The present invention relates to winding technologies of flexible wire-shaped bodies, and more particularly to a wire-shaped body winding mechanism and a motion platform having the same.
2. Description of the Related Art
As for the prior art that flexible wire-shaped bodies such as threads, cords, ropes, water pipes, gas pipes, cables, wires and optical fibers are coiled with a turnplate, a specific example is shown in
In the above related art for preventing the wire-shaped body from being twisted and broken, the air-compression rotary joint can only be applied to a delivery pipeline for compressed air; and although the electronic slip ring and the electric brush can be applied in the technical field of electric power supply, noises produced in operation may cause interference to signal transmission, and thus the electronic slip ring and the electric brush cannot be applied to cables for signal transmission. In other words, the related art for solving the problem of twisting and breaking of a wire-shaped body in the prior art can only be implemented in specific technical scopes and cannot be applied in other technical fields.
In addition, for example, when the wire-shaped body serves as a channel for electric power or signal transmission, the prior art for coiling the wire-shaped body is shown in
Therefore, the present invention is mainly directed to provide a wire-shaped body winding mechanism, to reduce the probability that a wire-shaped body coiled by the mechanism and an external line connected to the mechanism are twisted and broken.
To achieve the above objective, the wire-shaped body winding mechanism provided by the present invention operates on the basis of a base member, and the base member rotates about a main shaft as a rotary shaft to enable winding of the wire-shaped body; two support members are separately arranged on one end of the base member corresponding to the rotary shaft, and the support members move in sync with rotation of the base member, such that the wire-shaped body to be coiled is wound on the support members in an interlaced manner, the base member is made to rotate forward along the coiling direction and thus the wire-shaped body is reversely wound on the support members; and on the contrary, the base member may also be made to rotate in a direction opposite to the coiling direction, and thus the wire-shaped body coiled on the support members is loosened from the support members.
To make the wire-shaped body reversely wound on the support members in an overlapping manner, the support members and the wire-shaped body to be coiled are in rolling or slidable connection so as to move relative to each other.
In the rolling connection, each support member rotates on the base member about a split shaft, and each split shaft is parallel to the main shaft.
In the slidable connection, each support member has a coiling surface with a low friction coefficient for slidable connection to the wire-shaped body to be coiled.
The base member has a first limiting end surface and a second limiting end surface. The second limiting end surface is separated from the first limiting end surface in the axial direction of the main shaft so as to form a limiting space, and the support members are disposed in the limiting space.
Further, to enable the base member to rotate about the main shaft, an elastic member is required to provide the desired driving force, and specifically, the elastic member maybe a volute spring, a torsion spring or any other elastic element that provides an elastic force to enable the base member to rotate forward along the coiling direction.
The present invention also provides a motion platform having the wire-shaped body winding mechanism. The motion platform includes a fixed seat, a movable seat, a wire-shaped body winding mechanism and a wire-shaped body. The movable seat is slidably disposed on the fixed seat and capable of performing reciprocating displacement linearly, the wire-shaped body winding mechanism is fixedly or slidably disposed on the fixed seat, and the wire-shaped body is wound in the winding mechanism and has one end electrically connected to the movable seat.
Referring to
The housing seat (20) has an end body (21), a housing (22) and two axle holes (23). The end body (21) is in the shape of a plate, the housing (22) is in the shape of a hollow cap, the end body (21) is abutted against the housing (22), and an accommodating space of an appropriate volume is formed between the end body (21) and the housing (22) and is used for accommodating constituting elements except the housing seat and accommodating the wire-shaped body to be coiled. The two axle holes (23) are coaxially and correspondingly arranged on the end body (21) and an opposite housing plate (221) of the housing (22) away from the end body.
The base member (30) is located in the accommodating space of the housing seat (20), and has a turnplate (31), an adapter (32), two axle protrusions (33) and two pairs of combining holes (34). The turnplate (31) and the adapter (32) are both in the shape of a plate and are located in parallel in the accommodating space. The turnplate (31) is adjacent to the end body (21), and the adapter (32) is adjacent to the opposite housing plate (221). The axle protrusions (33) are coaxially arranged on one side of the turnplate (31) facing the end body (21) and arranged on one side of the adapter (32) facing the opposite housing plate (221) in a protruding manner, and respectively penetrate the corresponding axle holes (23), such that the turnplate (31) and the adapter (32) rotate relative to the housing seat (20) via the axle protrusions (33) respectively. For the whole base member (30), the coaxially arranged axle protrusions (33) form a main shaft, and the base member (30) rotates about the main shaft. The pairs of combining holes (34) are coaxially distributed on the turnplate (31) and the adapter (32).
A limiting space (35) is formed between the turnplate (31) and the adapter (32) and has an appropriate height, and is specifically arranged between a first limiting end surface (311) of the turnplate (31) facing the adapter (32) and a second limiting end surface (321) of the adapter (32) facing the turnplate (31).
Each support member (40) is disposed between the turnplate (31) and the adapter (32), and has a support shaft (41) and a rolling sleeve (42). The support shafts (41) are rod-like and parallel to each other, the two ends of a rod shaft of each support shaft (41) penetrate the corresponding pair of the combining holes (34), and thus the support shaft (41) is sandwiched and positioned between the turnplate (31) and the adapter (32). Each rolling sleeve (42) is tubular and has an appropriate outer diameter, and is sleeved on the corresponding support shaft (41) and capable of rotating on the sleeved support shaft. In other words, the rod shaft of each support shaft (41) forms a split shaft parallel to the main shaft, and each rolling sleeve (42) is enabled to rotate about the corresponding split shaft.
The elastic member (50) is an annular volute spring sandwiched between the turnplate (31) and the end body (21), the two ends of the volute spring are respectively retained and connected to the turnplate (31) and the end body (21), and therefore a restoring elastic force is provided for rotation of the turnplate (31) and is continuously applied on the base member (30), such that the base member (30) normally rotates in the coiling direction when rotating about the main shaft.
According to the construction of the above members, when the wire-shaped body winding mechanism (10) is used, as shown in
Further, when the wire-shaped body (70) is connected to the wire-shaped body winding mechanism (10) and is not affected by any external force, as shown in
When an external pulling force is applied on the wire-shaped body (70), the base member (30) is driven to rotate in a direction opposite to the coiling direction so as to conform to the change of the relative spatial position when the wire-shaped body (70) is loosened. As shown in
It should be noted that, in addition to the above embodiment where the support members rotate to be in rolling contact with the wire-shaped body, the coiling surface, in contact with the wire-shaped body, of each support member may also be treated properly to have a low friction coefficient, such that the coiling surface is in slidable connection to the wire-shaped body with low friction.
In a specific application example, the wire-shaped body winding mechanism (10) may be applied on a motion platform to coil a cable for signal transmission. Specifically, as shown in
In the above application example, the connector electrically connected to the other end of the wire-shaped body (70) is disposed in the winding mechanism. Besides, as shown in
Further referring to