The present invention relates to a linear driving mechanism, and particularly, to a linear driving mechanism with variable stroke varied by a slanted moving shaft.
Handheld massagers can relieve muscle tension. The massagers currently available on the market are with massaging heads directly connected to propulsion mechanisms driven by motors to perform linear reciprocating movement. However, techniques of prior arts solely allow the motor to drive the massaging head to perform the linear reciprocating movement at varying speeds, that is, the speed of the linear reciprocating movement is adjustable, but the stroke of the linear reciprocating movement is fixed. Therefore, it causes the impact depth of the massaging head immutable, which limits further application of the mechanism.
The objective of the present invention is to provide designs of a linear driving mechanism with variable stroke to solve the aforementioned problem.
In order to achieve the aforementioned objective, the present invention discloses a linear driving mechanism with variable stroke. The linear driving mechanism includes a main body, a linear moving component, a guiding component and a driving component. The main body includes a seat and a moving shaft. The seat includes a rotating shaft whereon a rotating axis is formed. The moving shaft includes a first shaft and a second shaft. The first shaft includes a first end and a second end. The first end is connected to the seat, and the second end is connected to the second shaft. A longitudinal axis of the first shaft is reclined relative to the rotating axis. The linear moving component includes a distal portion and a proximal portion relative to the distal portion. A driving slot is formed on the proximal portion of the linear moving component. The moving shaft passes through the driving slot. The linear moving component is able to move close to or away from the seat along a first direction parallel to the rotating axis. The guiding component is for guiding a linear movement of the linear moving component along a second direction perpendicular to the rotating axis. A guiding slot is formed on the guiding component. The distal portion of the linear moving component is located inside the guiding slot and slidable relative to the guiding slot. The driving component is connected to the rotating shaft. The driving component is used for driving the main body to rotate around the rotating axis. The moving shaft applies a force to a wall of the driving slot to drive the linear moving component to move linearly along the second direction when the driving component drives the main body to rotate. A stroke of the linear movement of the linear moving component along the second direction varies along with a distance between the linear moving component and the seat along the first direction.
According to an embodiment of the present invention, a portion of the first shaft is located inside the driving slot. The first shaft is connected to a periphery of the seat. The longitudinal axis of the first shaft intersects with the rotating axis, and a longitudinal axis of the second shaft coincides with the rotating axis.
According to an embodiment of the present invention, the driving slot is a rectangular hollow slot and includes two long inner walls symmetrical to each other and two short inner walls symmetrical to each other. A length of each long inner wall is greater a diameter of the seat, and a length of each short inner wall is less than the diameter of the seat.
According to an embodiment of the present invention, the first shaft applies the force to the two long inner walls of the driving slot to drive the linear moving component to move linearly along the second direction. When the distance between the linear moving component and the seat along the first direction decreases, a displacement of a movement of the portion of the first shaft along the second direction increases. As a result, it causes an increase of the stroke of the linear movement of the linear moving component along the second direction. Likewise, when the distance between the linear moving component and the seat along the first direction increases, the displacement of the movement of the portion of the first shaft along the second direction decreases. As a result, it causes a decrease of the stroke of the linear movement of the linear moving component along the second direction.
According to an embodiment of the present invention, each long inner wall and each short inner wall are slanted walls.
According to an embodiment of the present invention, the seat is cuboid.
According to an embodiment of the present invention, the driving slot comprises an inner wall. A length of a straight line between any two points on the inner wall passing through the rotating axis is not less than a maximum diameter of the first shaft and not greater than a maximum diameter of the seat.
According to an embodiment of the present invention, a portion of the first shaft is located inside the driving slot. The first shaft applies the force to the inner wall of the driving slot to drive the linear moving component to move linearly along the second direction. When the distance between the linear moving component and the seat along the first direction decreases, a displacement of a movement of the portion of the first shaft along the second direction increases. As a result, it causes an increase of the stroke of the linear movement of the linear moving component along the second direction. Likewise, when the distance between the linear moving component and the seat along the first direction increases, the displacement of the movement of the portion of the first shaft along the second direction decreases. As a result, it causes a decrease of the stroke of the linear movement of the linear moving component along the second direction.
According to an embodiment of the present invention, the first shaft is a stepped shaft or a straight shaft.
According to an embodiment of the present invention, a portion of the second shaft is located inside the driving slot. The longitudinal axis of the first shaft intersects with the rotating axis. The first end of the first shaft is connected to the seat by a movable joint. A first included angle between the first shaft and the seat is adjustable. The second end of the first shaft is connected to the second shaft by another movable joint. A second included angle between the first shaft and the second shaft is adjustable, and a longitudinal axis of the second shaft is parallel to and offset from the rotating axis by adjusting the first included angle and the second included angle.
According to an embodiment of the present invention, the driving slot includes an inner wall. The second shaft applies the force to the inner wall of the driving slot to drive the linear moving component to move linearly along the second direction. A displacement of a movement of the portion of the second shaft along the second direction is not less than a diameter of the portion of the second shaft. When the first included angle decreases and the second included angle increases, the displacement of the movement of the portion of the second shaft along the second direction increases. As a result, it causes an increase of the stroke of the linear movement of the linear moving component along the second direction. Likewise, when the first included angle increases and the second included angle decreases, the displacement of the movement of the portion of the second shaft along the second direction decreases. As a result, it causes a decrease of the stroke of the linear movement of the linear moving component along the second direction.
According to an embodiment of the present invention, the first shaft is connected to the seat and the second shaft by two pivoting joints.
According to an embodiment of the present invention, the liner driving mechanism is adapted for a handheld rehabilitation device or a handheld machine tool.
In summary, in the present invention, the stroke of the linear moving component of the linear driving mechanism can be changed by approaching or distancing the linear moving component and the seat of the main body to increase or decrease the displacement of the moving shaft located inside the driving slot. Therefore, the linear driving mechanism has not only simple structure but also flexibility in use.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Certain terms are used throughout the description and following claims to refer to particular components. As one skilled in the art will understand, manufacturers may refer to a component by different names. This document does not intend to distinguish between components that differ in name but not function. In the following description and in the claims, the terms “include” and “comprise” are used in an open-ended fashion, and thus should be interpreted to mean “include, but not limited to . . . ” In addition, to simplify the descriptions and make it more convenient to compare between each embodiment, identical components are marked with the same reference numerals in each of the following embodiments. Please note that the figures are only for illustration and the figures may not be to scale. Also, the term “couple” is intended to mean either an indirect or direct electrical/mechanical connection. Thus, if a first device is coupled to a second device, that connection may be through a direct electrical/mechanical connection, or through an indirect electrical/mechanical connection via other devices and connections.
Please refer to
Please refer to
A guiding slot 31 is formed on the guiding component 30. The distal portion 21 of the linear moving component 20 is located inside the guiding slot 31 and slidable relative to the guiding slot 31, so that the liner moving component 20 can be guided to move linearly along the X direction substantially perpendicular to the rotating axis L. The driving component 40 is connected to the rotating shaft 13. The driving component 40 is used for driving the main body 10 to rotate around the rotating axis L. Preferably, the driving component 40 can be a motor. As mentioned above, a portion of the second shaft 122 is located inside the driving slot 23 on the proximal portion 22. Since the driving slot 23 includes an inner wall 221, the portion of the second shaft 122 located inside the driving slot 23 can apply a force to the inner wall 221 to move the linear moving component 20 linearly along the X direction back and forth when the driving component 40 drives the main body 10 to rotate. Furthermore, in this embodiment, the portion of the second shaft 122 located inside the driving slot 23 applies force to the inner wall 221 of the driving slot 23 and forms a displacement along the X direction. The displacement can be not less than a diameter of the portion of the second shaft 122 located inside the driving slot 23. In other words, the displacement of the portion of the second shaft 122, which is located inside the driving slot 23 and applies force to the inner wall 221 along the X direction, can be not less than the diameter of the portion of the second shaft 122, which is located inside the driving slot 23.
Please refer to
Please refer to
As shown in
Please refer to
It should be clarified that, in another embodiment, the main body 50 of the second embodiment also can cooperate with the liner moving component 20 of the first embodiment whereon the circular driving slot 23 is formed. The portion of the first shaft 521 located inside the driving slot 23 can apply a force to the inner wall 221 along the X direction to drive the linear moving component 20 to move linearly along the X direction. In this embodiment, a length of a straight line between any two points on the inner wall 221 passing through the rotating axis L can be not less than a maximum diameter of the first shaft 521 and not greater than a maximum diameter of the seat 51. When the linear moving component 20 moves close to or away from the seat 51, the displacement of the portion of the first shaft 521 can be changed to change the stroke S of the linear moving component 60 along the X direction accordingly. In other words, the distance between the linear moving component 20 and the seat 51 along the Y direction can be changed, and as a result, change the stroke S of the linear moving component 60 along the X direction.
Please refer to
In contrast to the prior art, in the present invention, the stroke of the linear moving component of the linear driving mechanism can be changed by approaching or distancing the linear moving component and the seat of the main body to increase or decrease the displacement of the moving shaft located inside the driving slot. Therefore, the linear driving mechanism has not only simple structure but also flexibility in use.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
108120882 | Jun 2019 | TW | national |