (103) is arranged at the top of the assembly cylinder (101), and a rotating support structure is arranged on the side of the bearing support (1). The sliding support frame (2) is arranged at the bottom of the bearing support (1). A bearing sliding groove (201) is formed inside the sliding support frame (2). At the same time, a sliding support block (203) is slidably arranged inside the bearing sliding groove (201). A support locking structure is arranged at the bottom end of the sliding support block (203). The support locking structure includes a load-bearing pillar (206), and the load-bearing pillar (206) is fixedly installed at the bottom end of the sliding support block (203). The rotating carrier (3) is rotatably arranged on the top of the bearing support (1). At the same time, the rotating carrier (3) is sleeved outside the locking shaft seat (103). An installation block (301) is fixedly installed on the top of the rotating carrier (3). An assembly carrier shaft (302) is arranged on the side of the installation block (301). A support sleeve column (303) is rotatably sleeved outside the assembly carrier shaft (302). An assembly groove (305) is formed at the top end of the support sleeve column (303). And an adjusting support structure is arranged at the top end of the support sleeve column (303). The adjusting support structure includes a sliding pillar (308). The sliding pillar (308) is arranged inside the assembly groove (305). A rotating connecting column (3082) is rotatably installed at the top end of the sliding pillar (308). A rotating carrier block (3083) is rotatably installed at the top end of the rotating connecting column (3082). A load-bearing shaft block (3084) is rotatably installed on the side of the rotating carrier block (3083). A positioning clamping frame (3085) and a docking clamping frame (3087) are rotatably installed on the side of the load-bearing shaft block (3084). The adjusting carrier (4) is arranged above the rotating carrier (3). At the same time, an installation shaft seat (401) is rotatably installed inside the adjusting carrier (4). The object placing seat (5) is fixedly installed on the top of the installation shaft seat (401). At the same time, an object placing frame (501) is fixedly installed on the top of the object placing seat (5). A measuring host (503) is installed inside the object placing frame (501). And a bearing side plate (504) is installed on the side of the object placing seat (5) and the object placing frame (501). A display panel (505) is installed on the top of the bearing side plate (504). At the same time, the display panel (505) is electrically connected to the measuring host (503) through a circuit; The rotating carrier (3) is further provided with: a stabilizing column (304), a load-bearing block (306) and a locking bolt (307); The stabilizing column (304) is fixedly installed on the side of the support sleeve column (303); the load-bearing block (306) is fixedly installed on the side of the top end of the support sleeve column (303); the locking bolt (307) is installed on the inside of the load-bearing block (306) on the side; The adjusting support structure further includes: a locking hole (3081), a docking block (3086), a docking groove (3088) and a docking bolt (3089); The locking hole (3081) is provided on the side of the sliding support (308); the docking block (3086) is fixedly installed on both ends of the side of the positioning clamp frame (3085); the docking groove (3088) is provided on both ends of the side of the docking clamp frame (3087); and the docking bolt (3089) is rotatably installed on both ends of the side of the docking clamp frame (3087); The adjusting carrier (4) is also provided with: a bearing bottom block (402), a threaded shaft (403), a threaded block (404), an assembly side block (405) and an adjusting support shaft (406); The bearing bottom block (402) is fixedly mounted on the bottom of the adjusting carrier (4); the threaded shaft (403) is rotatably mounted on the inner side of the bearing bottom block (402); the threaded block (404) is sleeved on the outer side of the threaded shaft (403) through a threaded structure, and the threaded block (404) is arranged between the positioning clamp frame (3085) and the docking clamp frame (3087); the assembly side block (405) is fixedly mounted on the bottom of the adjusting carrier (4); the adjustment support shaft (406) is rotatably mounted on the bottom of the assembly side block (405), and the adjustment support shaft (406) is transmission-connected to the threaded shaft (403) through a bevel gear; The sliding support (308) can be assembled by engaging the locking bolt (307) with the locking hole (3081), so that when the measuring host (503) needs to be used, the docking block (3086) engages with the docking groove (3088) to dock the positioning clamp frame (3085) and the docking clamp frame (3087), and the docking bolt (3089) can lock the positioning clamp frame (3085) and the docking clamp frame (3087), so that the positioning clamp frame (3085) and the docking clamp frame (3087) are clamped and supported on the threaded The outer side of the block (404) is supported by the adjusting support seat (4), thereby quickly assembling the adjusting support seat (4), and the rotating adjusting support shaft (406) can drive the threaded shaft (403) to rotate, thereby driving the threaded block (404) to adjust the position, so that the threaded block (404) cooperates with the supporting sleeve column (303), the sliding support column (308), the rotating connecting column (3082), the rotating carrier block (3083), and the bearing shaft block (3084) to stably adjust the adjusting carrier seat (4) horizontally, thereby adjusting the measuring host (503) horizontally.
2. The a building engineering surveying device based on optoelectronic technology according to claim 1, characterized in that: The bearing support (1) further comprises: a locking screw hole (102) and a locking bolt (104); The locking screw hole (102) is opened through the inner side of the assembly tube (101); the locking bolt (104) is arranged inside the locking screw hole (102), and the locking bolt (104) is arranged inside the locking shaft seat (103) through a threaded structure.
3. A building engineering surveying device based on optoelectronic technology according to claim 1, characterized in that: The rotation support structure comprises: a mounting groove (105), a self-locking rotating block (1051) and a mounting shaft block (1052); The mounting groove (105) is provided on the side of the bearing support (1); the self-locking rotating block (1051) is rotatably mounted on the inner side of the mounting groove (105) via a rotating shaft; and the mounting shaft block (1052) is rotatably mounted on the bottom end of the self-locking rotating block (1051).
4. A building engineering surveying device based on optoelectronic technology according to claim 1, characterized in that: The sliding support frame (2) is further provided with: a locking slot (202), a locking stud (204) and a locking sleeve block (205); The locking slot (202) is penetrated and opened on the side surface of the sliding support frame (2); the locking stud (204) is fixedly installed on the side surface of the sliding block (203), and at the same time, the locking stud (204) is arranged inside the locking slot (202); the locking sleeve block (205) is sleeved on the outer side of the locking stud (204) through a threaded structure.
5. The a building engineering surveying device based on optoelectronic technology according to claim 1, characterized in that: The support locking structure further includes: a self-locking shaft block (2061), a positioning support block (2062) and a positioning support pin (2063); The self-locking shaft block (2061) is fixedly installed at the bottom end of the load-bearing support column (206); the positioning support block (2062) is rotatably installed at the bottom end of the self-locking shaft block (2061); the positioning support pin (2063) is fixedly installed at the bottom of one end of the positioning support block (2062).
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