Mechanism for Adjusting Tension of Flexible Transmission Component
20210239195 · 2021-08-05
Inventors
Cpc classification
F16H2007/0808
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0891
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2007/0842
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A mechanism for adjusting the tension of a flexible transmission component, comprising: a driver; a follower, with a center distance between the center of the driver and the center of the follower; a flexible transmission component, which is a closed loop passing around the driver and the follower; a first base connecting with the driver, wherein aid first base can move in a direction of movement parallel to the center distance and away from and/or forward to the follower; a second base connecting with the follower; and at least one elastic component connecting the first base and the second base.
Claims
1. A mechanism for adjusting the tension of a flexible transmission component, comprising: a driver; a follower, with a center distance between a center of said driver and a center of said follower; a flexible transmission component, which is a closed loop passing around said driver and said follower; a first base connecting with said driver, wherein said first base can move in a direction of movement parallel to said center distance and away from or forward to said follower; a second base connecting with said follower; and at least one elastic component connecting said first base and said second base, and said at least one elastic component is arranged between said driver and said follower.
2. The mechanism according to claim 1, wherein said mechanism can be applied to a PTZ camera.
3. The mechanism according to claim 1, wherein said driver is a motor selected from an electric motor, or a stepper motor.
4. The mechanism according to claim 1, wherein said follower is a pulley or a chain wheel.
5. The mechanism according to claim 1, wherein said flexible transmission component is a rope or a belt.
6. The mechanism according to claim 1, wherein said elastic component is a spring selected from a compression spring or an extension spring.
7. The mechanism according to claim 1, wherein said first base is a moveable platform.
8. A mechanism for adjusting the tension of a flexible transmission component, comprising: a driver; a follower, with a center distance between a center of said driver and a center of said follower; a flexible transmission component, which is a closed loop passing around said driver and said follower; a first base connecting with said driver, wherein the first base can move in a direction of movement parallel to said center distance and away from or forward to said follower; a second base connecting with said follower; and at least one elastic component connecting said first base and said second base, and said driver is arranged between said follower and said at least one elastic component.
9. The mechanism according to claim 8, wherein said mechanism can be applied to a PTZ camera.
10. The mechanism according to claim 8, wherein said driver is a motor selected from an electric motor, or a stepper motor.
11. The mechanism according to claim 8, wherein said follower is a pulley or a chain wheel.
12. The mechanism according to claim 8, wherein said flexible transmission component is a rope or a belt.
13. The mechanism according to claim 8, wherein said elastic component is a spring selected from an extension spring or a compression spring.
14. The mechanism according to claim 8, wherein said first base is a moveable platform.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE INVENTION
[0027]
[0028]
[0029] The present disclosure, however, provides a mechanism for adjusting the tension of a flexible transmission component by at least one elastic component, which has a longer service life, a lower cost and a reasonable space demand.
Examples
[0030] Although the present disclosure has been described in the following examples, it should be understood that various modifications, additions and alterations may be made to the present disclosure by one skilled in the art without departing from the spirit and scope of the present disclosure as defined in the appended claims.
[0031]
[0032] In this example shown in
[0033] In the situation that the first base 35 is moveable, when the flexible transmission component 33 loosens, the elastic components 34 will drive the first base 35 and the driver 31 connected therewith move in the direction of movement 351 and away from the follower 32 by the restoring force of the elastic components 34. At this time, a longer center distance (a′) between the center of the driver 31 and the center of the follower 32, which is longer than the original center distance (a), is formed, and the flexible transmission component 33 can adjust its tension to an adequate status at any time because of the restoring force of the elastic components 34.
[0034] In the transmission mechanism 3, the elastic components 34 are arranged between the first base 35 (and the driver 31 therewith) and the second base 36 (and the follower 32 therewith), so the tension of the flexible transmission component 33 can be adjusted by adjusting the center distance between the driver 31 and the follower 32, such as from the center distance (a) to the center distance (a′). Therefore, the transmission mechanism 3 resolves the problem that the flexible transmission component loosens in the prior art without increasing the force applied on the bending flexible transmission component.
[0035] Moreover, in the example shown in
[0036] The conventional technique, such as the transmission mechanism shown in
[0037]
[0038] In this example shown in
[0039] In the situation that the first base 45 is moveable, when the flexible transmission component 43 loosens, the elastic components 44 will drive the first base 45 and the driver 41 connected therewith move in the direction of movement 451 and away from the follower 42 by the restoring force of the elastic components 44. At this time, a longer center distance (b′) between the center of the driver 41 and the center of the follower 42, which is longer than the original center distance (b), is formed, and the flexible transmission component 43 can adjust its tension to an adequate status at any time because of the restoring force of the elastic components 44.
[0040] In the transmission mechanism 4, since the first base 45 is arranged on or in the second base 46, the elastic components 44 connecting the first base 45 and the second base 46 are not arranged between the driver 41 and the follower 42. On the contrary, the driver 41 is arranged between the elastic components 44 and the follower 42. In other words, the elastic components 44 connect the outer side face of the first base 45 and the inner side face of the second base 46. The tension of the flexible transmission component 43 can be adjusted by adjusting the center distance between the driver 41 and the follower 42. Therefore, the transmission mechanism 4 resolves the problem that the flexible transmission component loosens in the prior art without increasing the force applied on the bending flexible transmission component.
[0041] Moreover, in the example shown in
[0042] The conventional technique, such as the transmission mechanism shown in
[0043] The Mechanism of the Present Disclosure can be Applied to a PTZ Camera:
[0044] The present disclosure mechanism for adjusting the tension of the flexible transmission component of the present disclosure can be applied to a pan-tilt-zoom camera (PTZ camera), as described below.
[0045] Generally, in the PTZ camera, the force of a stepper motor is transmitted to a chain wheel by a belt, in which a chain wheel and a lens are directly or indirectly connect to each other. Therefore, when the chain wheel receives the force from the stepper motor, the lens will rotate. Theoretically, when the stepper motor rotates a step (i.e., an angle); the chain wheel will correspondingly rotate a step. However, when the “tightness” of the belt is inadequate, and the belt does not mesh with the chain wheel, the sliding phenomenon will occur between the belt and the chain wheel because the rotation steps of the chain wheel are not completely equal to the rotation steps of the stepper motor (also named “out-of-step” or “losing step”). When this transmission error accumulates with time and the out-of-step is apparent on a specific step, the slippage phenomenon will occur, which means the rotation angle of the lens is less than the expected angle from the output of the stepper motor.
[0046] The term “tightness” means the tension of the belt, which is produced after the belt is passing around the stepper motor and the chain wheel. The tension of the belt results from the center distance of the stepper motor and the chain wheel (i.e., the distance between the center of the stepper motor and the center of the chain wheel).
[0047] The tension of the belt is not high enough because the assembly tolerance results in that the center of the chain wheel is not the rotation center of the chain wheel, so the center distance between the chain wheel and the driver changes over the rotation of the chain wheel, and the center distance changes slightly. The tension of the belt is not high enough because of this change.
[0048] The inadequate tension may lead to the following problem: when the stepper motor stops suddenly while the lens is rotating, the slippage phenomenon may happen due to the inertia of the lens rotation. Similarly, when the stepper motor starts suddenly while the lens is motionless, the slippage phenomenon may happen.
The Example of the Present Disclosure Applying to PTZ Camera
[0049] In an example not shown in any accompanied figures, the transmission mechanism of PTZ camera is used to carry forward the lens. The transmission mechanism of the PTZ camera includes: a stepper motor as the driver, a chain wheel as the follower, a belt as the flexible transmission component, a compression spring as the elastic component, a moveable platform as the first base, and an immovable platform as the second base; with an original center distance between the center of the stepper motor and the center of the chain wheel; and the moveable platform has a direction of movement parallel to the original center distance and away from the chain wheel. A fictitious median line passing through the center of the moveable platform and perpendicular to the direction of movement divides the moveable platform into bilateral sides of the median line: one is the side of said moveable platform closer to said chain wheel, and the other side is the side of said moveable platform farer to said chain wheel. The moveable platform connects with said stepper motor; the immovable platform connects with said chain wheel; the belt which is a closed loop passing around said stepper motor and said chain wheel; and at least one compression spring is arranged between the side of said moveable platform closer to said chain wheel and said chain wheel. This transmission mechanism can be used to adjust the tension of the belt.
[0050] The operation of the transmission mechanism that can be used to adjust the tension of the belt in a PTZ camera is demonstrated hereinafter.
[0051] First, the belt is installed passing around the stepper motor and the chain wheel. Second, the stepper motor coverts the electricity into a driving force and rotates. And then, the chain wheel indirectly receives the force which is transmitted by the tension (i.e., tensile force) of the belt, to rotate. The compression spring is in a compression status because the force from the moveable platform and the immovable platform acts on the compression spring.
[0052] When the belt loosens, the restoring force of the compression spring will drive the moveable platform and the stepper motor connected therewith move in the direction of movement and away from the chain wheel. Therefore, a new center distance is formed between the stepper motor and the chain wheel, and the new center distance is longer than the original center distance.
[0053] Because the center distance between the stepper motor and chain wheel becomes longer, the belt passing around the stepper motor and the chain wheel as a closed loop can adjust its own tension to the most adequate status.
[0054] The mechanism can adjust the center distance between the stepper motor and chain wheel by the restoring force of the spring, so the tension of belt can be adjusted at any time, the loosening of the belt can be avoided, and the slippage phenomenon or out-of-gear phenomenon can be further prevented.
[0055] It will be understood that the aspects of the present invention will become readily apparent to those skilled in the art from the detailed description. The drawings and detailed description, especially the size, shape and distance of the machine elements, are to be regarded as illustrative in nature and not as restrictive.