Anti-tilt stabilization base and method for a pole group
The automated operation of the motor-driven spiral drill head and the cylinder solves the anchoring problem of the boom base in complex terrain, achieves efficient and stable ground fixation and convenient fixing force control, and improves the stability and safety of the boom.
Patent Information
- Application Number
- CN202411728705.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-28
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2044-11-28
AI Technical Summary
The existing boom base has poor adaptability to complex terrain in terms of anchoring. The traditional manual bolt fixing operation is cumbersome and it is difficult to accurately control the fixing force, which affects the stability and safety of the boom.
A motor-driven auger bit is used for efficient anchoring. The air pump adjusts the auger height to adapt to uneven ground. The motor-driven connecting block is used to accurately control the fixing force. The automated operation of the cylinder and motor is combined to improve stability and convenience.
It achieves efficient anchoring in complex terrain, reduces the risk of base tipping, improves the stability and safety of the boom, reduces labor costs and operational risks, and reduces transportation difficulty.
Smart Images

Figure CN119389944B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of pole bases, and in particular relates to an anti-tilt stabilizing base and method for a pole group. Background Art
[0002] As a lifting device widely used in industries such as construction, power generation, and communications, the stability of the mast is crucial to the safety and smooth progress of projects. As the key component supporting the entire mast, the mast base requires the use of multiple technologies to ensure its performance in practical applications.
[0003] 1. Base structure design: It must have sufficient strength and stability to withstand the pressure and various external forces generated by the holding rod and the lifting weight. The shape, size and material selection directly affect the overall load-bearing capacity.
[0004] 2. Connection and fixing method: Ensure a tight and stable connection between the pole and the base to prevent loosening or displacement during operation. Common methods include bolt connection and welding, each with different characteristics and applicable scenarios.
[0005] 3. Anchoring device: It is used to firmly fix the base on the ground, resist external forces such as wind and lifting tension, and prevent the base from tipping or sliding. It is an important part of ensuring the safety of the pole.
[0006] To ensure stable pole installation and operation, manufacturers currently utilize a variety of pole bases and related technologies. Some bases utilize a large metal chassis and sturdy outriggers to increase ground contact and support stability. Others incorporate complex connection components, such as high-strength bolts and specialized flanges, to enhance the connection between the pole and base. Some also utilize ground anchor bolts or counterweights to secure the base.
[0007] However, the above-mentioned prior art still has the following problems: in terms of anchoring, the traditional anchoring method has poor adaptability to complex terrain, and it is difficult to ensure the stable anchoring of the base, and it is easy to have insufficient anchoring force, which affects the overall stability of the pole. In terms of the pole fixing method, the traditional manual bolt fixing operation is cumbersome and it is difficult to accurately control the fixing force, which may cause the pole to be loosely fixed or damaged due to over-tightening. In response to these problems, the present application proposes a solution to design a pole base, which is provided with a spiral drill anchoring device, which can be efficiently anchored by a motor-driven spiral drill and the height of the spiral drill can be adjusted by an air pump to adapt to uneven ground; the pole is fixed by a motor-driven connecting block, which can accurately control the fixing force and is easy to operate; the pole base has good adaptability, stability and ease of operation, can effectively solve many problems existing in the existing pole base, and improve the performance and safety of the pole in various engineering operations.
[0008] In view of this, the existing structure and defects are studied and improved, and an anti-tilt stable base of the holding pole group is provided in order to achieve a more practical purpose. Summary of the Invention
[0009] In order to solve the above technical problems, the present invention provides an anti-tilt stabilizing base for a holding pole group to solve the above problems.
[0010] The cam is provided with a plurality of movable frames, and the movable frame is provided with a plurality of movable frames, and the movable frame is provided with a plurality of movable frames. The upper surface of the pad is fixedly connected with an annular block, each of the card slots is rotatably connected with a screw and fixedly connected to a connecting block, the two pairs of screws are respectively threadedly sleeved with the two pairs of limit blocks, the back ends of the two pairs of screws are fixedly connected, the two pairs of connecting block surfaces are rotatably connected with driving columns, the opposite surfaces of the two fixed rods are fixedly connected with connecting strips, the right surfaces of the two connecting strips are fixedly connected with card plates, the two card plates are respectively fixedly connected to the two cylinder pistons, the lower surfaces of the two first motors are fixedly connected with fixing plates, the upper surfaces of the two pairs of spiral drill heads are fixedly connected with round rods, the surfaces of the two pairs of round rods are fixedly connected with the first gears, the two fixing plates are respectively fixedly connected to the two fixing rods, the surfaces of the two pairs of the first gears are respectively provided with two transmission belts, and the two round rods on the right side of the two pairs of round rods are respectively fixedly connected to the output shafts of the two first motors.
[0011] Preferably, a fixing cylinder is fixedly connected to the lower surface of the base body, and the fixing cylinder is movably connected to the holding rod body. An annular groove is opened on the annular side of the base body, and the annular groove is rotatably connected to the connecting ring. A support block is fixedly connected to the upper surface of the base body, and the support block is fixedly connected to the second motor.
[0012] Preferably, the annular side surface of the fixing ring is fixedly connected with a connecting column, and the two connecting columns are movably connected to the two annular blocks respectively. The two pairs of annular sides of the screw are fixedly connected with fixed blocks, and the two pairs of fixed blocks are fixedly connected to the two pairs of slots respectively. The lower surfaces of the two pairs of driving columns are fixedly connected with third gears, and the two pairs of third gears are respectively engaged with the two pairs of fourth gears.
[0013] Preferably, the upper end of each driving column is fixedly connected to a second gear, the second gear located on the leftmost side of the two pairs of second gears is fixedly connected to the output shaft of the second motor, the two pairs of second gears are movably engaged with a set of limit grooves, and two fixed columns are fixedly connected to the lower surface of the base body, and the two fixed columns are movably connected to two connecting strips respectively.
[0014] A second aspect of the present invention provides a method for fixing an anti-tilt stabilizing base, comprising:
[0015] The first motor is started, and its output shaft drives the fixed round rod to rotate. During the rotation of the round rod, the first gear connected to it is rotated, and the first gear further drives the transmission belt engaged with it to rotate, and the transmission belt in turn drives the first gear on the other side to rotate. During the rotation of the round rod, the fixed auger bit below it is rotated, and at the same time, another pair of auger bits connected by the transmission belt are also rotated. The rotation of the auger bit causes it to cut into the ground. As it continues to rotate, the auger bit gradually penetrates into the ground, and the interaction between the spiral blades and the soil stably anchors the base body to the ground.
[0016] The cylinder is activated, causing the cylinder piston to move the connected clamping plate. During the movement of the clamping plate, the connecting bar fixed to it moves together. The connecting bar then drives the fixed rod connected to it to move downward, thereby causing the auger bit to move downward. The cylinder controls the up and down movement of the auger bit. When facing uneven ground, one pair of auger bits contacts the lower ground, while the other pair of auger bits rises to a suitable height to avoid the higher ground. At this time, the first motor is activated to drive the auger bits to rotate, and the two pairs of auger bits drill into the ground of different heights respectively.
[0017] Start the second motor, so that its output shaft drives the second gear connected to it to rotate. During the rotation process, the second gear drives the connecting ring connected to it to rotate, and the connecting ring drives another second gear to rotate; each second gear drives the driving column connected to it to rotate, and the driving column in turn drives the third gear connected to it to rotate, and the third gear meshes with the fourth gear, thereby driving the fourth gear to rotate; when the fourth gear rotates, it drives the screw connected to it to rotate, and the limit block on the screw starts to move under the action of the thread; the two pairs of limit blocks are movably connected to the base body and are fixed to the holding pole body during the movement; the limit blocks are driven by the second motor to move toward the holding pole body to adjust the degree of fit between the limit blocks and the holding pole body.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] In the present invention, the two pairs of spiral drill bits are in a rotating state. The rotation of the two pairs of spiral drill bits enables them to cut into the ground. As the spiral drill bits continue to rotate, they gradually penetrate deeper into the ground, and rely on the interaction force between the spiral blades and the soil to stably anchor the base body to the ground. By forming a larger friction force and anchoring force with the soil, compared with traditional surface anchoring methods, it can better resist various external forces from the boom body, such as wind force, tension and lateral force when lifting heavy objects, etc., greatly reducing the risk of the base body tipping over and improving the stability and safety of the entire boom group.
[0020] In the present invention, the connection mode driven by the second motor usually has a higher torque output, which can stably push the limit block to fit with the holding pole body. Compared with manually tightening the bolts or other mechanical fixing methods, the second motor drive process is smoother and there will be no loose connection or damage to the connecting parts due to human factors (such as uneven force). The overall automated operation mode not only improves work efficiency and reduces labor costs, but also reduces the labor intensity and operation risks of operators.
[0021] In the present invention, the two clamping plates will drive the connecting bars fixed thereto to move during the movement process. The two connecting bars are respectively fixed to the two fixing rods. At this time, the two fixing rods also move downward, and the two pairs of spiral drill bits also move downward at the same time. The cylinder controls the up and down movement of the spiral drill bits, and the depth of the spiral drill bits into the soil can be accurately adjusted to adapt to different ground conditions and anchoring requirements.
[0022] In the present invention, the position of the spiral drill bit is adjusted and anchored according to the height of the ground, which can ensure that each support point of the base body can be tightly combined with the ground, effectively dispersing the weight and external force of the base body. The overall integrated design is moved through the movable frame, and the base body can be easily transferred from one location to another without the need to use large-scale lifting equipment for overall lifting, reducing dependence on professional transportation equipment, reducing transportation costs and difficulty, and facilitating the implementation of boom-related engineering operations in various complex terrains and working conditions. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 This is a schematic structural diagram of the base body of the present invention;
[0025] Figure 3 It is a structural schematic diagram of the fixing rod of the present invention;
[0026] Figure 4 Schematic diagram of the structure of the spiral drill bit of the present invention;
[0027] Figure 5 1 is a schematic diagram of the connecting ring structure of the present invention;
[0028] Figure 6 It is a schematic diagram of the structure of the limit block of the present invention;
[0029] Figure 7 It is a schematic diagram of the fixing ring structure of the present invention;
[0030] Figure 8 It is a schematic diagram of the screw structure of the present invention.
[0031] In the figure, the correspondence between the structure names and the drawing numbers is: 1. base body; 2. holding rod body; 3. connecting ring; 4. fixing rod; 5. transmission belt; 6. spiral drill bit; 7. first motor; 8. cylinder; 9. second motor; 10. movable frame; 11. fixing plate; 13. clamping plate; 14. connecting strip; 15. first gear; 16. round rod; 17. limiting groove; 18. fixing column; 19. fixing cylinder; 20. limiting block; 21. fixing ring; 22. clamping groove; 23. annular groove; 24. connecting column; 25. annular block; 26. rubber pad; 27. screw; 28. support block; 29. second gear; 30. driving column; 31. third gear; 32. connecting block; 33. fourth gear; 34. fixing block. DETAILED DESCRIPTION
[0032] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention but are not intended to limit the scope of the present invention.
[0033] See also Figure 1 - Figure 8The present invention provides an anti-rollover stable base for a holding pole group, comprising a base body 1 and a holding pole body 2. The lower surface of the base body 1 is fixedly connected to a movable frame 10, the annular side of the base body 1 is rotatably connected to a connecting ring 3, fixed rods 4 are provided on the front and rear sides of the base body 1, the lower surfaces of the two fixed rods 4 are rotatably connected to two spiral drill bits 6, and a first motor 7 is provided above the two fixed rods 4. The base body 1 is movably sleeved with the holding pole body 2, two cylinders 8 are fixedly connected inside the base body 1, a group of limiting grooves 17 are opened on the inner wall of the connecting ring 3, two pairs of card grooves 22 are opened on the upper surface of the base body 1, and the limiting blocks 20 are movably clamped in the two pairs of card grooves 22. The side of the shape is movably connected with a fixing ring 21, and a second motor 9 is provided above the base body 1. The opposite surfaces of the two pairs of limit blocks 20 are fixedly connected with rubber pads 26. The upper surfaces of the rubber pads 26 located on the front and rear sides of the two pairs of rubber pads 26 are fixedly connected with annular blocks 25. A screw 27 is rotatably connected in each slot 22 and is fixedly connected with a connecting block 32. The two pairs of screws 27 are respectively threadedly sleeved with the two pairs of limit blocks 20. The opposite ends of the two pairs of screws 27 are fixedly connected with a fourth gear 33. The surfaces of the two pairs of connecting blocks 32 are rotatably connected with the drive columns 30. The opposite surfaces of the two fixing rods 4 are fixedly connected with the connecting strips 14. The right surfaces of the two connecting strips 14 are fixedly connected with the card plate 13. The two The clamping plate 13 is fixedly connected to the pistons of the two cylinders 8 respectively, the lower surfaces of the two first motors 7 are fixedly connected with a fixing plate 11, the upper surfaces of the two pairs of spiral drill bits 6 are fixedly connected with a round rod 16, the surfaces of the two pairs of round rods 16 are fixedly connected with the first gear 15, the two fixing plates 11 are fixedly connected to the two fixing rods 4 respectively, and two transmission belts 5 are respectively provided on the surfaces of the two pairs of first gears 15. The two round rods 16 on the right side of the two pairs of round rods 16 are respectively fixedly connected to the output shafts of the two first motors 7. When the base body 1 needs to be fixed, by starting the first motor 7, the output shaft of the first motor 7 will drive the round rod 16 fixed thereto to rotate, and the round rod 16 will bring The first gear 15 fixed to it rotates, and the first gear 15 will drive the transmission belt 5 connected to it to rotate during the rotation. The transmission belt 5 will drive the first gear 15 on the other side to rotate during the rotation. At this time, the two round rods 16 are in a rotating state. The two round rods 16 will drive the spiral drill bits 6 fixed thereunder to rotate during the rotation. At this time, the two spiral drill bits 6 on the other side repeat the operation, and the two pairs of spiral drill bits 6 are in a rotating state. The rotation of the two pairs of spiral drill bits 6 enables them to cut into the ground. As the spiral drill bits 6 continue to rotate, they gradually go deeper into the ground, relying on the interaction force between the spiral blades and the soil to stably anchor the base body 1 to the ground.
[0034] A fixing tube 19 is fixedly connected to the lower surface of the base body 1, and the fixing tube 19 is movably connected to the boom body 2. An annular groove 23 is provided on the annular side surface of the base body 1, and the annular groove 23 is rotatably connected to the connecting ring 3. A support block 28 is fixedly connected to the upper surface of the base body 1, and the support block 28 is fixedly connected to the second motor 9. By forming a larger friction and anchoring force with the soil, compared with the traditional surface anchoring method, it can better resist various external forces from the boom body 2, such as wind force, tension and lateral force when lifting heavy objects, etc., which greatly reduces the risk of the base body 1 tipping over and improves the stability and safety of the entire boom group.
[0035] The annular side surface of the fixing ring 21 is fixedly connected with a connecting column 24, and the two connecting columns 24 are movably connected to the two annular blocks 25 respectively. The annular sides of the two pairs of screws 27 are fixedly connected with fixed blocks 34, and the two pairs of fixed blocks 34 are fixedly connected to the two pairs of slots 22 respectively. The lower surfaces of the two pairs of driving columns 30 are fixedly connected with the third gear 31, and the two pairs of third gears 31 are respectively engaged with the two pairs of fourth gears 33. By starting the two cylinders 8, the pistons of the two cylinders 8 drive the clamping plates 13 fixed thereto to move. During the movement, the two clamping plates 13 will drive the connecting bars 14 fixed thereto to move together. The two connecting bars 14 are fixed to the two fixing rods 4 respectively. At this time, the two fixing rods 4 also move downward, and the two pairs of spiral drill bits 6 also move downward at the same time. The cylinder 8 controls the up and down movement of the spiral drill bits 6, and can accurately adjust the depth of the spiral drill bits 6 into the soil to adapt to different ground conditions and anchoring requirements. Each pair of spiral drill bits 6 is controlled to move by an independent cylinder 8. When facing uneven ground, a pair of spiral drill bits 6 contacts a lower position. The ground, the other pair of spiral drill bits 6 rises to a suitable height to avoid the higher ground, at this time the first motor 7 is started to drive the spiral drill bits 6 to rotate, and the two pairs of spiral drill bits 6 drill into the ground of different heights respectively. During the drilling process, the air pressure therein is accurately controlled by the cylinder 8, thereby fine-tuning the depth of the spiral drill bits 6 into the soil, ensuring that the two pairs of spiral drill bits 6 can be firmly anchored on the ground, providing stable support for the entire base body 1. This structure can effectively cope with the complex ground conditions of unevenness, and adjust the position of the spiral drill bits 6 and anchor them according to the height of the ground, which can ensure that each support point of the base body 1 can be closely combined with the ground, effectively dispersing the weight and external force of the base body 1. The overall integrated design is moved by the movable frame 10, and the base body 1 can be easily transferred from one location to another. There is no need to use large lifting equipment for overall lifting, which reduces the dependence on professional transportation equipment, reduces transportation costs and transportation difficulties, and is conducive to carrying out boom-related engineering operations under various complex terrains and working conditions.
[0036] The upper end of each driving column 30 is fixedly connected to a second gear 29. The second gear 29 located on the leftmost side of the two pairs of second gears 29 is fixedly connected to the output shaft of the second motor 9. The two pairs of second gears 29 are movably engaged with a set of limit grooves 17. Two fixing columns 18 are fixedly connected to the lower surface of the base body 1. The two fixing columns 18 are movably engaged with the two connecting bars 14 respectively. By starting the second motor 9, its output shaft will drive the second gear 29 fixed thereto to rotate. During the rotation process, the second gear 29 will drive the connecting ring 3 engaged therewith to rotate, and the connecting ring 3 will drive the When the other second gear 29 rotates, a group of second gears 29 are all in a rotating state and will drive their respective fixed driving columns 30 to rotate. Each driving column 30 will drive its respective third gear 31 fixed thereto to rotate during the rotation process. A group of third gears 31 will respectively mesh with a group of fourth gears 33. When the third gear 31 rotates, it will drive the fourth gear 33 meshed therewith to rotate together. At this time, the two pairs of fourth gears 33 will rotate simultaneously and drive their respective fixed screws 27 to rotate. During the rotation of each screw 27, the limit blocks 20 respectively sleeved on its surface are affected. The screw action starts to move, and the two pairs of limit blocks 20 are movably connected to the base body 1. At this time, the two pairs of limit blocks 20 begin to move relative to each other under the action of the screw. During the movement, the rubber pads 26 fixed on the opposite surfaces of the two pairs of limit blocks 20 will fit and fix with the pole body 2. The surface of the pole body 2 is fixed with two connecting columns 24 on the surface of the fixing ring 21 fixed by screws. The two connecting columns 24 are movably connected with the annular blocks 25 on the front and rear sides respectively and fixed by nuts to ensure the stability of the pole body 2. The limit blocks 20 are driven by the second motor 9 to move toward the pole body 2, which can accurately The degree of fit between the limit block 20 and the boom body 2 can be accurately adjusted, thereby precisely controlling the fixing force. The connection mode driven by the second motor 9 usually has a higher torque output, which can stably push the limit block 20 to fit with the boom body 2. Compared with manually tightening bolts or other mechanical fixing methods, the process of driving the second motor 9 is smoother, and there will be no loose connection or damage to the connecting parts due to human factors (such as uneven force). The overall automated operation mode not only improves work efficiency and reduces labor costs, but also reduces the labor intensity and operation risks of operators.
[0037] Working principle:
[0038] In the first step, when the base body 1 needs to be fixed, by starting the first motor 7, the output shaft of the first motor 7 will drive the round rod 16 fixed thereto to rotate, and the round rod 16 will drive the first gear 15 fixed thereto to rotate during the rotation process. The first gear 15 will drive the transmission belt 5 connected thereto to rotate during the rotation process. The transmission belt 5 will drive the first gear 15 on the other side to rotate during the rotation process. At this time, the two round rods 16 are in a rotating state. The two round rods 16 will drive the spiral drill head 6 fixed thereunder to rotate during the rotation process. At this time, the two spiral drills on the other side The head 6 repeats the operation, and the two pairs of spiral drill bits 6 are in a rotating state. The rotation of the two pairs of spiral drill bits 6 enables them to cut into the ground. As the spiral drill bits 6 continue to rotate, they gradually penetrate into the ground, relying on the interaction force between the spiral blades and the soil to stably anchor the base body 1 to the ground. By forming a large friction force and anchoring force with the soil, compared with traditional surface anchoring methods, it can better resist various external forces from the boom body 2, such as wind force, tension and lateral force when lifting heavy objects, etc., greatly reducing the risk of the base body 1 tipping over and improving the stability and safety of the entire boom group.
[0039] In the second step, by starting the two cylinders 8, the pistons of the two cylinders 8 drive the card plates 13 fixed thereto to move. During the movement, the two card plates 13 will drive the connecting strips 14 fixed thereto to move together. The two connecting strips 14 are respectively fixed to the two fixing rods 4. At this time, the two fixing rods 4 also move downward, and the two pairs of spiral drill bits 6 also move downward at the same time. The cylinder 8 controls the up and down movement of the spiral drill bits 6, and can accurately adjust the depth of the spiral drill bits 6 into the soil to adapt to different ground conditions and anchoring requirements. Each pair of spiral drill bits 6 is controlled to move by an independent cylinder 8. When facing uneven ground, that is, one pair of spiral drill bits 6 contacts the ground at a lower position, and the other pair of spiral drill bits 6 rises to a suitable height to avoid the higher ground. At this time, the first motor 7 is started to drive the spiral drill bits 6 to rotate, and the two pairs of spiral drill bits 6 drill into the ground of different heights respectively. During the drilling process, the air pressure inside the cylinder 8 is precisely controlled to fine-tune the penetration depth of the spiral drill bit 6 into the ground, ensuring that the two pairs of spiral drill bits 6 can be firmly anchored to the ground, providing stable support for the entire base body 1. This structure can effectively cope with complex and uneven ground conditions. The position of the spiral drill bit 6 is adjusted and anchored according to the height of the ground, ensuring that each support point of the base body 1 can be closely combined with the ground, effectively dispersing the weight and external force of the base body 1. The overall integrated design is moved by the movable frame 10, and the base body 1 can be easily transferred from one location to another without the use of large lifting equipment for overall lifting, reducing dependence on professional transportation equipment, reducing transportation costs and difficulty, and facilitating the development of boom-related engineering operations under various complex terrains and working conditions.
[0040] In the third step, by starting the second motor 9, its output shaft will drive the second gear 29 fixed thereto to rotate. The second gear 29 will drive the connecting ring 3 connected thereto to rotate during the rotation process. The connecting ring 3 will drive the other second gear 29 to rotate during the rotation process. At this time, a group of second gears 29 are all in a rotating state and will drive their respective fixed driving posts 30 to rotate. Each driving post 30 will drive its respective third gear 31 fixed thereto to rotate during the rotation process. A group of third gears 31 will respectively mesh with a group of fourth gears 33. When the third gear 31 rotates, it will drive the fourth gear 33 meshed therewith to rotate together. At this time, the two pairs of fourth gears 33 will rotate simultaneously and drive their respective fixed screws 27 to rotate. During the rotation of each screw 27, the limit blocks 20 respectively sleeved on its surface are acted upon by the thread and begin to move. The two pairs of limit blocks 20 are both movably engaged in the base body 1. At this time, the two pairs of limit blocks 20 are acted upon by the thread and begin to move relative to each other. The rubber pads 26 fixed to the opposing surfaces of the two pairs of limit blocks 20 are fitted and fixed to the pole body 2. Two connecting posts 24 are fixed to the surface of the fixing ring 21 fixed by screws on the surface of the pole body 2. The two connecting posts 24 are movably connected to the annular blocks 25 on the front and rear sides and fixed by nuts to ensure the stability of the pole body 2. The second motor 9 drives the limit blocks 20 to move toward the pole body 2, which can accurately adjust the fit between the limit blocks 20 and the pole body 2, thereby accurately controlling the fixing force. The connection method driven by the second motor 9 generally has a high torque output, which can stably push the limit blocks 20 into contact with the pole body 2. Compared with manually tightening bolts or other mechanical fixing methods, the second motor 9 drive process is smoother and does not cause loose connections or damage to connecting components due to human factors (such as uneven force). The overall automated operation method not only improves work efficiency and reduces labor costs, but also reduces the labor intensity and operating risks of operators.
[0041] In an optional embodiment, a method for fixing an anti-tilt stabilizing base of a holding pole assembly is further provided, comprising the following steps:
[0042] The first step is to fix the base body 1:
[0043] Start the first motor 7 so that its output shaft drives the fixed round rod 16 to rotate. During the rotation process, the round rod 16 will drive the first gear 15 connected to it to rotate. The first gear 15 further drives the transmission belt 5 connected to it to rotate. The transmission belt 5 then drives the first gear 15 on the other side to rotate, so that both round rods 16 are in a rotating state. During the rotation process, the round rod 16 drives the spiral drill bit 6 fixed below it to rotate. At the same time, the other pair of spiral drill bits 6 connected by the transmission belt 5 also rotate. The rotation of the spiral drill bit 6 causes it to cut into the ground. As it continues to rotate, the spiral drill bit 6 gradually penetrates deeper into the ground, relying on the interaction force between the spiral blades and the soil to stably anchor the base body 1 to the ground. Compared with traditional surface anchoring methods, this anchoring method can better resist various external forces from the holding rod body 2, such as wind force, tension and lateral force when lifting heavy objects, etc., greatly reducing the risk of the base body 1 tipping over.
[0044] Step 2: Adjust the depth of the spiral drill bit 6:
[0045] Start the cylinder 8, so that the piston of the cylinder 8 drives the clamping plate 13 connected to it to move. During the movement, the clamping plate 13 drives the connecting strip 14 fixed to it to move together. The connecting strip 14 then drives the fixed rod 4 connected to it to move downward, thereby causing the auger bit 6 to move downward. The cylinder 8 controls the up and down movement of the auger bit 6 and can accurately adjust the depth of the auger bit 6 into the ground to adapt to different ground conditions and anchoring requirements. When facing uneven ground, one pair of auger bits 6 contacts the ground at a lower position, while the other pair of auger bits 6 rises to a suitable height to avoid the higher ground. At this time, the first motor 7 is started to drive the auger bits 6 to rotate, and the two pairs of auger bits 6 drill into the ground of different heights respectively. During the drilling process, the air pressure inside the cylinder 8 is precisely controlled to fine-tune the depth of the auger bits 6 into the ground, ensuring that both pairs of auger bits 6 are firmly anchored to the ground, providing stable support for the entire base body 1.
[0046] Step 3: Fix the pole body 2:
[0047] The second motor 9 is started, and its output shaft rotates the second gear 29 connected to it. This rotation drives the connecting ring 3 attached to it, which in turn drives another second gear 29, thus rotating all of the second gears 29. Each second gear 29 rotates the drive post 30 connected to it, which in turn drives the third gear 31 connected to it. The third gear 31 meshes with the fourth gear 33, thereby rotating the fourth gear 33. The rotation of the fourth gear 33 drives the screw 27 connected to it, causing the stopper 20 on the screw 27 to move due to the threaded action. Both pairs of stoppers 20 are flexibly engaged within the base body 1 and remain fixed to the boom body 2 during movement. A screw-fastened fixing ring 21 on the boom body 2 flexibly engages with the annular block 25 on the stopper 20 and is secured with a nut to ensure the stability of the boom body 2. By driving the limit block 20 to move toward the pole body 2 through the second motor 9, the degree of fit between the limit block 20 and the pole body 2 can be accurately adjusted, thereby accurately controlling the fixing force.
[0048] The examples of the present invention are presented for purposes of illustration and description and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are chosen and described in order to better illustrate the principles of the invention and its practical application and to enable those skilled in the art to understand the invention and design various embodiments with various modifications as are suited for specific applications.
Claims
1. An anti-tilt stabilizing base for a holding pole group, comprising a base body (1) and a holding pole body (2), wherein a movable frame (10) is fixedly connected to the lower surface of the base body (1), and characterized in that: The annular side surface of the base body (1) is rotatably connected to a connecting ring (3), the front and rear sides of the base body (1) are both provided with fixing rods (4), the lower surfaces of the two fixing rods (4) are both rotatably connected to two spiral drill bits (6), and the upper surfaces of the two fixing rods (4) are both provided with a first motor (7), the base body (1) and the holding rod body (2) are movably sleeved, two cylinders (8) are fixedly connected inside the base body (1), a group of limiting grooves (17) are opened on the inner wall of the connecting ring (3), and two pairs of clamping grooves (22) are opened on the upper surface of the base body (1), and the limiting blocks (20) are movably clamped in the two pairs of clamping grooves (22); The annular side surface of the holding rod body (2) is movably connected to a fixing ring (21), a second motor (9) is arranged above the base body (1), the opposite surfaces of the two pairs of limit blocks (20) are fixedly connected to rubber pads (26), the upper surfaces of the rubber pads (26) located on the front and rear sides of the two pairs of rubber pads (26) are fixedly connected to annular blocks (25), each of the slots (22) is rotatably connected to a screw rod (27) and fixedly connected to a connecting block (32), the two pairs of screw rods (27) are respectively threadedly sleeved with the two pairs of limit blocks (20), the opposite ends of the two pairs of screw rods (27) are fixedly connected to (33), the surfaces of the two pairs of connecting blocks (32) are rotatably connected to the driving columns (30), the opposite surfaces of the two fixed rods (4) are fixedly connected to the connecting bars (14), the right surfaces of the two connecting bars (14) are fixedly connected to the card plates (13), and the two card plates (13) are respectively fixedly connected to the pistons of the two cylinders (8).
2. The anti-tilt stabilizing base of the holding pole assembly according to claim 1, characterized in that: The lower surfaces of the two first motors (7) are fixedly connected to a fixing plate (11), the upper surfaces of the two pairs of spiral drill bits (6) are fixedly connected to a round rod (16), and the surfaces of the two pairs of round rods (16) are fixedly connected to a first gear (15); The two fixing plates (11) are respectively fixedly connected to the two fixing rods (4); two transmission belts (5) are respectively provided on the surfaces of the two pairs of the first gears (15); and the two round rods (16) on the right side of the two pairs of the round rods (16) are respectively fixedly connected to the output shafts of the two first motors (7).
3. The anti-tilt stabilizing base of the holding pole assembly according to claim 2, characterized in that: A fixing cylinder (19) is fixedly connected to the lower surface of the base body (1); The fixing cylinder (19) is movably sleeved with the holding rod body (2).
4. The anti-tilt stabilizing base of the holding pole assembly according to claim 3, characterized in that: The base body (1) is provided with an annular groove (23) on the annular side surface; The annular groove (23) is rotatably connected to the connecting ring (3).
5. The anti-tilt stabilizing base of the holding pole assembly according to claim 4, characterized in that: A support block (28) is fixedly connected to the upper surface of the base body (1); The support block (28) is fixedly connected to the second motor (9).
6. The anti-tilt stabilizing base of the holding pole assembly according to claim 5, characterized in that: The annular side surface of the fixing ring (21) is fixedly connected with a connecting column (24); The two connecting columns (24) are respectively movably connected to the two annular blocks (25).
7. The anti-tilt stabilizing base of the holding pole assembly according to claim 6, characterized in that: The annular side surfaces of the two pairs of screw rods (27) are fixedly connected with fixed blocks (34); The two pairs of fixing blocks (34) are respectively fixedly connected to the two pairs of slots (22).
8. The anti-tilt stabilizing base of the holding pole assembly according to claim 7, characterized in that: The lower surfaces of the two pairs of driving columns (30) are fixedly connected to a third gear (31); The two pairs of third gears (31) are respectively engaged with the two pairs of fourth gears (33).
9. The anti-tilt stabilizing base of the holding pole assembly according to claim 8, characterized in that: The upper end of each driving column (30) is fixedly connected to a second gear (29), and the leftmost second gear (29) of the two pairs of second gears (29) is fixedly connected to the output shaft of the second motor (9); Wherein, both pairs of the second gears (29) are movably engaged with a set of limiting grooves (17).
10. The method for fixing the anti-tilt stabilizing base according to claim 9, characterized in that: include: The first motor (7) is started, and its output shaft drives the fixed round rod (16) to rotate. During the rotation process, the round rod (16) drives the first gear (15) connected thereto to rotate. The first gear (15) further drives the transmission belt (5) connected thereto to rotate. The transmission belt (5) then drives the first gear (15) on the other side to rotate. During the rotation process, the round rod (16) drives the spiral drill bit (6) fixed thereunder to rotate. At the same time, another pair of spiral drill bits (6) connected by the transmission belt (5) also rotate. The rotation of the spiral drill bit (6) causes it to cut into the ground. As the rotation continues, the spiral drill bit (6) gradually penetrates into the ground. The base body (1) is stably anchored to the ground by the interaction force between the spiral blades and the soil. The cylinder (8) is started, so that the piston of the cylinder (8) drives the card plate (13) connected thereto to move, and the card plate (13) drives the connecting bar (14) fixed thereto to move together during the movement, and the connecting bar (14) then drives the fixed rod (4) connected thereto to move downward, thereby causing the spiral drill head (6) to also move downward; the cylinder (8) controls the up and down movement of the spiral drill head (6); when facing uneven ground, one pair of spiral drill heads (6) contacts the ground at a lower position, while the other pair of spiral drill heads (6) rises to a suitable height to avoid the higher ground; at this time, the first motor (7) is started to drive the spiral drill heads (6) to rotate, and the two pairs of spiral drill heads (6) drill into the ground at different heights respectively; The second motor (9) is started, and its output shaft drives the second gear (29) connected thereto to rotate. During the rotation process, the second gear (29) drives the connecting ring (3) connected thereto to rotate, and the connecting ring (3) drives another second gear (29) to rotate. Each second gear (29) drives the driving column (30) connected thereto to rotate. The driving column (30) then drives the third gear (31) connected thereto to rotate. The third gear (31) engages with the fourth gear (33), thereby driving the fourth gear (33) to rotate. When the fourth gear (33) rotates, it drives the screw (27) connected thereto to rotate, and the limit block (20) on the screw (27) begins to move under the action of the thread. Both pairs of limit blocks (20) are movably engaged in the base body (1) and are fixed to the holding rod body (2) during the movement process. The limit blocks (20) are driven by the second motor (9) to move toward the holding rod body (2) to adjust the degree of fit between the limit blocks (20) and the holding rod body (2).
Citation Information
Patent Citations
Holding pole structure
CN114263387A
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CN215107835U