The invention particularly relates to at least one joint mechanism that comprises at least one body, at least one first roller and at least one second roller mutually positioned on said body and is configured to move any one of said first roller and second roller towards the other so as to allow a beam used particularly in vibration isolation mechanisms to move along at least one first axis at least partially.
The joint is a mechanical structure that provides at least one of at least two parts to be connected to each other allowing relative motion between parts. The joints can vary according to the allowable degrees of freedom and direction of movement. The most common ones are cylindrical joints, spherical joints and sliding joints. Cylindrical joints allow two degrees of freedom, spherical joints allow three degrees of freedom, and sliding joints allow one degree of freedom.
Each of the joint mechanisms used in the state of the art are produced individually and it is not seen that a plurality of joint mechanism with the same function are integrated. For this reason, freedom of movement cannot be provided in the linear axis and rotary axis together. Although there are flexible joint designs that can provide rotation about a virtual point, however, these designs do not include a sliding connection.
Since the sliding joint and the rotary joint do not take place together, this prevents their use in robotic applications or telescopically connected arms (in systems where rotation around a certain axis is allowed but telescopic movement in a vertical axis is also required). Besides, high precision cannot be obtained in applications such as ultrasonic motors or impact motors etc. where dynamic or impact excitation is provided.
As a result, all abovementioned problems have made it necessary to make an improvement in the relevant technical field.
The present invention is related to a joint mechanism, in order to eliminate the abovementioned disadvantages and to bring new advantages to the relevant technical field.
An object of the invention is to provide a joint mechanism with increased movement capability.
The invention is at least one joint mechanism that comprises at least one body, at least one first roller and at least one second roller mutually positioned on said body and is configured to move any one of said first roller and second roller towards the other so as to allow a beam used particularly in vibration isolation mechanisms to move the same along at least one first axis at least partially so as to fulfill all aims mentioned above and obtained from the following detailed description. The novelty herein is that; the body has at least one first part and at least one second part essentially adjacent to each other and said first part and said second part is engaged by means of at least one first flexible element in a manner such that they allow at least partial movement with respect to each other, so as to allow said beam to be rotated at least partially about a rotating point in the direction of at least one second axis. Therefore, the beam which can translate in the direction of the first axis can also rotate at least partially in the second axis direction.
A possible embodiment of the invention is characterized in that; said first flexible element is mainly a leaf spring. Therefore, a durable structure is obtained by preventing the plastic deformation of the joint at high forces.
A possible embodiment of the invention is characterized in that; at least two first flexible elements are provided mutually between the first part and the second part. Therefore, the first part is able to rotate at least partially in two directions with respect to the second part in a flexible manner.
A possible embodiment of the invention is characterized in that; the intersection point of the extensions of the first flexible elements forms said rotating point. Thus, the rotating point for moving the beam in the second axis direction is the center of rotation of the beam.
A possible embodiment of the invention is characterized in that; the first part and second part are connected with each other through said flexible element. Therefore, positioning the first flexible element in the first part and the second part in a fixed manner is enabled.
A possible embodiment of the invention is characterized in that; there is at least one space between the first part and the second part so as to allow the elastic deformation of the first elastic member. Therefore, when the first part moves relative to each other, the first part and the second part can get closer to or get away from each other.
A possible embodiment of the invention is characterized in that; at least one third roller is positioned mainly on the second roller side on the first part of the body. Therefore, stability is provided during the linear movement of the beam in the first axis.
An illustrative perspective view of the inventive joint mechanism is given in
An illustrative exploded view of the inventive joint mechanism is given in
An illustrative side view of the inventive joint mechanism is given in
An illustrative side view showing the elastic deformation of the inventive joint mechanism under force is given in
In this detailed description, the subject of the invention is described by means of examples only for clarifying the subject matter such that no limiting effect is created.
An illustrative perspective view of the inventive joint mechanism (10) is given in
An illustrative exploded view of the inventive joint mechanism (10) is given in
In a possible embodiment of the invention, said first roller (41) is configured on the body (20) in a manner such that it can move towards the second roller (31) and the third roller (32) on at least one compression axis (III). In order to realize this, the first roller (41) is positioned on at least one sliding bracket (40). Said sliding bracket (40) is connected to the first part (30) of the body (20) in a manner such that it can move on the compression axis (III). At least one compression bolt (42) is used so as to engage the sliding bracket (40) and the first part (30) of the body (20). Said compression bolt (42) is mainly fixed by means of at least one nut (44) by being passed through at least one connection hole (34) positioned on the first part (30) and the sliding bracket (40). The nut (44) can be located on the desired location by rotating the same on the threads (not shown in the figures) on the compression bolt (42). Therefore, the compression bolt (42) is provided so as to position the sliding bracket (40) at the desired location of the first part (30). The compression nut (44) compresses the sliding bracket (40) on the compression bolt (42), thus restricts its distance from the first part (30). At least one second flexible element (43) is located on the compression bolt (42) between the connection holes (34). Said second flexible member (43) is a helical spring that creates a compression force so as to enable the sliding bracket (40) and the first part (30) to move away from each other. This compression force can also be formed by a leaf spring or a different shaped flexible element instead of the helical spring. While the first roller (41) is brought closer to the second and third rollers (32) by means of the nut (44), the second flexible element (43) allows the beam (60) to move without any backlash on the first axis (I) by exerting a force in the opposite direction. Thus, even if the joint mechanism (10) is subjected to vibration, no backlash is formed owing to the compression force on the beam (60), and as a consequence, no rattling occurs.
At least one roller shaft (33) is used in positioning the first roller (41) on the sliding bracket (40) and the second roller (31) and the third roller (32) on the first part (30) of the body (20).
Said roller shaft (33) provides the rollers to be positioned at predetermined locations by passing through the rollers. Thus, its high-strength leads to a durable structure.
An illustrative side view of the inventive joint mechanism (10) is given in
An illustrative side view showing the deformation of the inventive joint mechanism (10) under force is given in
In a preferred embodiment of the invention, the beam (60) is engaged between the first roller (41) and the second roller (31) and the third roller (32) in the joint mechanism (10). It is ensured that the beam (60) of the first roller (41) presses tightly towards the second roller (31) and the third roller (32) by tightening the compression bolt (42) by means of the nut (44) so as to move the beam (60) backlash-free in the direction of the first axis (I) and the second axis (II). Subsequently, while the beam (60) is used in any place, after it is subjected to force; the beam (60) can slide in the first axis (I) relative to the first part (30). Moreover, the beam (60) can be held from the rotation point (IV) and is provided to rotate at least partially in the direction of the second axis (II). Therefore, the beam (60) is provided to perform two different movements simultaneously.
Together with all of these embodiments; while the degree of freedom is provided to the joint mechanism (10) in two axes, the beam (60) is allowed to move backlash-free in the body (20) despite the environmental conditions (vibration, quake etc.) during these movements. Therefore, high precision can be obtained in applications such as ultrasonic motors or impact motors etc. where dynamic or impact excitation is provided.
The protection scope of the invention is specified in the appended claims and cannot be limited to the description made for illustrative purposes in this detailed description. Likewise, it is clear that a person skilled in the art can present similar embodiments in the light of the above descriptions without departing from the main theme of the invention.
Number | Date | Country | Kind |
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2019/20296 | Dec 2019 | TR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/TR2020/051301 | 12/15/2020 | WO |