A mast lifting device

By using a hydraulic motor and reducer to drive the rope reel, combined with the design of the rope loop and rope guide, the problems of inaccurate control and easy wear of existing mast lifting devices are solved, achieving stable and precise lifting of the mast and continuous construction.

CN224298781UActive Publication Date: 2026-05-29TIANJIN ZHONGYAN DADI MATERIAL TECH CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TIANJIN ZHONGYAN DADI MATERIAL TECH CO LTD
Filing Date
2025-08-11
Publication Date
2026-05-29

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    Figure CN224298781U_ABST
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Abstract

The utility model discloses a mast lifting device, including hydraulic motor, speed reducer, winding rope reel, mounting seat and steel wire rope, hydraulic motor is fixed on mounting seat, and hydraulic motor is linked winding rope reel through speed reducer, and two steel wire ropes are placed on winding rope reel axial both sides and are arranged on winding rope reel, and one end of two steel wire ropes is fixed with winding rope reel, and the other end is fixed with the upper and lower ends of mast respectively. The combination of hydraulic motor, speed reducer, winding rope reel and steel wire rope can stably and accurately realize the lifting of mast, and can accurately control the lifting speed by cooperating with the use of speed regulating proportional valve, the slide rail on mounting seat cooperates with the sliding block on mast, and the setting of rope guide wheel ensures the orderly winding of steel wire rope and the stability in the mast lifting process, prolongs the service life of equipment, and reduces the maintenance cost.
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Description

Technical Field

[0001] This utility model relates to a mast lifting device. Background Technology

[0002] Currently, most mast lifting systems rely on the excavator's boom for raising and lowering operations. This design has the following limitations:

[0003] The limited range of motion and force of the forearm restricts the lifting range and accuracy of the mast.

[0004] The raising and lowering of the boom may be affected by the overall working posture of the excavator, making it difficult to achieve independent and precise control.

[0005] The mechanical structure of the forearm is prone to wear and fatigue during long-term, high-frequency lifting operations, increasing maintenance costs and the risk of failure. Summary of the Invention

[0006] This utility model provides a mast lifting device to solve the problems existing in the prior art.

[0007] The technical solutions adopted in this utility model are as follows:

[0008] A mast lifting device includes a hydraulic motor, a reducer, a rope reel, a mounting base, and steel wire ropes. The hydraulic motor is fixed on the mounting base and is linked to the rope reel through the reducer. Two steel wire ropes are wound on the rope reel and placed on both sides of the axial direction of the rope reel. One end of each steel wire rope is fixed to the rope reel, and the other end is fixed to the upper and lower ends of the mast, respectively.

[0009] Furthermore, the lifting device also includes a rope coil ring. A spiral groove is provided on the outer circumferential wall of the rope coil. The rope coil ring meshes with the spiral groove. The rope coil rotates and drives the rope coil ring to move along the axial direction of the rope coil. Two steel wire ropes are wound in the spiral groove, and the two steel wire ropes are respectively placed on both sides of the rope coil ring.

[0010] Furthermore, a rope guide is provided above the rope reel, and two rope guide grooves for threading steel wire rope are provided on the rope guide. The rope reel is fixed to the rope guide.

[0011] Furthermore, a guide shaft is fixed on the mounting base, the guide shaft is arranged along the axial direction of the rope reel, and the rope guide is threaded through the guide shaft.

[0012] Furthermore, the guide shaft is a rectangular shaft, and a bushing is fixed on the rope guide. The bushing is inserted into the rectangular shaft, rotates around the rope reel, and drives the rope guide to move axially along the guide shaft.

[0013] Furthermore, the mounting base is equipped with two rope guide wheels for guiding the two steel wire ropes.

[0014] Furthermore, the mounting base is provided with a slide rail, and the mast is provided with a slider, which cooperates with the slide rail.

[0015] This utility model has the following beneficial effects:

[0016] (1) The combination of hydraulic motor, reducer, rope reel and wire rope can stably and accurately realize the lifting and lowering of the mast. With the use of speed regulating proportional valve, the lifting and lowering speed can be precisely controlled. The slide rail on the mounting base cooperates with the slider on the mast. The setting of the rope guide wheel ensures the orderly winding of the wire rope and the stability of the mast lifting and lowering process, which extends the service life of the equipment and reduces maintenance costs.

[0017] (2) The mast lifting and lowering is independently controlled by driving the rope reel with a hydraulic motor and reducer, which is not affected by the overall posture of the excavator, thus improving the flexibility and accuracy of operation. The combination of hydraulic motor and reducer can provide a larger lifting range to meet the needs of operation under complex working conditions. Attached Figure Description

[0018] Figure 1 This is a structural diagram of the lifting device.

[0019] Figure 2 This is a structural diagram of the lifting device.

[0020] Figure 3 This is a structural diagram of the lifting device.

[0021] Figure 4 This is an assembly drawing of a hydraulic motor and a reducer.

[0022] Figure 5 This is an assembly drawing of the lifting device and the mast.

[0023] Figure 6 This is an assembly diagram of the rope guide and the rope coiling ring.

[0024] Figure 7 This is a structural diagram of a coiled rope loop.

[0025] Figure 8 This is a structural diagram of the rope guide.

[0026] Figure 9 A structural diagram showing the installation of slide rails on the mounting base.

[0027] Figure 10 This is a structural diagram of the application of this utility model.

[0028] Figure 11 This is a schematic diagram of the liquid distribution principle.

[0029] In the picture:

[0030] 1-Excavator body; 2-Mast; 22-Fixing buckle;

[0031] 3-Lifting device; 31-Hydraulic motor; 32-Reducer; 33-Rope reel; 331-Locking block; 34-Mounting base; 341-Slide rail; 36-Rope guide wheel; 37-Mounting ear; 35-Rope guide; 350-Rope guide groove; 351-Rope coiling ring; 352-Guide shaft;

[0032] 4-Priority valve; 5-Speed ​​proportional valve; 6-Flow divider valve. Detailed Implementation

[0033] The present invention will be further described below with reference to the accompanying drawings.

[0034] like Figures 1 to 4 The lifting device 3 includes a hydraulic motor 31, a reducer 32, a rope reel 33, a mounting base 34, and steel wire ropes. Mounting ears 37 are provided on the mounting base 34 and are fixed to the boom 11 of the excavator arm. The mast 2 is slidably connected to the mounting base 34. The hydraulic motor 31, priority valve 4, speed proportional valve 5, and flow divider valve 6 are all fixed to the mounting base 34. The hydraulic motor 31 is linked to the rope reel 32 via the reducer 32. Two steel wire ropes are wound on the rope reel 33 and positioned on both sides of the axial direction of the rope reel. One end of each steel wire rope is fixed to the rope reel 33, and the other end is fixed to the upper and lower ends of the mast 2, respectively.

[0035] Combination Figure 5 To facilitate the fixing of both ends of each wire rope, a locking block 331 is fixed on the inner circumferential wall of the rope winding disc 33, and a fixing buckle 22 is fixed at both ends of the mast 2. The locking block 331 and the fixing buckle 22 are connected to both ends of each wire rope respectively.

[0036] Combination Figures 6 to 8 To better wind and unwind the wire rope, the lifting device 3 is also equipped with a rope coiling ring 351. A spiral groove is provided on the outer circumferential wall of the winding disc 33. The rope coiling ring 351 engages with the spiral groove. The winding disc 33 rotates and drives the rope coiling ring 351 to move along the axial direction of the winding disc. The two wire ropes are wound in the spiral groove along the spiral direction, and the two wire ropes are respectively placed on both sides of the rope coiling ring 351.

[0037] This unique coiled rope design effectively prevents the wire rope from crossing, overlapping, or becoming disordered during the winding process, ensuring that the wire rope is wound and released in an orderly manner. In particular, the coiled rope ring 351 is set up so that the axial displacement of the coiled rope ring 351 when the coiled rope ring 33 rotates allows the wire rope to be better wound and released along the spiral groove.

[0038] A guide shaft 352 is fixed on the mounting base 34. The guide shaft 352 is arranged along the axial direction of the rope winding disc 33, and the rope guide 35 passes through the guide shaft 352. The guide shaft is a rectangular shaft, and a bushing fixed on the rope guide 35 is inserted into the rectangular shaft. This structure allows the rope guide to slide smoothly axially on the guide shaft. At the same time, the cooperation between the rectangular shaft and the bushing prevents the rope guide from rotating or deviating during sliding, ensuring that the rope guide always maintains the correct posture to guide the wire rope. When the rope winding disc 33 rotates, it can drive the rope guide 35 to move axially along the guide shaft 352, realizing the synchronous movement of the rope ring and the rope guide. This better adapts to the needs of the wire rope at different winding positions, further improving the orderliness and reliability of the wire rope winding.

[0039] A rope guide 35 is provided above the rope reel 33. The rope guide 35 has two guide grooves 350 for threading the wire rope, and the coiled rope ring 351 is fixed to the rope guide 35. The rope guide 35 further guides the inlet and outlet directions of the wire rope, allowing it to enter or exit the spiral grooves more smoothly, reducing friction and wear during winding and unwinding, and improving the service life and operational reliability of the wire rope. At the same time, the guide grooves prevent the wire rope from deviating or jumping out of the spiral grooves, enhancing the safety of equipment operation.

[0040] The mounting base 34 is also equipped with two rope guide pulleys 36 for guiding the two wire ropes. The rope guide pulleys can reduce the friction and wear of the wire ropes from the rope reel to the mast connection, making the wire ropes run more smoothly, reducing energy loss, and also helping to maintain uniform tension of the wire ropes, further ensuring the stability of mast raising and lowering.

[0041] like Figure 9 The mounting base 34 is equipped with a slide rail 341. The mast 2 is slidably connected to the slide rail 341 on the mounting base 34 through the cooperation of the slider. The cooperation between the slide rail and the slider ensures that the mast maintains stable and linear movement during the lifting process, avoiding swaying or deviation of the mast during lifting, and improving the safety and accuracy of the operation.

[0042] In actual operation, when the operator needs to raise or lower the mast, the hydraulic oil drive unit of the excavator body 1 is first started to generate high-pressure hydraulic oil.

[0043] Combination Figure 10 and Figure 11 This utility model is mounted on a mast based on an excavator structure. When in use, it is used in conjunction with a priority valve 4, a speed control proportional valve 5, and a flow divider valve 6. A hydraulic oil drive unit for driving the excavator arm and the mixing head is provided on the excavator body 1. The lifting device 3 is mounted on the excavator arm to drive the mast 2 to rise and fall. The mast 2 is slidably connected to the lifting device 3.

[0044] Priority valve 4, speed proportional valve 5 and flow divider valve 6 are all located on lifting device 3. The P port and T port of priority valve 4 are respectively connected to the oil supply and return lines in the hydraulic oil drive unit. The CF port and EF port are respectively connected to speed proportional valve 5 and flow divider valve 6. Speed ​​proportional valve 5 is connected to the hydraulic drive component (i.e., hydraulic motor) in lifting device 3. Flow divider valve 6 is connected to the hydraulic drive component (i.e., hydraulic motor) of stirring head 21.

[0045] When the mast 2 is not raising or lowering, that is, when the lifting device 3 does not require oil, all the hydraulic oil provided by the excavator's hydraulic oil drive unit is supplied to the EF port of the priority valve 4, and after passing through the diverter valve 6, it drives the two stirring heads 21 to rotate.

[0046] When mast 2 is raised or lowered, i.e., when the lifting device 3 requires oil, the hydraulic oil P supplied by the hydraulic oil drive unit is preferentially supplied to the CF port of the priority valve 4. At this time, the amount of oil supplied to the EF port is reduced, thus lowering the speed of the stirring head, but the stirring head will not stop rotating. The oil supply ratio from the priority valve 4 to the lifting device 3 is controlled by the speed regulating proportional valve 5, which drives the hydraulic motor 31 in the lifting device 3 to achieve the raising and lowering of mast 2.

[0047] The specific operating method is as follows: High-pressure hydraulic oil enters the oil supply port (i.e., oil inlet) of the priority valve 4 through the oil supply circuit. Due to the control logic of the priority valve, when the mast needs to be raised or lowered, the hydraulic oil flows preferentially to the CF port, and after being regulated by the speed-regulating proportional valve 5, it enters the hydraulic motor 31. The hydraulic motor 31 rotates under the drive of the hydraulic oil, and the speed is reduced and the torque is increased by the reducer 32, which drives the rope reel 33 to rotate. The rotation of the rope reel 33 causes the wire rope wound on it to be unwound and retracted, thereby driving the mast 2, which is fixed to the other end of the wire rope, to perform raising and lowering movements. The speed-regulating proportional valve 5 can adjust the pressure of the control oil LS according to the electronic control signal to adjust the amount of oil distributed by the hydraulic priority valve to the priority oil port CF, thereby realizing the speed regulation of the bidirectional pressure winch.

[0048] Meanwhile, due to the action of the priority valve 4, although the amount of hydraulic oil flowing to the EF port is reduced, a certain amount of oil can still be distributed to the two mixing heads 21 through the diversion valve 6, allowing them to continue rotating at a low speed. This design ensures that the mixing heads can continue to operate during the mast raising and lowering process, avoiding problems such as segregation or initial setting of concrete due to shutdown, and ensuring the continuity and quality of construction.

[0049] When the mast does not need to be raised or lowered, all the hydraulic oil supplied by the hydraulic oil drive unit flows to the EF port of the priority valve 4, and is evenly distributed to the two mixing heads through the diverter valve 6, so that they can carry out efficient mixing operations at normal speed, give full play to the mixing function of the excavator, and improve work efficiency.

[0050] Priority valve 4 is the core control element of the entire hydraulic circuit system. Its inlet P is connected to the oil supply circuit of the hydraulic oil drive unit, its T port is connected to the return oil circuit, its CF port is connected to the hydraulic motor 31 in the lifting device 3 through the speed regulating proportional valve 5, and its EF port is connected to the hydraulic drive component of the stirring head 21 through the flow divider valve 6. This connection method allows the hydraulic oil to be rationally distributed to different actuators according to the control logic of the priority valve.

[0051] The priority valve 4 operates on the principle of priority control based on pressure and flow. When the mast 2 is not raising or lowering, the lifting device 3 does not require oil. At this time, all the hydraulic oil supplied by the excavator's hydraulic oil drive unit is supplied to the EF port of the priority valve 4, and after passing through the diverter valve 6, it drives the two agitator heads 21 to rotate. The function of the diverter valve 6 is to evenly distribute the hydraulic oil to the two agitator heads, ensuring that the two agitator heads can operate stably at the same speed, achieving a uniform mixing effect, improving work efficiency and project quality.

[0052] When mast 2 is raised or lowered, the lifting device 3 requires oil. The hydraulic oil provided by the hydraulic oil drive unit is preferentially supplied to the CF port of the priority valve 4. At this time, the amount of oil supplied to the EF port is reduced, and the speed of the mixing head is reduced accordingly. However, since some hydraulic oil still flows to the EF port, the mixing head will not stop rotating, which ensures the continuity of the construction process, avoids problems such as concrete segregation caused by the stopping of the mixing head, and improves the construction quality.

[0053] The oil supply ratio from the priority valve 4 to the lifting device 3 is controlled by the speed proportional valve 5. The speed proportional valve 5 can adjust the oil quantity according to actual needs and control signals, thereby precisely controlling the speed of the hydraulic motor 31 and achieving stepless adjustment of the mast 2's lifting speed. This speed control method allows operators to flexibly adjust the mast's lifting speed according to different construction conditions and requirements, improving the equipment's adaptability and ease of operation.

[0054] An tilt sensor is installed on mast 2 to measure the verticality of the mast in real time so that the operator can adjust the verticality.

[0055] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements can be made without departing from the principle of the present utility model, and these improvements should also be considered within the protection scope of the present utility model.

Claims

1. A mast lifting device, characterized in that: Includes a hydraulic motor (31), a reducer (32), a rope reel (33), a mounting base (34), and steel wire ropes. The hydraulic motor (31) is fixed on the mounting base (34). The hydraulic motor (31) is linked to the rope reel (33) through the reducer (32). Two steel wire ropes are wound on the rope reel (33) and placed on both sides of the axial direction of the rope reel. One end of each steel wire rope is fixed to the rope reel (33), and the other end is fixed to the upper and lower ends of the mast (2), respectively.

2. The mast lifting device as described in claim 1, characterized in that: The lifting device also includes a coiled rope ring (351). A spiral groove is provided on the outer circumferential wall of the coiled rope disc (33). The coiled rope ring (351) meshes with the spiral groove. The coiled rope disc (33) rotates and drives the coiled rope ring (351) to move along the axial direction of the coiled rope disc. Two steel wire ropes are wound in the spiral groove, and the two steel wire ropes are respectively placed on both sides of the coiled rope ring (351).

3. The mast lifting device as described in claim 2, characterized in that: A rope guide (35) is provided above the rope reel (33), and two rope guide grooves (350) for threading steel wire ropes are provided on the rope guide (35). The rope loop (351) is fixed to the rope guide (35).

4. The mast lifting device as described in claim 3, characterized in that: The mounting base (34) is fixed with a guide shaft (352), which is arranged along the axial direction of the rope winding disc (33), and the rope guide (35) is threaded on the guide shaft (352).

5. The mast lifting device as described in claim 4, characterized in that: The guide shaft (352) is a rectangular shaft. A bushing is fixed on the rope guide (35). The bushing is inserted into the rectangular shaft and rotates around the rope disc (33) to drive the rope guide (35) to move axially along the guide shaft (352).

6. The mast lifting device as described in claim 1, characterized in that: The mounting base (34) is provided with two rope guide wheels (36) for guiding the two steel wire ropes.

7. The mast lifting device as described in claim 1, characterized in that: The mounting base (34) is provided with a slide rail (341), and the mast (2) is provided with a slider, which cooperates with the slide rail (341).