Rotary drilling rig connector processing tool and rotary drilling rig connector processing method
By combining the positioning holes and fixed shafts in the machining tools for the rotary drilling rig connector, the problems of relative position and coaxiality in the machining of the rotary drilling rig connector are solved, achieving low-cost and high-efficiency production.
Patent Information
- Application Number
- CN202211455495.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-21
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2042-11-21
AI Technical Summary
In the existing technology, the relative position and coaxiality of the bushing holes on the first and second housings of the rotary drilling rig connector cannot be guaranteed, resulting in difficult processing, high labor intensity, high cost and low production efficiency.
The rotary drilling rig connector machining tool includes a first tooling and a second tooling. The relative position and coaxiality of the rotary drilling rig connector are positioned by a combination of positioning holes and fixed shafts/positioning holes.
This effectively ensures the dimensions and coaxiality of the rotary drilling rig's connecting body, reduces labor intensity and production costs, and improves production efficiency.
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Figure CN115816073B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the rotary drilling rig technical field, in particular to a rotary drilling rig connecting body processing tool and a rotary drilling rig connecting body processing method. BACKGROUND
[0002] The rotary drilling rig is a construction machinery suitable for hole forming operation in building foundation engineering, mainly suitable for sand soil, clay, silty soil and other soil construction, widely used in bored pile, continuous wall, foundation reinforcement and other foundation construction, generally adopts hydraulic caterpillar type telescopic chassis, self-lifting foldable drill mast, telescopic drill rod, vertical automatic detection adjustment, hole depth digital display and the like, the whole machine is generally controlled by hydraulic pilot control and load sensing, with the characteristics of easy and comfortable operation.
[0003] The connecting body is a component connecting the upper vehicle and the mast of the rotary drilling rig, and is an important component of the rotary drilling rig, please refer to Figure 1 The connecting body includes a first box body 91, a second box body 93 and a connecting box body 95 connected between the first box body 91 and the second box body 93. When processing the connecting body, the first box body 91 and the second box body 93 are usually riveted respectively, and then the connecting box body 95 is connected between the first box body 91 and the second box body 93. However, at present, the relative position size of the three first shaft sleeve holes 912 on the first box body 91 and the three second shaft sleeve holes 932 of the second box body 93 cannot be guaranteed, and the coaxiality of the first shaft sleeve hole 912 and the second shaft sleeve hole 932 cannot be guaranteed. Due to the above-mentioned size and coaxiality cannot be guaranteed, often leads to the problem that the shaft sleeve cannot be processed, the size after processing cannot meet the requirements, etc., often needs to be remedied by using repair welding, etc., which will lead to the problems of high labor intensity of personnel, high rework cost, low production efficiency, etc. SUMMARY
[0004] Therefore, the purpose of the present application is to provide a rotary drilling rig connecting body processing tool and a rotary drilling rig connecting body processing method, which can guarantee the size and coaxiality, and have low labor intensity of personnel, low cost and high production efficiency.
[0005] The application provides a rotary drilling rig connecting body processing tool for processing a connecting body, the connecting body comprising a first box body, a second box body and a connecting box body, two ends of the connecting box body being connected to the first box body and the second box body respectively, the first box body comprising a first shaft sleeve, the second box body comprising a second shaft sleeve, the rotary drilling rig connecting body processing tool comprising a first tool and a second tool, the first tool comprising a first workbench, the first workbench being provided with positioning holes corresponding to the first shaft sleeve and the second shaft sleeve, the first workbench being further provided with a stop block; the second tool comprising a second workbench, a fixed part fixed to the second workbench and a movable part movably arranged on the second workbench, so that the movable part is close to or away from the fixed part, the fixed part being provided with a fixed shaft corresponding to the first shaft sleeve, and the movable part being provided with a positioning shaft corresponding to the second shaft sleeve, the fixed shaft and the positioning shaft being coaxially arranged.
[0006] In an embodiment, the bottom of the fixed part is provided with a first reference block, and the bottom of the movable part is provided with a second reference block, the first reference block and the second reference block being located between the fixed part and the movable part.
[0007] In an embodiment, the movable part further comprises a bottom plate arranged at the bottom of the movable part, the bottom of the bottom plate being provided with a sliding block, and the second workbench being provided with a guide rail extending along the moving direction of the movable part, the sliding block being movably matched with the guide rail.
[0008] In an embodiment, the first box body comprises a first shaft sleeve, a second shaft sleeve and a third shaft sleeve, and the second box body comprises a first shaft sleeve, a second shaft sleeve and a third shaft sleeve.
[0009] The positioning holes of the first tool comprise a first positioning hole, a second positioning hole, a third positioning hole and a fourth positioning hole, the first positioning hole, the second positioning hole and the third positioning hole being respectively arranged corresponding to the positions of the first shaft sleeve, the second shaft sleeve and the third shaft sleeve of the first box body, and the first positioning hole, the second positioning hole and the fourth positioning hole being respectively arranged corresponding to the positions of the second shaft sleeve, the first shaft sleeve and the third shaft sleeve of the second box body, the fixed shaft of the fixed part of the second tool comprising a first fixed shaft, a second fixed shaft and a third fixed shaft, the first fixed shaft, the second fixed shaft and the third fixed shaft being respectively arranged corresponding to the positions of the first shaft sleeve, the second shaft sleeve and the third shaft sleeve of the first box body, and the positioning shaft of the movable part of the second tool comprising a first positioning shaft, a second positioning shaft and a third positioning shaft, the first positioning shaft, the second positioning shaft and the third positioning shaft being respectively arranged corresponding to the positions of the first shaft sleeve, the second shaft sleeve and the third shaft sleeve of the second box body.
[0010] In an embodiment, the distance between the axis of the first No. 1 bushing and the second No. 1 bushing is equal to the distance between the axis of the first No. 1 bushing and the third No. 1 bushing, the distance between the axis of the first No. 2 bushing and the second No. 2 bushing is equal to the distance between the axis of the first No. 2 bushing and the third No. 2 bushing, and the distance between the axis of the second No. 1 bushing and the third No. 1 bushing is equal to the distance between the axis of the second No. 2 bushing and the third No. 2 bushing.
[0011] The center line of the first positioning hole and the second positioning hole corresponds to the distance between the axis of the first No. 1 bushing and the second No. 1 bushing, and corresponds to the distance between the axis of the first No. 2 bushing and the second No. 2 bushing, the center line of the first positioning hole and the third positioning hole corresponds to the distance between the axis of the first No. 1 bushing and the third No. 1 bushing, the center line of the second positioning hole and the third positioning hole corresponds to the distance between the axis of the second No. 1 bushing and the third No. 1 bushing, the center line of the second positioning hole and the fourth positioning hole corresponds to the distance between the axis of the first No. 2 bushing and the third No. 2 bushing, and the first positioning hole and the fourth positioning hole.
[0012] The center line of the axis of the first fixed shaft and the second fixed shaft corresponds to the distance between the axis of the first No. 1 bushing and the second No. 1 bushing, the center line of the axis of the first fixed shaft and the third fixed shaft corresponds to the distance between the axis of the first No. 1 bushing and the third No. 1 bushing, the center line of the axis of the second fixed shaft and the third fixed shaft corresponds to the distance between the axis of the second No. 1 bushing and the third No. 1 bushing, the center line of the axis of the first positioning shaft and the second positioning shaft corresponds to the distance between the axis of the first No. 2 bushing and the second No. 2 bushing, the center line of the axis of the first positioning shaft and the third positioning shaft corresponds to the distance between the axis of the first No. 2 bushing and the third No. 2 bushing, and the center line of the axis of the second positioning shaft and the third positioning shaft corresponds to the distance between the axis of the second No. 2 bushing and the third No. 2 bushing.
[0013] The present application discloses a rotary drilling rig connector processing method, which adopts the above-mentioned rotary drilling rig connector processing tool to process the connector, the first box body includes a first reference edge and a first reference surface, the first reference edge is located on one side of the first box body, and the first reference surface is a side surface of the first box body away from the second box body, the second box body includes a second reference edge and a second reference surface, the second reference edge is located on one side of the second box body, and the second reference surface is a side surface of the second box body away from the first box body, the rotary drilling rig connector processing method includes:
[0014] The first box is placed on the first workbench, the first reference surface is attached to the upper surface of the first workbench, the first reference edge of the first box is arranged against the stopper, the first shaft sleeve is placed against the positioning hole, and each part of the first box is connected to form the first box.
[0015] The second box is placed on the first workbench, the second reference surface is attached to the upper surface of the first workbench, the second reference edge of the second box is arranged against the stopper, the second shaft sleeve is placed against the positioning hole, and each part of the second box is connected to form the second box.
[0016] The first shaft sleeve of the first box is arranged against the fixed shaft, and the second shaft sleeve of the second box is arranged against the positioning shaft.
[0017] The moving part is moved, the connecting box is arranged between the first box and the second box, and the two ends of the third box are connected with the first box and the second box respectively to form the connecting body.
[0018] In an embodiment, the first box comprises a first side plate, a second side plate and a first connecting plate, the first reference surface is located on one side of the first side plate, and the two ends of the first shaft sleeve are respectively provided with a first flange; the second box comprises a third side plate, a fourth side plate and a second connecting plate, the second reference surface is located on one side of the third side plate, and the two ends of the second shaft sleeve are respectively provided with a second flange.
[0019] The first box is formed by placing the first side plate of the first box on the first workbench, extending the first flange at one end of the first shaft sleeve into the positioning hole, connecting the first connecting plate to the edge of the first side plate, sleeving the second side plate on the first shaft sleeve, and connecting the second side plate to the first connecting plate.
[0020] The second box is formed by placing the third side plate of the second box on the first workbench, extending the second flange at one end of the second shaft sleeve into the positioning hole, connecting the second connecting plate to the edge of the third side plate, sleeving the fourth side plate on the second shaft sleeve, and connecting the fourth side plate to the second connecting plate.
[0021] In an embodiment, the bottom of the fixed part is provided with a first reference block, the bottom of the moving part is provided with a second reference block, and the first reference block and the second reference block are located between the fixed part and the moving part.
[0022] When the first shaft sleeve of the first box body is sleeved on the fixed shaft and the second shaft sleeve of the second box body is sleeved on the positioning shaft, the first reference edge of the first box body is located on the first reference block, the first reference surface of the first box body is located on the surface of the fixed part facing the moving part, the second reference edge of the second box body is located on the second reference block, and the second reference surface of the second box body is located on the surface of the moving part facing the fixed part.
[0023] In an embodiment, the first box body comprises a first shaft sleeve, a second shaft sleeve and a third shaft sleeve, and the second box body comprises a first shaft sleeve, a second shaft sleeve and a third shaft sleeve.
[0024] The positioning hole of the first tool comprises a first positioning hole, a second positioning hole, a third positioning hole and a fourth positioning hole, the fixed shaft of the fixed part of the second tool comprises a first fixed shaft, a second fixed shaft and a third fixed shaft, and the positioning shaft of the moving part of the second tool comprises a first positioning shaft, a second positioning shaft and a third positioning shaft.
[0025] When the first box body and the second box body are formed, the first shaft sleeve, the second shaft sleeve and the third shaft sleeve are aligned with the first positioning hole, the second positioning hole and the third positioning hole respectively, and the first shaft sleeve, the second shaft sleeve and the third shaft sleeve are aligned with the first positioning hole, the second positioning hole and the fourth positioning hole respectively.
[0026] When the connecting body is formed, the first fixed shaft, the second fixed shaft and the third fixed shaft respectively extend into the first shaft sleeve, the second shaft sleeve and the third shaft sleeve of the first box body, and the first positioning shaft, the second positioning shaft and the third positioning shaft respectively extend into the first shaft sleeve, the second shaft sleeve and the third shaft sleeve of the second box body.
[0027] In an embodiment, the distance between the axis centers of the first shaft sleeve and the second shaft sleeve is equal to the distance between the axis centers of the first shaft sleeve and the third shaft sleeve, and the distance between the axis centers of the second shaft sleeve and the third shaft sleeve is equal to the distance between the axis centers of the first shaft sleeve and the third shaft sleeve.
[0028] The center line of the first positioning hole and the second positioning hole corresponds to the distance between the shaft center of the first shaft sleeve and the second shaft sleeve, the center line of the first positioning hole and the third positioning hole corresponds to the distance between the shaft center of the first shaft sleeve and the third shaft sleeve, the center line of the second positioning hole and the third positioning hole corresponds to the distance between the shaft center of the second shaft sleeve and the third shaft sleeve, the center line of the second positioning hole and the fourth positioning hole corresponds to the distance between the shaft center of the second shaft sleeve and the third shaft sleeve, and the center line of the first positioning hole and the fourth positioning hole.
[0029] The center line of the shafts of the first fixed shaft and the second fixed shaft corresponds to the distance between the shaft center of the first shaft sleeve and the second shaft sleeve, the center line of the shafts of the first fixed shaft and the third fixed shaft corresponds to the distance between the shaft center of the first shaft sleeve and the third shaft sleeve, the center line of the shafts of the second fixed shaft and the third fixed shaft corresponds to the distance between the shaft center of the second shaft sleeve and the third shaft sleeve, the center line of the shafts of the first positioning shaft and the second positioning shaft corresponds to the distance between the shaft center of the second shaft sleeve and the second shaft sleeve, the center line of the shafts of the first positioning shaft and the third positioning shaft corresponds to the distance between the shaft center of the second shaft sleeve and the third shaft sleeve, and the center line of the shafts of the second positioning shaft and the third positioning shaft corresponds to the distance between the shaft center of the second shaft sleeve and the third shaft sleeve.
[0030] In the rotary drilling rig connecting body processing tool and the rotary drilling rig connecting body processing method, the relative positions of the shaft sleeves of the first box body and the second box body are ensured by the first tool, the coaxialities of the shaft sleeves are ensured by the second tool, and the labor intensity of personnel is low, the cost is low, and the production efficiency is high. BRIEF DESCRIPTION OF DRAWINGS
[0031] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can also be obtained without creative labor on the basis of these drawings.
[0032] Figure 1 It is a perspective assembly view of a rotary drilling rig connecting body.
[0033] Figure 2 It is a partial structure schematic view of the connecting body needed to be processed by the rotary drilling rig connecting body processing tool of an embodiment of the present application.
[0034] Figure 3 The first tooling structure diagram of the rotary drilling rig connecting body processing tool according to an embodiment of the present application.
[0035] Figure 4 The second tooling structure diagram of the rotary drilling rig connecting body processing tool according to an embodiment of the present application.
[0036] Figure 5 The first tooling structure diagram of the rotary drilling rig connecting body processing tool according to an embodiment of the present application. Figure 3 The first tooling structure diagram of the rotary drilling rig connecting body processing tool according to an embodiment of the present application.
[0037] Figure 6 The first tooling structure diagram of the rotary drilling rig connecting body processing tool according to an embodiment of the present application. Figure 3 The first tooling structure diagram of the rotary drilling rig connecting body processing tool according to an embodiment of the present application.
[0038] Figure 7 The first tooling structure diagram of the rotary drilling rig connecting body processing tool according to an embodiment of the present application. Figure 4 The first tooling structure diagram of the rotary drilling rig connecting body processing tool according to an embodiment of the present application. DETAILED DESCRIPTION
[0039] Specific embodiments of the present application will be described in detail with reference to the drawings, of which obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the description of the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0040] In the description of the present application, unless otherwise explicitly specified and limited, the terms "arranged", "mounted", "connected" and the like should be understood broadly, for example, can be fixedly connected, can be detachably connected, or integrally connected; can be mechanically connected, or electrically connected; can be directly connected, or indirectly connected through an intermediate medium. The specific meanings of the above terms can be understood according to the specific circumstances by those skilled in the art.
[0041] The terms "upper", "lower", "left", "right", "front", "back", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship when the product of the present application is usually placed, which is only for the convenience of description and simplification of description, and does not indicate or imply that the indicated device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present application.
[0042] The terms "first", "second", "third" and the like are only for distinguishing similar attributes of elements, and do not indicate or imply relative importance or a specific order.
[0043] The terms "comprise", "comprising", or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can include other elements not expressly listed or inherent to such process, method, article, or apparatus.
[0044] The rotary drilling rig connecting body processing tool provided by the present application is used for processing the connecting body, please refer to Figure 2 , the connecting body comprises a first box body 11, a second box body 13 and a connecting box body 15 (see Figure 7 ). The first box body 11 comprises a first side plate 112, a second side plate 114, a first connecting plate 116 and a first shaft sleeve, the first side plate 112 and the second side plate 114 are arranged in parallel opposite to each other, the first connecting plate 116 is connected between the first side plate 112 and the second side plate 114, and three first shaft sleeves penetrate through the first side plate 112 and the second side plate 114 and respectively form protruding first flanges 119 outside the first side plate 112 and the second side plate 114. The first box body 11 is also provided with a first through hole 121 penetrating through the first side plate 112 and the second side plate 114. The first box body 11 is generally triangular, and the first shaft sleeves 118a, 118b and 118c are respectively located at the three top corners of the triangle. The first box body 11 comprises a first reference edge 123 and a first reference surface 125, the first reference edge 123 is located at one side of the first box body 11, and the first reference surface 125 is a side surface of the first box body 11 away from the second box body 13. The second box body 13 comprises a third side plate 132, a fourth side plate 134, a second connecting plate 136 and a second shaft sleeve, the third side plate 132 and the fourth side plate 134 are arranged in parallel opposite to each other, the second connecting plate 136 is connected between the third side plate 132 and the fourth side plate 134, and three second shaft sleeves penetrate through the third side plate 132 and the fourth side plate 134 and respectively form protruding second flanges 139 outside the third side plate 132 and the fourth side plate 134. The second box body 13 is also provided with a second through hole 141 penetrating through the third side plate 132 and the fourth side plate 134. The second box body 13 is generally triangular, and the second shaft sleeves 138a, 138b and 138c are respectively located at the three top corners of the triangle. The second box body 13 comprises a second reference edge 143 and a second reference surface 145, the second reference edge 143 is located at one side of the second box body 13, and the second reference surface 145 is a side surface of the second box body 13 away from the first box body 11. The two ends of the connecting box body 15 are respectively fixed at the first through hole 121 and the second through hole 141.
[0045] Specifically, the distance X1 between the axis of the first shaft sleeve 118a and the second shaft sleeve 118b is equal to the distance X2 between the axis of the first shaft sleeve 118a and the third shaft sleeve 118c, the distance Y1 between the axis of the first shaft sleeve 118a and the second shaft sleeve 118b is equal to the distance Y2 between the axis of the first shaft sleeve 118a and the third shaft sleeve 118c, and the distance Z1 between the axis of the first shaft sleeve 118a and the second shaft sleeve 118b is equal to the distance Z2 between the axis of the first shaft sleeve 118a and the third shaft sleeve 118c. The first reference edge 123 is close to the line connecting the first shaft sleeve 118a and the second shaft sleeve 118b, and the second reference edge 143 is close to the line connecting the first shaft sleeve 118a and the second shaft sleeve 118b.
[0046] Please refer to Figure 3 and Figure 4 In an embodiment of the present application, the processing tool for the connecting body of the rotary drilling rig comprises a first tool 31 and a second tool 33. The first tool 31 comprises a first workbench 312, and the first workbench 312 is provided with a first positioning hole 314, a second positioning hole 315, a third positioning hole 316, and a fourth positioning hole 317. The first workbench 312 is also provided with a stop block 319, which is located on one side of the line connecting the first positioning hole 314 and the second positioning hole 315. The first positioning hole 314, the second positioning hole 315, and the third positioning hole 316 correspond to the positions of the first shaft sleeve 118a, the second shaft sleeve 118b, and the third shaft sleeve 118c, respectively. The first positioning hole 314, the second positioning hole 315, and the fourth positioning hole 317 correspond to the positions of the first shaft sleeve 118a, the second shaft sleeve 118b, and the third shaft sleeve 118c, respectively. The second tool 33 comprises a second workbench 332, a fixed part 334 fixed to the second workbench 332, and a movable part 336 movably arranged on the second workbench 332, so that the movable part 336 is close to or away from the fixed part 334. The fixed part 334 is provided with a first fixed shaft 3342, a second fixed shaft 3344, and a third fixed shaft 3346, which correspond to the positions of the three first shaft sleeves of the first box body 11, respectively. The movable part 336 is provided with a first positioning shaft 3362, a second positioning shaft 3364, and a third positioning shaft 3366, which correspond to the positions of the three second shaft sleeves of the second box body 13, respectively. The first fixed shaft 3342, the second fixed shaft 3344, and the third fixed shaft 3346 are coaxially arranged with the first positioning shaft 3362, the second positioning shaft 3364, and the third positioning shaft 3366, respectively.
[0047] In the embodiment, the first tooling 31 further comprises a plurality of feet 321 arranged on the bottom of the first workbench 312 to support the first tooling 31.
[0048] Specifically, the first workbench 312 is rectangular. It can be understood that the first workbench 312 can also be of other shapes, which are not limited herein.
[0049] Specifically, the stopper 319 is two, and the two stoppers 319 are arranged in alignment on the side close to the line connecting the first positioning hole 314 and the second positioning hole 315. It can be understood that the stopper 319 can also be one, three or other quantities. Specifically, the stopper 319 comprises a fixed plate 3192 and a stop plate 3194, the fixed plate 3192 is fixed to the first workbench 312, and the stop plate 3194 is connected to the fixed plate 3192 vertically. The stopper 319 further comprises a reinforcing plate 3196 connected to the fixed plate 3192 and the stop plate 3194 respectively.
[0050] Specifically, the center line X3 connecting the first positioning hole 314 and the second positioning hole 315 corresponds to the distance X1 between the axis of the first shaft sleeve 118a and the second shaft sleeve 118b, and corresponds to the distance X2 between the axis of the second shaft sleeve 138a and the second shaft sleeve 138b. The center line Y31 connecting the first positioning hole 314 and the third positioning hole 316 corresponds to the distance Y1 between the axis of the first shaft sleeve 118a and the third shaft sleeve 118c, and the center line Z31 connecting the second positioning hole 315 and the third positioning hole 316 corresponds to the distance Z1 between the axis of the second shaft sleeve 118b and the third shaft sleeve 118c. The center line Y32 connecting the second positioning hole 315 and the fourth positioning hole 317 corresponds to the distance Y2 between the axis of the second shaft sleeve 138a and the third shaft sleeve 138c, and the center line Z32 connecting the first positioning hole 314 and the fourth positioning hole 317 corresponds to the distance Z2 between the axis of the second shaft sleeve 138b and the third shaft sleeve 138c.
[0051] In the embodiment, the fixed part 334 is further provided with a first fixing hole 3348 to arrange the first fixing shaft 3342, the second fixing shaft 3344 and the third fixing shaft 3346. The moving part 336 is further provided with a second fixing hole 3368 to arrange the first positioning shaft 3362, the second positioning shaft 3364 and the third positioning shaft 3366. The first fixing shaft 3342, the second fixing shaft 3344, the third fixing shaft 3346, the first positioning shaft 3362, the second positioning shaft 3364 and the third positioning shaft 3366 are all located between the fixed part 334 and the moving part 336.
[0052] Specifically, the bottom of the fixed part 334 is provided with a first reference block 3349, and the bottom of the moving part 336 is provided with a second reference block 3369, and the first reference block 3349 and the second reference block 3369 are located between the fixed part 334 and the moving part 336.
[0053] Specifically, the moving part 336 further includes a bottom plate 3371 provided at the bottom of the moving part 336, and the bottom of the bottom plate 3371 is provided with a sliding block 3373. The second workbench 332 is provided with a guide rail 3322 extending along the moving direction of the moving part 336, and the sliding block 3373 is movably matched with the guide rail 3322. Specifically, the sliding block 3373 is two, and the guide rail 3322 is two parallel guide rails, and the two sliding blocks 3373 are matched with the two guide rails 3322 respectively.
[0054] Specifically, the axis center line X4 of the first fixed shaft 3342 and the second fixed shaft 3344 corresponds to the distance X1 between the axis centers of the first shaft sleeve 118a and the second shaft sleeve 118b, the axis center line Y4 of the first fixed shaft 3342 and the third fixed shaft 3346 corresponds to the distance Y1 between the axis centers of the first shaft sleeve 118a and the third shaft sleeve 118c, and the axis center line Z4 of the second fixed shaft 3344 and the third fixed shaft 3346 corresponds to the distance Z1 between the axis centers of the second shaft sleeve 118b and the third shaft sleeve 118c. The axis center line X5 of the first positioning shaft 3362 and the second positioning shaft 3364 corresponds to the distance X2 between the axis centers of the second shaft sleeve 138a and the second shaft sleeve 138b, the axis center line Y5 of the first positioning shaft 3362 and the third positioning shaft 3366 corresponds to the distance Y2 between the axis centers of the second shaft sleeve 138a and the third shaft sleeve 138c, and the axis center line Z5 of the second positioning shaft 3364 and the third positioning shaft 3366 corresponds to the distance Z2 between the axis centers of the second shaft sleeve 138b and the third shaft sleeve 138c.
[0055] The application also provides a rotary drilling rig connecting body processing method using the rotary drilling rig connecting body processing tool. Figures 5 to 7 The rotary drilling rig connecting body processing method of an embodiment includes the following steps:
[0056] S11, the first side plate 112 of the first box body 11 is placed on the first workbench 312, the first reference surface 125 is attached to the upper surface of the first workbench 312, the first reference edge 123 of the first side plate 112 is abutted against the stop block 319, the first shaft sleeve 118a, the second shaft sleeve 118b and the third shaft sleeve 118c are placed in correspondence with the first positioning hole 314, the second positioning hole 315 and the third positioning hole 316 respectively, and the first side plate 112, the second side plate 114 and the first connecting plate 116 are connected to form the first box body 11.
[0057] S13, the third side plate 132 of the second box body 13 is placed on the first workbench 312, the second reference surface 145 is attached to the upper surface of the first workbench 312, the second reference edge 143 of the third side plate 132 is abutted against the stopper 319, the first, second and third second shaft sleeves 138b, 138a and 138c are placed in correspondence with the first, second and third positioning holes 314, 315 and 316 respectively, and the third side plate 132, the fourth side plate 134 and the second connecting plate 136 are connected to form the second box body 13. It can be understood that the positions of the first box body 11 and the second box body 13 can be exchanged.
[0058] S15, the first, second and third first shaft sleeves 118a, 118b and 118c of the first box body 11 are respectively sleeved on the first, second and third fixed shafts 3342, 3344 and 3346, and the first, second and third second shaft sleeves 138a, 138b and 138c of the second box body 13 are respectively sleeved on the first, second and third positioning shafts 3362, 3364 and 3366. In this way, the coaxiality of the first shaft sleeves of the first box body 11 and the second shaft sleeves of the second box body 13 is ensured.
[0059] S17, the moving part 336 is moved, the connecting box body 15 is arranged between the first box body 11 and the second box body 13, and the two ends of the connecting box body 15 are connected with the first box body 11 and the second box body 13 respectively, so as to form the connecting body.
[0060] In the embodiment, in the step S11, when the first, second and third first shaft sleeves 118a, 118b and 118c are placed in correspondence with the first, second and third positioning holes 314, 315 and 316 respectively, the first flange 119 at one end of the first shaft sleeve extends into the first, second and third positioning holes 314, 315 and 316 to realize the angular positioning of the first side plate 112. When the first side plate 112, the second side plate 114 and the first connecting plate 116 are connected, the first connecting plate 116 is first connected to the edge of the first side plate 112 by welding or the like, then the second side plate 114 is sleeved on the first shaft sleeve, the second side plate 114 is aligned, the other end of the first shaft sleeve is exposed from the second side plate 114 when the second side plate 114 is sleeved, so as to form the first flange 119 on one side of the second side plate 114, and the second side plate 114 is connected to the first connecting plate 116 by welding or the like.
[0061] In the embodiment, in the step S13, the second box body 13 is formed in the same way as the first box body 11, and will not be described here.
[0062] In the embodiment, in step S15, the first reference edge 123 of the first box body 11 is located on the first reference block 3349, the first reference surface 125 of the first box body 11 is located against the surface of the fixing part 334 facing the moving part 336, the second reference edge 143 of the second box body 13 is located on the second reference block 3369, and the second reference surface 145 of the second box body 13 is located against the surface of the moving part 336 facing the fixing part 334.
[0063] In the embodiment, in step S17, the connecting box body 15 is connected to the first box body 11 and the second box body 13 by welding or the like. One end of the connecting box body 15 is arranged around the first through hole 121 of the first box body 11 and is connected to the edge of the first through hole 121, and the other end of the connecting box body 15 is arranged around the second through hole 141 of the second box body 13 and is connected to the edge of the second through hole 141.
[0064] In the rotary drilling rig connecting body processing tool and the rotary drilling rig connecting body processing method, the relative positions of the shaft sleeves of the first box body and the second box body are ensured by the first tool, the coaxialities of the shaft sleeves are ensured by the second tool, and the labor intensity of the personnel is low, the cost is low, and the production efficiency is high.
[0065] It should be noted that each of the embodiments in the specification is described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the embodiments can be referred to.
[0066] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited to this. Any changes or replacements within the technical range disclosed by the present application can be easily thought of by those skilled in the art, and should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the appended claims.
Claims
1. A rotary drilling rig adapter machining tool for machining an adapter, the adapter comprising a first box body (11), a second box body (13) and a connecting box body (15), two ends of the connecting box body (15) being connected to the first box body (11) and the second box body (13) respectively, the first box body (11) comprising a first shaft sleeve, and the second box body (13) comprising a second shaft sleeve, characterized in that, The rotary drilling rig connector processing tool comprises a first tooling (31) and a second tooling (33), the first tooling (31) comprises a first workbench (312), the first workbench (312) is provided with positioning holes corresponding to the first shaft sleeve and the second shaft sleeve, and the first workbench (312) is further provided with a stop block (319); the second tooling (33) comprises a second workbench (332), a fixed part (334) fixed to the second workbench (332) and a movable part (336) movably arranged on the second workbench (332), so that the movable part (336) is close to or away from the fixed part (334), the fixed part (334) is provided with a fixed shaft corresponding to the first shaft sleeve, the movable part (336) is provided with a positioning shaft corresponding to the second shaft sleeve, and the fixed shaft and the positioning shaft are coaxially arranged, the first box body (11) comprises a first shaft sleeve (118a), a second shaft sleeve (118b) and a third shaft sleeve (118c), and the second box body (13) comprises a first shaft sleeve (138a), a second shaft sleeve (138b) and a third shaft sleeve (138c); The positioning holes of the first tooling (31) comprise a first positioning hole (314), a second positioning hole (315), a third positioning hole (316) and a fourth positioning hole (317), the first positioning hole (314), the second positioning hole (315) and the third positioning hole (316) are respectively arranged corresponding to the positions of the first shaft sleeve (118a), the second shaft sleeve (118b) and the third shaft sleeve (118c), the first positioning hole (314), the second positioning hole (315) and the fourth positioning hole (317) are respectively arranged corresponding to the positions of the second shaft sleeve (138b), the first shaft sleeve (138a) and the third shaft sleeve (138c), the fixed shaft of the fixed part (334) of the second tooling (33) comprises a first fixed shaft (3342), a second fixed shaft (3344) and a third fixed shaft (3346), the first fixed shaft (3342), the second fixed shaft (3344) and the third fixed shaft (3346) are respectively arranged corresponding to the positions of the first shaft sleeve (118a), the second shaft sleeve (118b) and the third shaft sleeve (118c) of the first box body (11), and the positioning shaft of the movable part (336) of the second tooling (33) comprises a first positioning shaft (3362), a second positioning shaft (3364) and a third positioning shaft (3366), the first positioning shaft (3362), the second positioning shaft (3364) and the third positioning shaft (3366) are respectively arranged corresponding to the positions of the first shaft sleeve (138a), the second shaft sleeve (138b) and the third shaft sleeve (138c) of the second box body (13).
2. The rotary drill rig adapter tool of claim 1, wherein, The fixed part (334) is provided with a first reference block (3349) at the bottom, and the moving part (336) is provided with a second reference block (3369) at the bottom, and the first reference block (3349) and the second reference block (3369) are located between the fixed part (334) and the moving part (336).
3. The rotary drill rig adapter tool of claim 1, wherein, The moving part (336) further comprises a bottom plate (3371) provided at the bottom of the moving part (336), and the bottom plate (3371) is provided with a sliding block (3373) at the bottom; the second workbench (332) is provided with a guide rail (3322) extending along the moving direction of the moving part (336); and the sliding block (3373) is movably connected with the guide rail (3322).
4. The rotary drill rig adapter tool of claim 1, wherein, The distance (X1) between the axis of the first shaft sleeve (118a) and the second shaft sleeve (118b) is equal to the distance (X2) between the axis of the first shaft sleeve (118a) and the second shaft sleeve (138b); the distance (Y1) between the axis of the first shaft sleeve (118a) and the third shaft sleeve (118c) is equal to the distance (Y2) between the axis of the first shaft sleeve (118a) and the second shaft sleeve (138c); and the distance (Z1) between the axis of the second shaft sleeve (118b) and the third shaft sleeve (118c) is equal to the distance (Z2) between the axis of the second shaft sleeve (118b) and the third shaft sleeve (138c). The center line (X3) of the first positioning hole (314) and the second positioning hole (315) corresponds to the distance (X1) between the axis of the first shaft sleeve (118a) and the second shaft sleeve (118b), and corresponds to the distance (X2) between the axis of the first shaft sleeve (118a) and the second shaft sleeve (138b); the center line (Y31) of the first positioning hole (314) and the third positioning hole (316) corresponds to the distance (Y1) between the axis of the first shaft sleeve (118a) and the third shaft sleeve (118c); the center line (Z31) of the second positioning hole (315) and the third positioning hole (316) corresponds to the distance (Z1) between the axis of the second shaft sleeve (118b) and the third shaft sleeve (118c); and the center line (Y32) of the second positioning hole (315) and the fourth positioning hole (317) corresponds to the distance (Y2) between the axis of the first shaft sleeve (138a) and the third shaft sleeve (138c); and the center line (Y32) of the first positioning hole (314) and the fourth positioning hole (317). The axis line (X4) of the first fixed shaft (3342) and the second fixed shaft (3344) corresponds to the distance (X1) between the axis of the first shaft sleeve (118a) and the second first shaft sleeve (118b), the axis line (Y4) of the first fixed shaft (3342) and the third fixed shaft (3346) corresponds to the distance (Y1) between the axis of the first shaft sleeve (118a) and the third first shaft sleeve (118c), the axis line (Z4) of the second fixed shaft (3344) and the third fixed shaft (3346) corresponds to the distance (Z1) between the axis of the second first shaft sleeve (118b) and the third first shaft sleeve (118c), the axis line (X5) of the first positioning shaft (3362) and the second positioning shaft (3364) corresponds to the distance (X2) between the axis of the second shaft sleeve (138a) and the second second shaft sleeve (138b), the axis line (Y5) of the first positioning shaft (3362) and the third positioning shaft (3366) corresponds to the distance (Y2) between the axis of the second shaft sleeve (138a) and the third second shaft sleeve (138c), and the axis line (Z5) of the second positioning shaft (3364) and the third positioning shaft (3366) corresponds to the distance (Z2) between the axis of the second second shaft sleeve (138b) and the third second shaft sleeve (138c).
5. A method for processing a rotary drilling rig adapter, which uses the rotary drilling rig adapter processing tool of claim 1 to process the adapter, the first box body (11) comprising a first reference edge (123) and a first reference surface (125), the first reference edge (123) being located at a side edge of the first box body (11), the first reference surface (125) being a side surface of the first box body (11) away from the second box body (13), the second box body (13) comprising a second reference edge (143) and a second reference surface (145), the second reference edge (143) being located at a side edge of the second box body (13), the second reference surface (145) being a side surface of the second box body (13) away from the first box body (11), characterized in that, The rotary drilling rig connector processing method comprises: The first box body (11) is placed on the first workbench (312), the first reference surface (125) is attached to the upper surface of the first workbench (312), the first reference edge (123) of the first box body (11) is arranged against the stop block (319), the first shaft sleeve is placed in the corresponding positioning hole, and the parts of the first box body (11) are connected to form the first box body (11); The second box body (13) is placed on the first workbench (312), the second reference surface (145) is attached to the upper surface of the first workbench (312), the second reference edge (143) of the second box body (13) is arranged against the stop block (319), the second shaft sleeve is placed in the corresponding positioning hole, and the parts of the second box body are connected to form the second box body (13); The first shaft sleeve of the first box body (11) is arranged on the fixed shaft, and the second shaft sleeve of the second box body (13) is arranged on the positioning shaft. The moving part (336) is moved, the connecting box body (15) is arranged between the first box body (11) and the second box body (13), and the two ends of the connecting box body (15) are connected with the first box body (11) and the second box body (13) respectively, so that the connecting body is formed.
6. The method of claim 5, wherein, The first box body (11) comprises a first side plate (112), a second side plate (114), a first connecting plate (116), the first reference surface (125) is located on one side of the first side plate (112), and the two ends of the first shaft sleeve are respectively provided with first flanges (119); the second box body (13) comprises a third side plate (132), a fourth side plate (134), a second connecting plate (136), the second reference surface (145) is located on one side of the third side plate (132), and the two ends of the second shaft sleeve are respectively provided with second flanges (139); The forming of the first box body (11) specifically comprises the following steps: first, the first side plate (112) of the first box body (11) is placed on the first workbench (312), the first flange (119) at one end of the first shaft sleeve is inserted into the positioning hole, then the first connecting plate (116) is connected to the edge of the first side plate (112), and finally the second side plate (114) is sleeved on the first shaft sleeve, and the second side plate (114) is connected to the first connecting plate (116); The forming of the second box body (13) specifically comprises the following steps: first, the third side plate (132) of the second box body (13) is placed on the first workbench (312), the second flange (139) at one end of the second shaft sleeve is inserted into the positioning hole, then the second connecting plate (136) is connected to the edge of the third side plate (132), and finally the fourth side plate (134) is sleeved on the second shaft sleeve, and the fourth side plate (134) is connected to the second connecting plate (136).
7. The method of claim 5, wherein the method further comprises: The bottom of the fixing part (334) is provided with a first reference block (3349), the bottom of the moving part (336) is provided with a second reference block (3369), and the first reference block (3349) and the second reference block (3369) are located between the fixing part (334) and the moving part (336); When the first shaft sleeve of the first box body (11) is sleeved on the fixed shaft and the second shaft sleeve of the second box body (13) is sleeved on the positioning shaft, the first reference edge (123) of the first box body (11) is located on the first reference block (3349), the first reference surface (125) of the first box body (11) is located on the surface of the fixing part (334) facing the moving part (336), the second reference edge (143) of the second box body (13) is located on the second reference block (3369), and the second reference surface (145) of the second box body (13) is located on the surface of the moving part (336) facing the fixing part (334).
8. The method of claim 5, wherein, The first box body (11) comprises a first shaft sleeve (118a), a second shaft sleeve (118b) and a third shaft sleeve (118c), and the second box body (13) comprises a first shaft sleeve (138a), a second shaft sleeve (138b) and a third shaft sleeve (138c). The positioning holes of the first tooling (31) include a first positioning hole (314), a second positioning hole (315), a third positioning hole (316), and a fourth positioning hole (317), the fixing shafts of the fixing part (334) of the second tooling (33) include a first fixing shaft (3342), a second fixing shaft (3344), and a third fixing shaft (3346), the positioning shafts of the moving part (336) of the second tooling (33) include a first positioning shaft (3362), a second positioning shaft (3364), and a third positioning shaft (3366); When the first box body (11) and the second box body (13) are formed, the first, second, and third first shaft sleeves (118a, 118b, 118c) are respectively aligned with the first, second, and third positioning holes (314, 315, 316), and the second, first, and third second shaft sleeves (138b, 138a, 138c) are respectively aligned with the first, second, and fourth positioning holes (314, 315, 317); When the connecting body is formed, the first, second, and third fixing shafts (3342, 3344, 3346) respectively extend into the first, second, and third first shaft sleeves (118a, 118b, 118c) of the first box body (11), and the first, second, and third positioning shafts (3362, 3364, 3366) respectively extend into the first, second, and third second shaft sleeves (138a, 138b, 138c) of the second box body (13).
9. The method of claim 8, wherein, The distance (X1) between the axis centers of the first and second first shaft sleeves (118a, 118b) is equal to the distance (X2) between the axis centers of the first and second second shaft sleeves (138a, 138b), the distance (Y1) between the axis centers of the first and third first shaft sleeves (118a, 118c) is equal to the distance (Y2) between the axis centers of the first and third second shaft sleeves (138a, 138c), and the distance (Z1) between the axis centers of the second and third first shaft sleeves (118b, 118c) is equal to the distance (Z2) between the axis centers of the second and third second shaft sleeves (138b, 138c). The center line (X3) of the first positioning hole (314) and the second positioning hole (315) corresponds to the distance (X1) between the shaft centers of the first shaft sleeve (118a) and the second shaft sleeve (118b), and corresponds to the distance (X2) between the shaft centers of the second shaft sleeve (138a) and the second shaft sleeve (138b). The center line (Y31) of the first positioning hole (314) and the third positioning hole (316) corresponds to the distance (Y1) between the shaft centers of the first shaft sleeve (118a) and the third shaft sleeve (118c). The center line (Z31) of the second positioning hole (315) and the third positioning hole (316) corresponds to the distance (Z1) between the shaft centers of the second shaft sleeve (118b) and the third shaft sleeve (118c). The center line (Y32) of the second positioning hole (315) and the fourth positioning hole (317) corresponds to the distance (Y2) between the shaft centers of the first shaft sleeve (118a) and the third shaft sleeve (138c). The first positioning hole (314) and the fourth positioning hole (317); The center line (X4) of the first fixed shaft (3342) and the second fixed shaft (3344) corresponds to the distance (X1) between the shaft centers of the first shaft sleeve (118a) and the second shaft sleeve (118b). The center line (Y4) of the first fixed shaft (3342) and the third fixed shaft (3346) corresponds to the distance (Y1) between the shaft centers of the first shaft sleeve (118a) and the third shaft sleeve (118c). The center line (Z4) of the second fixed shaft (3344) and the third fixed shaft (3346) corresponds to the distance (Z1) between the shaft centers of the second shaft sleeve (118b) and the third shaft sleeve (118c). The center line (X5) of the first positioning shaft (3362) and the second positioning shaft (3364) corresponds to the distance (X2) between the shaft centers of the first shaft sleeve (118a) and the second shaft sleeve (118b). The center line (Y5) of the first positioning shaft (3362) and the third positioning shaft (3366) corresponds to the distance (Y2) between the shaft centers of the first shaft sleeve (118a) and the third shaft sleeve (118c). The center line (Z5) of the second positioning shaft (3364) and the third positioning shaft (3366) corresponds to the distance (Z2) between the shaft centers of the second shaft sleeve (118b) and the third shaft sleeve (118c).
Citation Information
Patent Citations
Rotary table device of rotary drilling machine
CN101967954A