Not applicable.
The present invention relates generally to a winch, and more particularly to the disclosure of an innovative brake winch structure type with reverse release and self-locking function.
The winch of the present invention refers to a manual instrument with a hand (or power) driven rotating disk for rolling cable wire or stretching rope to assist the user to complete a specific work (e.g. hanging, pulling, etc.).
In the design of the known structure type of winch, considering operational safety, to avoid reverse motion of rotating disk released from hand as the rolling cable wire or rope drags or hangs a weight inducing dangerous accidents, a trip is mostly arranged to chuck the mechanism of unidirectional ratchet gear wheel for the rotating disk in one direction. In other words, the rotating disk only rotates in one direction (e.g. clockwise), when the rotating disk is to rotate in opposite direction (e.g. counterclockwise), it will not act as the trip chucks the rotating disk.
Following said operating characteristic of the known winch structure, to rotate the rotating disk in opposite direction when the user is operating the manual winch, the trip must be switched to release mode, and then the disk is reversed turn by turn by reversing the crank handle. However, if the user has to accelerate the contra-rotation, which cannot be implemented in fact, the only way is still to reverse the crank handle, so it is difficult to meet multiple application requirements, this is an important technical topic that deserves further attention.
The primary object of the present invention is to provide a brake winch with reverse release and self-locking function. The technical problem to be solved is to develop a novel winch structure type with more ideal practicability.
Based on said object, the technical characteristic of problem solving of the present invention is that the brake winch includes: a housing, including a first side wall and a second side wall spaced apart. An accommodating space is configured between the first side wall and the second side wall and a rope exporting part formed in the accommodating space. An auxiliary bracket part is configured outside the second side wall. An auxiliary accommodating space is configured between the auxiliary bracket part and the second side wall. The auxiliary bracket part is configured with a shaft hole.
A rotating disk is screwed in between the first side wall 11 and the second side wall of the housing, so that the rotating disk is located in the accommodating space, the rotating disk is wound with a rope.
A main shaft is screwed in between the first side wall and the second side wall of the housing, and the main shaft is parallelly disposed near the spacing on one side of the rotating disk. The main shaft has a first end and a second end, and the first end and the rotating disk are interlinked by a gear set.
A screw adapter is screwed on the second side wall of the housing. The screw adapter includes an inner connection end and an external end, wherein the inner connection end forms a sleeve joint part which is assembled with the second end of the main shaft to form synchronous rotation. The external end is configured with a thread groove.
A driving screw is screwed in the shaft hole of the auxiliary bracket part in an axially displaceable state, and the driving screw and the screw adapter are aligned on central axis. The driving screw is configured with a driven end, a stud section, a round rod section between the driven end and the stud section, and a pressure flange and an axially arranged section between the round rod section and the driven end. The axially arranged section is screwed in the shaft hole. The stud section faces towards the thread groove of the screw adapter, and as the axial displacement of the driving screw is matched with the difference of forward and reverse rotation, a screwing transmission mode or a release mode is configured between the stud section and the thread groove.
A clamping plate is configured with a circular shaft hole screwed on the round rod section of the driving screw. The clamping plate is configured with several unidirectional ratchets arranged annularly at intervals.
A unidirectional chucking piece is assembled in the auxiliary accommodating space and adjacent to the clamping plate. The unidirectional chucking piece elastically abuts on the corresponding unidirectional ratchet of the clamping plate in normal state, so that the clamping plate only rotates in one direction, its reverse rotation will be chucked.
A friction driving means is provided, making the pressure flange of the driving screw. The clamping plate and the screw adapter in a tightly synchronized state when the driving screw is displaced towards the screw adapter.
In terms of the main effect and advantage of the brake winch of the present invention, a temporary release mode between the driving screw and screw adapter can be formed by reversing operation of the driven end of driving screw in the course of operation. In this mode, the main shaft and rotating disk can meet the requirement for accelerating contra-rotation under the reverse drag effect of rope, so as to enhance the working efficiency, and when the brake winch is loaded, if the operational unit for the driven end of driving screw (e.g. crank handle) is removed, the winch braking function is not influenced, the operational safety remains, meeting multiple requirements in the use of winch products, there are practical progressiveness and better benefit of industrial use.
Another object of the present invention is the technical characteristic that an elastic underpropping component is assembled between the pressure flange of the driving screw and auxiliary bracket part, the pressure flange is elastically pushed towards the screw adapter in normal state, with the assistance of the elastic underpropping component, the driving screw elastically abuts on the screw adapter in normal state, so that the stud section can be easily screwed in the thread groove.
The brake winch comprises a housing 10, including a first side wall 11 and a second side wall 12 spaced apart. An accommodating space 13 is configured between the first side wall 11 and the second side wall 12 and a rope exporting part 14 is formed in the accommodating space 13. An auxiliary bracket part 15 is configured outside the second side wall 12. An auxiliary accommodating space 16 is configured between the auxiliary bracket part 15 and the second side wall 12, and the auxiliary bracket part 15 is configured with a shaft hole 17. A rotating disk 20 is screwed in between the first side wall 11 and the second side wall 12 of the housing 10, so that the rotating disk 20 is located in the accommodating space 13. The rotating disk 20 is wound with a rope 21. A main shaft 30 is screwed in between the first side wall 11 and the second side wall 12 of the housing 10, and the main shaft 30 is parallelly disposed near the spacing on one side of the rotating disk 20. The main shaft 30 has a first end 31 and a second end 32, and the first end 31 and the rotating disk 20 are interlinked by a gear set 33. A screw adapter 40 is screwed on the second side wall 12 of the housing 10. The screw adapter 40 includes an inner connection end 41 and an external end 42. The inner connection end 41 forms a sleeve joint part 43 which is assembled with the second end 32 of the main shaft 30 to rotate synchronously. The external end 42 is configured with a thread groove 44. A driving screw 50 is screwed in the shaft hole 17 of the auxiliary bracket part 15 in an axially displaceable state, and the driving screw 50 and the screw adapter 40 are aligned on central axis. The driving screw 50 is configured with a driven end 51, a stud section 52, a round rod section 53 between the driven end 51 and the stud section 52, and a pressure flange 54 and an axially arranged section 55 between the round rod section 53 and the driven end 51. The axially arranged section 55 is screwed in the shaft hole 17. The stud section 52 faces towards the thread groove 44 of the screw adapter 40, and as the axial displacement of the driving screw 50 is matched with the difference of forward and reverse rotation, a screwing transmission mode or a release mode is configured between the stud section 52 and the thread groove 44. A clamping plate 70 is configured with a circular shaft hole 71 screwed on the round rod section 53 of the driving screw 50. The clamping plate 70 is configured with several unidirectional ratchets 72 arranged annularly at intervals. A unidirectional chucking piece 80 is assembled in the auxiliary accommodating space 16 and adjacent to the clamping plate 70. The unidirectional chucking piece 80 elastically abuts on the corresponding unidirectional ratchet 72 of the clamping plate 70 in normal state, so that the clamping plate 70 only rotates in one direction, and its reverse rotation is chucked. A friction driving means is provided, which makes the pressure flange 54 of the driving screw 50, the clamping plate 70 and the screw adapter 40 in a tightly synchronized state when the driving screw 50 is displaced towards the screw adapter 40.
Wherein the driven end 51 of the driving screw 50 is assembled with a crank handle 60, the crank handle 60 is rotated by a user to drive the driving screw 50.
As shown in
As shown in
As shown in
Further, an assistant component (not shown in the figure) can be assembled between the pressure flange 54 of the driving screw 50 and the auxiliary bracket part 15 to make the driving screw 50 approach the screw adapter 40 in normal state. The assistant component in this case can be but not limited to a magnetic body, which generates pushing or pulling force by the principle of magnetic attraction or repulsion.
Further, the pressure flange 54 is adjacent to the round rod section 53.
Based on said structural composition and technical characteristic, in terms of said preferred embodiment, the practical application of the brake winch with reverse release and self-locking function disclosed in the present invention is shown in
As shown in