Cement wall prefabrication drilling device for building construction
By designing a multi-functional drilling device, flexible adjustment of drilling equipment and dust recycling have been achieved, solving the problems of inflexible use and pollution of existing equipment, and improving construction efficiency and environmental protection.
Patent Information
- Application Number
- CN202511156708.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-19
- Publication Date
- 2025-11-18
AI Technical Summary
Existing drilling equipment cannot flexibly adjust its orientation and angle, and cannot adapt to cement walls of different specifications, resulting in inflexible equipment use, environmental pollution during drilling, and increased labor intensity for cleaning.
A precast drilling device for cement walls in building construction was designed, comprising first and second drilling mechanisms, a drive and adjustment mechanism, a dust collection and recycling box, and a sorting and storage box. The drilling mechanism is flexibly adjusted and dust is collected through components such as a drive motor, worm gear, and gear rack. It is powered by solar photovoltaic panels to achieve self-sufficiency.
It improves the flexibility and stability of drilling equipment, reduces environmental pollution, lowers the labor intensity of cleaning, and meets the drilling needs of cement walls of different scenarios and specifications.
Smart Images

Figure CN120962866A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of building construction equipment technology, specifically to a precast drilling device for cement walls used in building construction. Background Technology
[0002] During construction, it is often necessary to drill holes in cement walls to install furniture or hang electrical wires. Currently, the usual method for drilling holes in cement walls is to hold an electric drill against the cement wall, then start the drill, causing the drill bit to rotate. The drill is then pushed towards the cement wall, and the rotation of the drill bit combined with the manual pushing force is used to drill a hole in the cement.
[0003] Chinese Patent Publication No. CN 218576635 U discloses a drilling device, particularly a precast cement wall drilling device for building construction. The technical problem of this utility model is to provide a precast cement wall drilling device for building construction that is more labor-saving during operation. This utility model provides such a precast cement wall drilling device for building construction, including a housing, a motor, and a rotating shaft. The motor is installed inside the housing, and the rotating shaft is connected to the motor's output shaft via a coupling. It also includes a spring and a drill shaft, etc. A drill shaft for drilling is slidably connected to the rotating shaft, and a spring connects the drill shaft and the rotating shaft. After adjusting the position, this utility model only requires moving and starting the motor to drive the drill shaft, allowing it to move towards the cement wall surface to drill holes while rotating. The operation process is simpler, and there is no need for manual holding or pushing the device to move it, making operation much less strenuous.
[0004] However, the above solutions still have the following problems: the existing drilling equipment has a relatively simple usage mode, and it is impossible to adjust the position and angle of the drilling equipment according to the needs of the operation scenario, nor can it adjust the equipment according to the specifications of the cement wall. The overall equipment has low flexibility of use, which leads to a certain degree of damage to the drilling equipment. Drilling also causes varying degrees of pollution to the working environment, increasing the labor intensity of manual cleaning, and cannot meet the needs of normal use. Therefore, the present invention needs to design a prefabricated drilling device for cement walls in building construction to solve the above problems. Summary of the Invention
[0005] The purpose of this invention is to provide a precast drilling device for cement walls in building construction, so as to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a precast drilling device for cement walls in building construction, comprising a supporting base plate, and further comprising:
[0007] The first drilling mechanism is located above the supporting base plate. The first drilling mechanism includes a first drilling operating table, which is installed above the supporting base plate. A supporting column is installed on the top of the first drilling operating table, and a placement platform is installed on the outside of the supporting column. An installation cover is installed on the top of the supporting column, and a first drive motor is installed on one side of the installation cover. A connecting shaft is rotatably connected inside the installation cover, and a worm gear is fixedly connected to the bottom of the connecting shaft. One end of the worm gear extends to the outside of the installation cover and is fixedly connected to a second drilling rod. The second drilling rod is used to drill holes in large-sized cement walls.
[0008] The fixing box is located on top of the support base plate and is used to support the first drilling mechanism;
[0009] The drive adjustment mechanism is located inside the fixed box. The drive adjustment mechanism includes a support column, a first bevel gear fixedly connected to the bottom of the support column, a second bevel gear rotatably connected to one side of the first bevel gear, and the first and second bevel gears meshing together. A first gear and a second gear are rotatably connected inside the support column, meshing together. A rotating frame is rotatably connected to the outside of the support column. A rotating shaft passing through the second gear is fixedly connected inside the rotating frame. A shock-absorbing plate is connected to the top of the rotating frame, and a connecting top plate is installed on the top of the shock-absorbing plate. A spring is installed between the shock-absorbing plate and the connecting top plate. The top of the connecting top plate is connected to the first drilling operating table. Each spring has a damping shock absorber inside, providing buffering and protection through the spring and the damping shock absorber. The drive adjustment mechanism is used to drive the first drilling operating table to adjust its orientation and angle.
[0010] The second drilling mechanism is located on the top of the support base plate and on the side away from the fixing box. The second drilling mechanism is used to drill holes in small cement walls.
[0011] The dust collection and recycling box is located on one side of the second drilling mechanism and is used for the collection and treatment of dust and debris during on-site drilling.
[0012] The classified storage box is located on the other side of the second drilling mechanism. The classified storage box is used to store various equipment on site for quick retrieval when needed.
[0013] In a preferred embodiment of the present invention, a mounting plate is fixedly connected to the top of the dust collection and recycling box. Two backup battery compartments are fixedly connected to the top of the mounting plate. Two mounting rods are fixedly connected to the top of each of the two backup battery compartments. The two mounting rods are symmetrically distributed, and solar photovoltaic panels are installed on the top of each of the two mounting rods. An installation box is fixedly connected to the top of the mounting plate. The installation box is located on one side of the backup battery compartments. An inverter for use with the solar photovoltaic panels is installed inside each backup battery compartment. Outdoor solar energy resources are collected through the two solar photovoltaic panels, converted into electrical energy by the inverters, and stored in the two backup battery compartments, thus achieving self-sufficiency in electrical energy resources and saving electricity consumption.
[0014] In a preferred embodiment of the present invention, the second drilling mechanism includes a mounting base and a battery storage compartment. The mounting base is installed between the classified storage box and the partition. The battery storage compartment is fixedly connected to the top of the mounting base. A mounting sleeve is fixedly connected to one side of the battery storage compartment. An electric telescopic rod is fixedly connected to one side of the mounting sleeve. A second drive motor is fixedly connected to the output end of the electric telescopic rod. A first drilling rod is fixedly connected to the output end of the second drive motor. Two reciprocating lead screws are rotatably connected to the top of the mounting base. Two limiting sliders are threaded to the outer side of the reciprocating lead screws. A second drilling operating table is installed on the top of each of the two limiting sliders. The bottom of the mounting base is fixedly... The mounting base is fixedly connected to equidistantly distributed, stable seats that extend into the interior of the support base. A third drive motor is fixedly connected to one side of the mounting base. The output end of the third drive motor extends into the mounting base and is fixedly connected to one end of a reciprocating lead screw. The operation of the third drive motor drives the reciprocating lead screw to rotate, causing the two limit sliders to move to one side, thereby finely adjusting the position of the second drilling platform. The operation of the electric telescopic rod drives the first drilling rod to move downwards until the desired height is reached. The operation of the second drive motor drives the first drilling rod to rotate, drilling holes in the cement wall placed on the surface of the second drilling platform. The second drilling mechanism is suitable for drilling smaller cement walls.
[0015] In a preferred embodiment of the present invention, a collection pipe is fixedly connected to one side of the dust collection box, with valves fixedly connected to the outer sides of each collection pipe. A collection box is installed below each collection pipe. A partition is fixedly connected to one side of the sorting and storage box, with partitions also fixedly distributed at equal intervals. The dust collection box is equipped with an air pump that works in conjunction with the collection pipes. The air pump operates to collect and process dust particles generated during drilling through the collection pipes. Larger particles cannot enter the fixed box and are collected through the bottom collection box. The sorting and storage box allows for the categorized storage of equipment needed on-site, improving the overall flexibility of equipment use. An installation box is installed on one side of the placement platform. A rotating handwheel is installed on the outer side of the installation box, and a positioning screw is installed at the end of the rotating handwheel extending into the installation box. The placement platform is located on two adjacent sides of the installation box. Each side is fixedly connected with equidistantly distributed second connecting rods. A connecting plate is fixedly connected to the end of each second connecting rod furthest from the placement platform. A positioning plate is fixedly connected to the bottom end of the supporting column. The positioning plate has internally threaded first positioning bolts that are equidistantly distributed and extend into the interior of the first drilling platform. The first drilling platform has internally threaded second positioning bolts that are equidistantly distributed and extend into the interior of the connecting top plate. The connecting top plate and the first drilling platform are positioned and installed using the second positioning bolts. The positioning plate and the first positioning bolts, in conjunction with the first positioning bolts, position and install the supporting column and the first drilling platform, improving the stability of the equipment connection. Multiple second connecting rods, in conjunction with the mounting box and the connecting plate, ensure the overall stability of the cement wall during placement. Turning the handwheel rotates the positioning screw, positioning the supporting column and the placement platform, facilitating fine-tuning of the placement platform height.
[0016] The system uses an air pump to collect and process dust particles generated during drilling through a recycling pipeline. Larger particles cannot enter the fixed box and are collected through the recycling box at the bottom. The equipment is then categorized and stored in separate storage bins, which improves the overall flexibility of the equipment.
[0017] In a preferred embodiment of the present invention, a detachable top cover is installed on the top of the mounting cover. A second transmission belt is installed inside the detachable top cover. A first driven pulley and a second driving pulley are rotatably connected inside the second transmission belt. The first driven pulley is driven by the second transmission belt to the second driving pulley. A second driven pulley is installed above the second driving pulley. The first transmission belt is sleeved on the outside of the second driven pulley. The first driving pulley is rotatably connected inside the first transmission belt and on the side away from the second driven pulley. The second driven pulley is driven by the first transmission belt to the first driving pulley. The output end of the first drive motor is connected to the first driving pulley. A second drilling rod is installed on the outside of the mounting cover. One end of the second drilling rod extends into the interior of the mounting cover and... A first connecting rod is fixedly connected, and a worm gear is fixedly connected to the outer side of the first connecting rod. The worm gear meshes with a worm. One top end of the connecting shaft is connected to a first driven pulley. The rotation of the worm drives the meshing worm gear to rotate, which in turn drives the outer monitoring camera to rotate, improving the comprehensiveness of remote monitoring. The rotation of the first driving pulley, driven by the first and second transmission belts, drives the first driven pulley to rotate, which in turn drives the worm at the bottom to rotate, thereby driving the second drilling rod to rotate and perform drilling operations on the cement wall. The first drilling mechanism is suitable for cement walls of larger specifications, or the overall orientation and angle can be adjusted by the drive adjustment mechanism to drill cement walls placed on one side, improving the flexibility of the equipment and meeting the needs of different scenarios and drilling cement walls of different specifications.
[0018] In a preferred embodiment of the present invention, the fixed box has an internal mounting cavity for use with the drive adjustment mechanism. The bottom of the support base plate is fixedly connected to equidistant casters. A fifth drive motor is fixedly connected to one side of the fixed box, and a motor mounting plate is fixedly connected to the top of the fifth drive motor. The output end of the motor mounting plate extends into the fixed box and is fixedly connected to a second bevel gear. A fourth drive motor is fixedly connected to one side of the support column. The output end of the fourth drive motor extends into the support column and is fixedly connected to a first gear. The operation of the fourth drive motor drives the first gear to rotate, thereby driving the second gear at the top to rotate. Under the limitation of the rotating shaft, the rotating frame rotates outside the support column, thereby fine-tuning the angle of the first drilling platform at the top. This enables fine-tuning of the angle when the second drilling rod is drilling. The operation of the fifth drive motor drives the second bevel gear to rotate, causing the meshing first bevel gear to rotate, driving the entire support column to rotate. This allows for overall orientation adjustment of the first drilling platform, meeting the needs of drilling in different orientations, thus improving the overall flexibility of the drilling equipment and making it suitable for various scenarios.
[0019] In a preferred embodiment of the present invention, a control panel is fixedly connected to one side of the dust collection and recycling box. The first drive motor, the monitoring camera, the electric telescopic pole, the second drive motor, the third drive motor, the backup battery compartment, the solar photovoltaic panel, the fourth drive motor, and the fifth drive motor are all electrically connected to the control panel. The control panel is used to control the operation of the first drive motor, the monitoring camera, the electric telescopic pole, the second drive motor, the third drive motor, the backup battery compartment, the solar photovoltaic panel, the fourth drive motor, and the fifth drive motor, thereby realizing unified management of the power equipment.
[0020] Compared with the prior art, the beneficial effects of the present invention are:
[0021] 1. This invention is equipped with a first drilling mechanism and a second drilling mechanism to drill holes in a cement wall placed on one side, improving the flexibility of the equipment and meeting the needs of different scenarios and drilling cement walls of different sizes. A third drive motor rotates a reciprocating lead screw, which in turn moves two limit sliders to one side, thereby fine-tuning the position of the second drilling platform. An electric telescopic rod moves the first drilling rod downwards to the desired height. The second drilling mechanism is suitable for drilling smaller cement walls. A fourth drive motor rotates a first gear, which in turn drives a second gear at the top. Under the limit of the rotating shaft, the rotating frame rotates outside the support column, thereby fine-tuning the angle of the first drilling platform at the top, enabling fine-tuning of the angle during drilling with the second drilling rod. A fifth drive motor rotates a second bevel gear, which in turn rotates the meshing first bevel gear, driving the entire support column to rotate, thus adjusting the overall orientation of the first drilling platform to meet drilling needs in different directions. This improves the overall flexibility of the drilling equipment and makes it suitable for various scenarios.
[0022] 2. This invention is equipped with a drive adjustment mechanism. The dust collection and recycling box is used for the collection and treatment of dust and debris during on-site drilling. The classified storage box is used to store various equipment on-site for easy and quick retrieval. The dust collection and recycling box is equipped with an air pump that works with the recycling pipeline. The air pump operates to collect and treat dust particles generated during on-site drilling through the recycling pipeline. Larger particles cannot enter the fixed box and are collected through the recycling box at the bottom. The classified storage box stores the required equipment on-site in categories, improving the overall flexibility of equipment use. This solution realizes the switching of different drilling modes according to the drilling scenario, and also integrates functions such as equipment storage during drilling, on-site environmental purification during drilling, and on-site equipment movement. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall structure of a precast cement wall drilling device for building construction according to the present invention. Figure 1 ;
[0024] Figure 2 This is a schematic diagram of the overall structure of a precast cement wall drilling device for building construction according to the present invention. Figure 2 ;
[0025] Figure 3 This is an enlarged schematic diagram of the first drilling mechanism of a precast cement wall drilling device for building construction according to the present invention.
[0026] Figure 4 This is an exploded view of the first drilling mechanism structure of a precast cement wall drilling device for building construction according to the present invention.
[0027] Figure 5 This is an enlarged schematic diagram of the second drilling mechanism of a precast cement wall drilling device for building construction according to the present invention.
[0028] Figure 6 This is an enlarged schematic diagram of the drive adjustment mechanism of a precast cement wall drilling device for building construction according to the present invention;
[0029] Figure 7 This is a schematic diagram of the internal drive adjustment mechanism of a precast cement wall drilling device for building construction according to the present invention.
[0030] Figure 8 This invention relates to a precast drilling device for cement walls used in building construction. Figure 1 Enlarged schematic diagram of the structure at point A in the diagram;
[0031] Figure 9 This invention relates to a precast drilling device for cement walls used in building construction. Figure 4 Enlarged schematic diagram of the structure at point B in the diagram.
[0032] In the picture:
[0033] 1. Support base; 11. Casters; 12. Categorized storage boxes; 13. Dividers; 14. Stable base;
[0034] 2. Fixing box; 21. Installation cavity; 22. Shock-absorbing plate; 23. Connecting top plate;
[0035] 3. First drilling platform; 31. Support column; 32. Mounting cover; 33. Removable top cover; 34. First drive motor; 35. First transmission belt; 36. First drive pulley; 37. Monitoring camera; 38. First connecting rod; 39. Worm gear;
[0036] 4. Mounting base; 41. Battery compartment; 42. Mounting sleeve; 43. Electric telescopic rod; 44. Second drive motor; 45. First drilling rod; 46. Third drive motor; 47. Reciprocating lead screw; 48. Limiting slider; 49. Second drilling operating table;
[0037] 5. Dust collection bin; 51. Recycling box; 52. Recycling pipe; 53. Mounting top plate; 54. Spare battery compartment; 55. Mounting rod; 56. Solar photovoltaic panel; 57. Mounting box;
[0038] 6. Second drill rod; 61. Worm gear; 62. Connecting shaft; 63. First driven pulley; 64. Second transmission belt; 65. Second driving pulley; 66. Second driven pulley;
[0039] 7. Turn the handwheel; 71. Mounting box; 72. Second connecting rod; 73. Connecting plate; 74. Placement platform; 75. Positioning plate; 76. First positioning bolt; 77. Second positioning bolt;
[0040] 8. Support column; 81. First bevel gear; 82. Second bevel gear; 83. Fourth drive motor; 84. First gear; 85. Second gear; 86. Rotating shaft; 87. Rotating frame; 88. Motor mounting plate; 89. Fifth drive motor. Detailed Implementation
[0041] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0042] Please see Figures 1-9 This invention provides a technical solution: a precast drilling device for cement walls used in building construction, comprising a supporting base plate 1, and further comprising: a first drilling mechanism located above the supporting base plate 1, the first drilling mechanism including a first drilling operating table 3, the first drilling operating table 3 mounted above the supporting base plate 1, a supporting column 31 mounted on the top of the first drilling operating table 3, a placement platform 74 mounted on the outer side of the supporting column 31, an installation cover 32 mounted on the top of the supporting column 31, a first drive motor 34 mounted on one side of the installation cover 32, a connecting shaft 62 rotatably connected inside the installation cover 32, a worm gear 61 fixedly connected to the bottom of the connecting shaft 62, one end of the bottom of the worm gear 61 extending to the outer side of the installation cover 32 and fixedly connected to a second drilling rod 6, the second drilling rod 6 being used for drilling cement walls of larger specifications; and a fixing box 2 located on the top of the supporting base plate 1, the fixing box 2 being used to support the first drilling mechanism;
[0043] In this design, the drive adjustment mechanism is located inside the fixed box 2. The drive adjustment mechanism includes a support column 8, with a first bevel gear 81 fixedly connected to the bottom of the support column 8. A second bevel gear 82 is rotatably connected to one side of the first bevel gear 81, and the first bevel gear 81 and the second bevel gear 82 are meshed together. A first gear 84 and a second gear 85 are rotatably connected inside the support column 8, and the first gear 84 and the second gear 85 are meshed together. A rotating frame 87 is rotatably connected to the outside of the support column 8. The rotating frame 87 has a... A rotating shaft 86 is fixedly connected to the second gear 85. A damping plate 22 is connected to the top of the rotating frame 87. A connecting top plate 23 is installed on the top of the damping plate 22. A spring is installed between the damping plate 22 and the connecting top plate 23. The top of the connecting top plate 23 is connected to the first drilling operating table 3. Each spring is equipped with a damping shock absorber. The spring and the damping shock absorber provide buffer protection. The drive adjustment mechanism is used to drive the first drilling operating table 3 to adjust its orientation and angle. The connecting top plate 23 is connected to the first drilling operating table 3.
[0044] In this scheme, the second drilling mechanism is located on the top of the support base plate 1 and on the side away from the fixing box 2. The second drilling mechanism is used to drill holes in the cement wall with smaller dimensions.
[0045] In this solution, the dust collection and recycling box 5 is located on one side of the second drilling mechanism and is used for the collection and treatment of dust and debris during on-site drilling; the classification storage box 12 is located on the other side of the second drilling mechanism and is used for storing various equipment on-site for easy and quick retrieval when needed.
[0046] Please see Figures 1-9 In this scheme, the top of the dust collection box 5 is fixedly connected to the top of the mounting plate 53, and the top of the mounting plate 53 is fixedly connected to two spare battery compartments 54. The top of each of the two spare battery compartments 54 is fixedly connected to two mounting rods 55. The two mounting rods 55 are symmetrically distributed, and solar photovoltaic panels 56 are installed on the top of each of the two mounting rods 55.
[0047] In this scheme, an installation box 57 is fixedly connected to the top of the mounting plate 53. The installation box 57 is located on one side of the backup battery compartment 54. The backup battery compartment 54 is equipped with an inverter that works with the solar photovoltaic panel 56. Outdoor solar energy resources are collected through the two solar photovoltaic panels 56 and converted into electricity through the inverter. The electricity is stored through the two backup battery compartments 54, achieving self-sufficiency in electricity resources and saving electricity consumption.
[0048] Please see Figures 1-5In this scheme, the second drilling mechanism includes a mounting base 4 and a battery storage compartment 41. The mounting base 4 is installed between the classified storage box 12 and the partition 13. The battery storage compartment 41 is fixedly connected to the top of the mounting base 4. The mounting sleeve 42 is fixedly connected to one side of the battery storage compartment 41. The electric telescopic rod 43 is fixedly connected to one side of the mounting sleeve 42. The output end of the electric telescopic rod 43 is fixedly connected to a second drive motor 44. The output end of the second drive motor 44 is fixedly connected to a first drilling rod 45. The top of the mounting base 4 is rotatably connected to two reciprocating screws 47. The outer side of the reciprocating screws 47 is threadedly connected to two limit sliders 48. The top of each of the two limit sliders 48 is equipped with a second drilling operating table 49.
[0049] In this design, the bottom of the mounting base 4 is fixedly connected with equidistantly distributed stabilizing seats 14 that extend into the support base plate 1. A third drive motor 46 is fixedly connected to one side of the mounting base 4. The output end of the third drive motor 46 extends into the mounting base 4 and is fixedly connected to one end of the reciprocating lead screw 47.
[0050] In this scheme, the third drive motor 46 rotates, driving the reciprocating lead screw 47 to rotate, which in turn drives the two limit sliders 48 to move to one side, thereby fine-tuning the position of the second drilling operating table 49. The electric telescopic rod 43 rotates, driving the first drilling rod 45 to move downwards until the required height is reached. The second drive motor 44 rotates, driving the first drilling rod 45 to rotate, and drilling is performed on the cement wall placed on the surface of the second drilling operating table 49. The second drilling mechanism is suitable for drilling smaller cement walls.
[0051] Please see Figures 1-2 , Figure 8 In this scheme, a collection pipe 52 is fixedly connected to one side of the dust collection and recycling box 5, and a valve is fixedly connected to the outside of the collection pipe 52. A collection box 51 is installed below the collection pipe 52. A partition 13 is fixedly connected to one side of the classified storage box 12.
[0052] In this solution, the dust collection box 5 is equipped with an air pump that works in conjunction with the collection pipe 52. The air pump operates and the dust particles generated during drilling are collected and processed through the collection pipe 52. Larger particles cannot enter the fixed box 2 and are collected and processed through the collection box 51 at the bottom. The required equipment is stored in the classified storage box 12, which improves the flexibility of the overall equipment use.
[0053] Please see Figures 1-3In this design, a mounting box 71 is installed on one side of the placement platform 74. A rotating handwheel 7 is installed on the outside of the mounting box 71. A positioning screw is installed at one end of the rotating handwheel 7 that extends into the mounting box 71. The two sides of the placement platform 74 adjacent to the mounting box 71 are fixedly connected with equidistant second connecting rods 72. A connecting plate 73 is fixedly connected at the end of the second connecting rods 72 away from the placement platform 74. A positioning plate 75 is fixedly connected at one bottom end of the support column 31. The positioning plate 75 is internally threaded with equidistant first positioning bolts 76 that extend into the first drilling operating table 3. The first drilling operating table 3 is internally threaded with equidistant second positioning bolts 77 that extend into the connecting top plate 23.
[0054] In this scheme, the connecting top plate 23 and the first drilling operating platform 3 are positioned and installed by the second positioning bolt 77, and the supporting column 31 and the first drilling operating platform 3 are positioned and installed by the positioning plate 75 and the first positioning bolt 76, which improves the stability of the equipment connection. Multiple second connecting rods 72 are connected by the mounting box 71 and the connecting plate 73 to ensure the overall stability of the cement wall when it is placed. By turning the rotating handwheel 7, the positioning screw is rotated to position the supporting column 31 and the placement platform 74, which facilitates the fine adjustment of the height of the placement platform 74.
[0055] Please see Figure 9 In this design, a detachable top cover 33 is installed on the top of the mounting cover 32. A second transmission belt 64 is installed inside the detachable top cover 33. A first driven pulley 63 and a second driving pulley 65 are rotatably connected inside the second transmission belt 64. The first driven pulley 63 is connected to the second driving pulley 65 via the second transmission belt 64. A second driven pulley 66 is installed above the second driving pulley 65. The first transmission belt 35 is fitted around the outside of the second driven pulley 66. The first transmission belt 35 is located inside the first transmission belt 35 and away from the second driven pulley 66. A first driving pulley 36 is rotatably connected to the side, and a second driven pulley 66 is connected to the first driving pulley 36 via a first transmission belt 35. The output end of the first drive motor 34 is connected to the first driving pulley 36. A second drilling rod 6 is installed on the outside of the mounting cover 32. One end of the second drilling rod 6 extends into the inside of the mounting cover 32 and is fixedly connected to a first connecting rod 38. A worm gear 39 is fixedly connected to the outside of the first connecting rod 38. The worm gear 39 meshes with the worm 61. One top end of the connecting shaft 62 is connected to the first driven pulley 63.
[0056] In this solution, the worm gear 61 drives the meshing worm wheel 39 to rotate, which in turn drives the outer monitoring camera 37 to rotate, improving the comprehensiveness of remote monitoring. The first active pulley 36 rotates, which, under the transmission of the first transmission belt 35 and the second transmission belt 64, drives the first driven pulley 63 to rotate, which in turn drives the bottom worm gear 61 to rotate, thereby driving the second drilling rod 6 to rotate and perform drilling operations on the cement wall. The first drilling mechanism is suitable for cement walls of larger specifications, or the overall orientation and angle can be adjusted by the drive adjustment mechanism to perform drilling on cement walls placed on one side, improving the flexibility of the equipment and meeting the needs of different scenarios and drilling on cement walls of different specifications.
[0057] Please see Figure 7 In this design, the fixed box 2 has an internal mounting cavity 21 for use with the drive adjustment mechanism. The bottom of the support base plate 1 is fixedly connected with equidistant casters 11. The fixed box 2 is fixedly connected with a fifth drive motor 89. The top of the fifth drive motor 89 is fixedly connected with a motor mounting plate 88. The output end of the motor mounting plate 88 extends into the fixed box 2 and is fixedly connected with the second bevel gear 82. The support column 8 is fixedly connected with a fourth drive motor 83. The output end of the fourth drive motor 83 extends into the support column 8 and is fixedly connected with the first gear 84.
[0058] In this solution, the fourth drive motor 83 rotates, driving the first gear 84 to rotate, which in turn drives the second gear 85 at the top to rotate. Under the limit of the rotating shaft 86, the rotating frame 87 rotates outside the support column 8, thereby fine-tuning the angle of the first drilling operating platform 3 at the top. This enables the second drilling rod 6 to fine-tune its angle during drilling. The fifth drive motor 89 rotates, driving the second bevel gear 82 to rotate, which in turn drives the meshing first bevel gear 81 to rotate, driving the support column 8 to rotate as a whole. This allows for overall orientation adjustment of the first drilling operating platform 3, meeting the drilling requirements of different orientations. This improves the overall flexibility of the drilling equipment and makes it suitable for various scenarios.
[0059] Please see Figures 1-9 In this solution, a control panel is fixedly connected to one side of the dust collection and recycling box 5. The first drive motor 34, the monitoring camera 37, the electric telescopic rod 43, the second drive motor 44, the third drive motor 46, the spare battery compartment 54, the solar photovoltaic panel 56, the fourth drive motor 83 and the fifth drive motor 89 are all electrically connected to the control panel.
[0060] In this solution, the control panel is used to control the operation of the first drive motor 34, the monitoring camera 37, the electric telescopic pole 43, the second drive motor 44, the third drive motor 46, the backup battery compartment 54, the solar photovoltaic panel 56, the fourth drive motor 83, and the fifth drive motor 89, thereby realizing unified management of power equipment.
[0061] Please see Figures 1-9 The working principle of this invention is as follows:
[0062] This invention includes a first drilling mechanism and a second drilling mechanism. The worm gear 61 rotates, driving the meshing worm wheel 39 to rotate, which in turn rotates the outer monitoring camera 37, improving the comprehensiveness of remote monitoring. The first driving pulley 36 rotates, driving the first driven pulley 63 to rotate under the transmission of the first transmission belt 35 and the second transmission belt 64. This, in turn, drives the bottom worm gear 61 to rotate, thereby driving the second drilling rod 6 to rotate, performing drilling operations on the cement wall. The first drilling mechanism is suitable for larger cement walls, or the overall orientation and angle can be adjusted via a drive adjustment mechanism to drill holes in cement walls placed on one side. This improves the flexibility of the equipment, meeting the needs of different scenarios and drilling requirements for cement walls of different sizes.
[0063] The third drive motor 46 rotates, driving the reciprocating lead screw 47 to rotate, which in turn moves the two limit sliders 48 to one side, thereby fine-tuning the position of the second drilling platform 49. The electric telescopic rod 43 rotates, driving the first drilling rod 45 to move downwards until the desired height is reached. The second drive motor 44 rotates, driving the first drilling rod 45 to rotate, and drilling is performed on the cement wall placed on the surface of the second drilling platform 49. The second drilling mechanism is suitable for drilling smaller cement walls.
[0064] The fourth drive motor 83 rotates, driving the first gear 84 to rotate, which in turn drives the second gear 85 at the top to rotate. Under the limit of the rotating shaft 86, the rotating frame 87 rotates outside the support column 8, thereby fine-tuning the angle of the first drilling platform 3 at the top. This enables the second drilling rod 6 to fine-tune its angle during drilling. The fifth drive motor 89 rotates, driving the second bevel gear 82 to rotate, which in turn drives the meshing first bevel gear 81 to rotate, driving the support column 8 to rotate as a whole. This allows for overall orientation adjustment of the first drilling platform 3, meeting the drilling requirements of different orientations. This improves the overall flexibility of the drilling equipment and makes it suitable for various scenarios.
[0065] The control panel is used to control the operation of the first drive motor 34, the monitoring camera 37, the electric telescopic pole 43, the second drive motor 44, the third drive motor 46, the backup battery compartment 54, the solar photovoltaic panel 56, the fourth drive motor 83, and the fifth drive motor 89, thus realizing unified management of the power equipment.
[0066] This invention is equipped with a drive adjustment mechanism. The connecting top plate 23 and the first drilling operating platform 3 are positioned and installed by the second positioning bolt 77. The supporting column 31 and the first drilling operating platform 3 are positioned and installed by the positioning plate 75 and the first positioning bolt 76, which improves the stability of the equipment connection. Multiple second connecting rods 72 are connected by the mounting box 71 and the connecting plate 73 to ensure the overall stability when the cement wall is placed. By turning the rotating handwheel 7, the positioning screw is rotated to position the supporting column 31 and the placement platform 74, which facilitates the fine adjustment of the height of the placement platform 74.
[0067] Each of the backup battery compartments 54 is equipped with an inverter that works in conjunction with the solar photovoltaic panels 56. Outdoor solar energy is collected through the two solar photovoltaic panels 56 and converted into electricity through the inverter. The electricity is then stored in the two backup battery compartments 54, achieving self-sufficiency in electricity and saving on electricity consumption.
[0068] The top of the connecting plate 23 is connected to the first drilling operating platform 3. The springs are equipped with damping shock absorbers inside, and buffering and protection are provided through the springs and shock absorbers.
[0069] The dust collection box 5 is used for the collection and treatment of dust and debris during on-site drilling. The classified storage box 12 is used to store various equipment on-site for quick access when needed. The dust collection box 5 is equipped with an air pump that works with the collection pipe 52. The air pump operates and the dust particles generated during on-site drilling are collected and treated through the collection pipe 52. Larger particles cannot enter the fixed box 2 and are collected and treated through the collection box 51 at the bottom.
[0070] By classifying and storing the equipment required on site using the storage box 12, the overall flexibility of equipment use is improved. This solution enables switching between different drilling modes according to the drilling scenario, while also taking into account the functions of storing equipment required during drilling, cleaning the on-site environment during drilling, and moving on-site equipment.
[0071] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A precast drilling device for cement walls used in building construction, comprising a supporting base plate (1), characterized in that, Also includes: The first drilling mechanism is located above the support base plate (1). The first drilling mechanism includes a first drilling operating table (3). The first drilling operating table (3) is installed above the support base plate (1). A support column (31) is installed on the top of the first drilling operating table (3). A placement platform (74) is installed on the outside of the support column (31). An installation cover (32) is installed on the top of the support column (31). A second drilling rod (6) is installed at the bottom of the installation cover (32). The fixing box (2) is located on top of the supporting base plate (1); The drive adjustment mechanism is located inside the fixed box (2). The drive adjustment mechanism includes a support column (8). A rotating frame (87) is rotatably connected to the top outer side of the support column (8). A connecting top plate (23) is installed on the top of the rotating frame (87). The connecting top plate (23) is connected to the first drilling operation table (3). The second drilling mechanism is located on the top of the support base plate (1) and on the side away from the fixing box (2); The dust collection box (5) is located on one side of the second drilling mechanism; The classification storage box (12) is located on the other side of the second drilling mechanism.
2. The precast cement wall drilling device for building construction according to claim 1, characterized in that: The top of the dust collection box (5) is fixedly connected to a mounting plate (53), and the top of the mounting plate (53) is fixedly connected to two spare battery compartments (54), and the top of each of the two spare battery compartments (54) is fixedly connected to two mounting rods (55).
3. The precast cement wall drilling device for building construction according to claim 2, characterized in that: The top of the mounting plate (53) is fixedly connected to a mounting box (57), which is located on one side of the spare battery compartment (54).
4. The precast cement wall drilling device for building construction according to claim 3, characterized in that: The second drilling mechanism includes a mounting base (4) and a battery storage compartment (41). The mounting base (4) is installed between the classified storage box (12) and the partition (13). The battery storage compartment (41) is fixedly connected to the top of the mounting base (4). The mounting sleeve (42) is fixedly connected to one side of the battery storage compartment (41). The electric telescopic rod (43) is fixedly connected to one side of the mounting sleeve (42). The output end of the electric telescopic rod (43) is fixedly connected to a second drive motor (44). The output end of the second drive motor (44) is fixedly connected to a first drilling rod (45). The top of the mounting base (4) is rotatably connected to two reciprocating screws (47). The outer side of the reciprocating screws (47) is threaded with two limiting sliders (48). The top of each of the two limiting sliders (48) is equipped with a second drilling operating table (49).
5. The precast cement wall drilling device for building construction according to claim 4, characterized in that: The bottom of the mounting base (4) is fixedly connected to equidistant stabilizing seats (14) that extend into the support base plate (1). A third drive motor (46) is fixedly connected to one side of the mounting base (4). The output end of the third drive motor (46) extends into the mounting base (4) and is fixedly connected to one end of the reciprocating lead screw (47).
6. The precast cement wall drilling device for building construction according to claim 5, characterized in that: The dust collection and recycling box (5) is fixedly connected to one side with equidistantly distributed recycling pipes (52), and recycling boxes (51) are installed below each recycling pipe (52).
7. The precast cement wall drilling device for building construction according to claim 1, characterized in that: An installation box (71) is installed on one side of the placement platform (74). A rotating handwheel (7) is installed on the outside of the installation box (71). The two sides of the placement platform (74) adjacent to the installation box (71) are fixedly connected with second connecting rods (72) that are distributed at equal intervals. The end of the second connecting rod (72) away from the placement platform (74) is fixedly connected with a connecting plate (73). A positioning plate (75) is fixedly connected to one end of the bottom of the support column (31).
8. The precast cement wall drilling device for building construction according to claim 6, characterized in that: A first drive motor (34) is installed on one side of the mounting cover (32). A disassembly top cover (33) is installed on the top of the mounting cover (32). A second transmission belt (64) is installed inside the disassembly top cover (33). A first driven pulley (63) and a second driving pulley (65) are rotatably connected inside the second transmission belt (64). A second driven pulley (66) is installed above the second driving pulley (65). The first transmission belt (35) is sleeved on the outside of the second driven pulley (66). The first drive pulley (36) is rotatably connected to the inside of the first drive motor (34) and away from the second driven pulley (66). The output end of the first drive motor (34) is connected to the first drive pulley (36). The second drilling rod (6) is installed on the outside of the mounting cover (32). One end of the second drilling rod (6) extends into the inside of the mounting cover (32) and is fixedly connected to the first connecting rod (38). The worm gear (39) is fixedly connected to the outside of the first connecting rod (38). The top end of the connecting shaft (62) is connected to the first driven pulley (63).
9. The precast cement wall drilling device for building construction according to claim 8, characterized in that: A first bevel gear (81) is fixedly connected to the bottom of the support column (8), and a second bevel gear (82) is rotatably connected to one side of the first bevel gear (81). The first bevel gear (81) and the second bevel gear (82) are meshed together. A first gear (84) and a second gear (85) are rotatably connected inside the support column (8). The first gear (84) and the second gear (85) are meshed together. A fifth drive motor (89) is fixedly connected to one side of the fixed box (2). A motor mounting plate (88) is fixedly connected to the top of the fifth drive motor (89). The output end of the motor mounting plate (88) extends into the fixed box (2) and is fixedly connected to the second bevel gear (82). A fourth drive motor (83) is fixedly connected to one side of the support column (8). The output end of the fourth drive motor (83) extends into the support column (8) and is fixedly connected to the first gear (84).
10. The precast cement wall drilling device for building construction according to claim 9, characterized in that: A control panel is fixedly connected to one side of the dust collection and recycling box (5). The first drive motor (34), the monitoring camera (37), the electric telescopic rod (43), the second drive motor (44), the third drive motor (46), the spare battery compartment (54), the solar photovoltaic panel (56), the fourth drive motor (83), and the fifth drive motor (89) are all electrically connected to the control panel.
Citation Information
Patent Citations
Cement wall prefabrication drilling device for building construction
CN218576635U
Cited By
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