1. Field of Invention
The invention relates to a tightener for a binding strap and, in particular, to a device that tightens a binding strap.
2. Related Art
The above-mentioned tightener has one acting bar (not shown) inserting into the through hole 84 of the driving element 83. By rotating the driving element 83, the axle 82 is driven to gradually tighten the binding strap 86. To release it, one has to depart the stopping block 88 away from the teeth of the ratchet 87. In this case, the axle can rotate freely and one can readily pull out the binding strap 86. However, it is not easy to move the stopping block 88 away when the ratchet 87 tightly snaps the binding strap. One has to exert a force on the acting bar toward the driving direction in order for the ratchet 87 to slightly relax for the user to relieve the stopping block 88. This shows its inconvenience and danger in uses.
To solve the above-mentioned problem with the conventional tightener, there is another design of the tightening structure for the binding strap in the prior art. As shown in
When operating the above-mentioned tightener, the user inserts an acting bar (not shown) into one through hole 941 of the driving element 94. By moving the driving element 94 reciprocally in the vertical direction, the engaging block 944 rotates the rotating axle 92 of the ratchet in a single direction. The tooth 96 prevents the ratchet from rotating backwards. This gradually tightens the binding strap. To release the binding strap, the user has to depart the engaging block 944 from the ratchet 95. By rotating the driving element 94 now, the cam part 943 pushes the tooth 96 away from the ratchet 95. This relieves the binding strap.
Nonetheless, the second conventional tightener has more complicated structure and components. This renders higher component and assembly costs. The tighteners thus produced are more expensive and less attractive to consumers. It is an objective of the invention to solve these problems.
In view of the foregoing, the invention provides a tightener for a binding strap that can simplify its components and reduce the production cost.
To achieve the above-mentioned objective, the invention includes a base, a ratchet and a driving element for driving the ratchet wheel.
The base has two opposite sidewalls, each of which has an axle hole. A rotating axle goes through the axle holes of the two sidewalls. The ratchet is fixed on the rotating axle protruding from the sidewall of the base. The sidewall opposite to the ratchet is pivotally installed with a tooth that engages and limits the ratchet to rotate in a single direction. The width of the ratchet is smaller than that of the tooth. The ratchet and the tooth engage with each other on the inner side near the sidewall. The rotating axle has a long cutting groove in the base for the binding strap to go through.
When driving, the driving element is coaxially mounted on the end of the rotating axle on the outer side of the ratchet. The driving element is pivotally provided with a ratchet tooth engaging with the ratchet. The driving element is protruded with a holding part for imposing a force. A cam part is provided to disengage the tooth and the ratchet. When the cam part is functioning, it urges against the outer side of the tooth relative to the thickness of the ratchet. The end of the driving element opposite to the holding part has a blocking part that blocks the tooth in the driving direction.
The invention will become more fully understood from the detailed description given herein below illustration only, and thus is not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
Please refer to
The base 1 has two opposite sidewalls 11, each of which has an axle hole 111. A rotating axle 12 goes through the axle holes 111 of the two sidewalls 11. A ratchet 13 is mounted on the rotating axle 12 protruding from the sidewall 11 of the base 1. A tooth 14 is provided on the sidewall 11 above the ratchet 13. This tooth 14 engages by its inner side with and limits the ratchet 13 to rotate in a single direction. The rotating axle 12 in the base 1 has a long cutting groove 121 for the insertion of the binding strap.
In this embodiment, the rotating axle 12 is fixed on the other end of the ratchet 13. One limiting element 15 goes through the rotating axle 12 outside the sidewall 11 of the base 1. It restricts the rotating axle 12 within the axle holes 111 of the two sidewalls 11.
The driving element 2 drives the ratchet 13 to rotate. When the driving element 2 is driving, it is coaxially mounted on the end of the rotating axle 12 on the outer side of the ratchet 13. The driving element 2 is pivotally provided with a ratchet tooth 21 that engages with the ratchet 13. The driving element 2 is extended outwards with a holding part 22 for the exertion of a force. A cam part 23 is provided to push the tooth 14 so that the tooth 14 disengages with the ratchet 13. The other end opposite to the holding part 22 of the driving element has a blocking part 24. The blocking part 24 blocks the tooth 14 in the driving direction of the driving element 2.
The width of the ratchet 13 in this embodiment is smaller than that of the tooth 14. As the cam part 23 pushes, it urges against the outer side of the tooth 14 relative to the ratchet 13.
In this embodiment, the driving element 2 has a mounting part 25 between the blocking part 24 and the ratchet 21. The driving element 2 is coaxially mounted on the rotating axle 12 by the mounting part 25. The cam part 23 is disposed on the side of the mounting part 25 between the ratchet 21 and the blocking part 24. The mounting part 25 in this embodiment is a through hole. The driving element 2 is mounted on the outer ring of the rotating axle 12 by this mounting part 25 (e.g., the through hole).
A pivotal bar 141 protrudes from the sidewall 11 with the ratchet 13 on the base 1 in this embodiment. The tooth 14 is pivotally connected with the pivotal bar 141 using a pivotal part 142. The tooth 14 engages with the ratchet by its inner side. Its outer side is urged by the cam part 23 when the cam part 23 pushes. When the driving part 2 is driving, the end surface 241 of the blocking part 24 stops at the side edge of the pivotal part 142 of the tooth 14.
According to this embodiment, the driving element 2 has a pivotal bar 211. The ratchet tooth 21 is pivotally connected with the pivotal bar 211 by a pivotal part 212. A pulling part 213 extends from the ratchet tooth 21, having a weight larger than that of the ratchet tooth 21. The pulling part 213 swings downwards by its own weight. At the downward position of the pulling part 213, the ratchet tooth 21 protrudes towards and engages with the ratchet 13.
As shown in
The operating principle of the disclosed tightener is to mount the driving element 2 on the rotating axle 12 by its mounting part 25 (through hole). The pulling part 213 enables the ratchet tooth 21 to engage with the ratchet 13. In this case, the holding part 22 on the driving element 2 forms a force arm. As shown in
The cam part 23 faces downwards relative to the holding part 22. To prevent the tooth 14 from being pushed away from the ratchet 13 due to over-pulling the driving element 2, during the process of tightening the binding strap the driving element 2 is restricted to rotate within certain angles. This is achieved by pushing the edge of the cam part 23 to the side edge of the pivotal part 142 of the tooth when the holding part 22 of the driving element 2 rotates to some angle.
As shown in
According to the above description, one should be able to see the advantages of the invention in that the components in the base 1 are simpler than the conventional tightener. Several tighteners can be driven by a single driving element 2 to tighten or loosen the binding strap. Therefore, the cost of tighteners can be lowered to attract more consumers.
Of course, the invention has many other examples that only differ in details. Please refer to
The rotating axle 12 in this embodiment is positioned by a spring pin 16 on the end of the ratchet 13 outside the sidewall 11 of the base 1. The two semi-circular boards 123 outside the sidewall 11 of the base 1 on the other end is penetrated with and positioned by a bent bar pin 17.
Besides, in this embodiment the width of the ratchet 13 on the base 1 is roughly the same as that of the tooth 14. A pushing part 231 for pushing the tooth 14 outside the ratchet 13 protrudes from the cam part 23 of the driving element 2 towards the tooth 14. The blocking part 24 is protruded with a protruding section 242 towards the tooth 14 in order to block the tooth 14.
With the structure in this embodiment, the driving element 2 is mounted on the rotating axle 12 consisted of two semi-circular boards 123 using the mounting part 25, which is also a through hole. The pushing part 231 of the cam part 23 pushes the tooth 14, so that the tooth 14 disengages with the ratchet 13. The blocking part 24 blocks the tooth by the protruding section 242, thereby achieving the same effect as in the first embodiment.
Please refer to
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to people skilled in the art. Therefore, it is contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
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