This application claims priority to Taiwanese Invention Patent Application No. 111127763, filed on Jul. 25, 2022.
The disclosure relates to a speed reduction transmission device, and more particularly to a conjugate cam reducer.
Referring to
The first roller assembly 13 includes a first disc 131 formed with a plurality of first grooves 130 in an inner peripheral wall thereof, and a plurality of first rollers 132 respectively received in the first grooves 130 and disposed in the outer grooves 128. The second roller assembly 14 includes a second disc 141 formed with a plurality of second grooves 140 in an outer peripheral wall thereof, and a plurality of second rollers 142 respectively received in the second grooves 140 and disposed in the inner grooves 129. The first and second rollers 132, 142 are in the same form. By the outer grooves 128 having a different sliding path from that of the inner grooves 129, and the eccentric portion 112 of the input shaft 11, the cycloid speed reducer performs speed reduction transmission.
However, such cycloid speed reducers have a complicated structure. The first and second discs 131, 141 must be formed with the first and second grooves 130, 140 in a precise manner for accurate mounting of the first and second rollers 132, 142 in the grooves. Moreover, the cycloid disc 12 has the inner grooves 129 and the outer grooves 128 formed in the inner and outer peripheral walls, which is complicated and inconvenient to machine and results in difficulty in miniaturizing the product.
Therefore, an object of the disclosure is to provide a conjugate cam reducer that can alleviate at least one of the drawbacks of the prior art.
According to the disclosure, the conjugate cam reducer includes a transmission unit defining an axial hole which extends along an output axis, and an input unit and an output unit which are connected with the transmission unit and respectively disposed at two opposite sides of the transmission unit along the output axis. The transmission unit includes a smaller-diameter cam disc and a larger-diameter cam disc which extends from a side of the smaller-diameter cam disc along the output axis and which has an outer diameter larger than that of the smaller-diameter cam disc. The smaller-diameter cam disc has a plurality of first teeth which are formed circumferentially and angularly spaced apart from one another, and a plurality of first grooves each of which is formed between two adjacent ones of the first teeth. The larger-diameter cam disc has a plurality of second teeth which are formed circumferentially and angularly spaced apart from one another, and a plurality of second grooves each of which is formed between two adjacent ones of the second teeth. The input unit includes an input disc, an eccentric shaft and a plurality of input rollers. The input disc has first and second input disc sides opposite to each other along the output axis. The input disc defines a disc hole which extends from the first input disc side to the second input disc side. The input disc further has a smaller inner peripheral wall which extends from the second input disc side along the output axis and which engages with the smaller-diameter cam disc, and a plurality of first receiving grooves which extend radially and outwardly from the smaller inner peripheral wall and which are formed circumferentially and angularly spaced apart from one another. The first receiving grooves are respectively registered with and spatially communicate with the first grooves to cooperatively define a plurality of receiving spaces. The eccentric shaft extends through the disc hole and the axial hole, and has an input shaft end which extends along an eccentric axis parallel to the output axis and which is rotated to drive rotation of the transmission unit in an eccentric cycloidal motion. The input rollers are rollably disposed in the receiving spaces, respectively. The output unit includes an output disc and a plurality of output rollers. The output disc has first and second output disc sides opposite to each other along the output axis and distal from and proximate to the input disc, respectively, a larger inner peripheral wall which extends from the second output disc side along the output axis toward the first output disc side and which engages with the larger-diameter cam disc, and a plurality of second receiving grooves which extend radially and outwardly from the larger inner peripheral wall and which are formed circumferentially and angularly spaced apart from one another. The second receiving grooves are respectively registered with and spatially communicate with the second grooves to cooperatively define a plurality of accommodation spaces. The output rollers are rollably disposed in the accommodation spaces, respectively.
Through the rotation of the transmission unit by the eccentric shaft, and with the input rollers and the output rollers disposed in a freely rollable manner, the output disc is rotated relative to the input disc at a reduced speed. The conjugate cam reducer has a simple component arrangement. The input disc and the output disc are made in a simple manufacturing process without the need for highly difficult finishing processes to be performed so as to facilitate miniaturization. With the freely rollable arrangement of the input rollers and the output rollers, the input rollers and the output rollers are available and easily assembled so as to further facilitate the reduction of the reducer's size.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiments with reference to the accompanying drawings. It is noted that various features may not be drawn to scale.
Before the disclosure is described in greater detail, it should be noted that where considered appropriate, reference numerals or terminal portions of reference numerals have been repeated among the figures to indicate corresponding or analogous elements, which may optionally have similar characteristics.
Referring to
The transmission unit 2 includes a smaller-diameter cam disc 21 and a larger-diameter cam disc 22 which is securely connected with and extends from a side of the smaller-diameter cam disc 21 along the output axis (L), and which has an outer diameter larger than that of the smaller-diameter cam disc 21. Specifically, the smaller-diameter cam disc 21 is integrally and coaxially formed with the larger-diameter cam disc 22 so as to form the transmission unit 2 as a conjugated cam piece with smaller-diameter and larger-diameter segments. The smaller-diameter cam disc 21 has a plurality of first teeth 211 which are formed circumferentially and angularly spaced apart from one another in an equidistant manner, and a plurality of first grooves 210 each of which is formed between two adjacent ones of the first teeth 211. The larger-diameter cam disc 22 has a plurality of second teeth 221 which are formed circumferentially and angularly spaced apart from one another in an equidistant manner, and a plurality of second grooves 220 each of which is formed between two adjacent ones of the second teeth 221. It is noted that the first teeth 211 may have the same interval as the second teeth 221. Hence, in accordance with the diameters of the smaller-diameter cam disc 21 and the larger-diameter cam disc 22, a predetermined number of the first grooves 210 and a predetermined number of the second grooves 220 may be respectively formed in the outer peripheral walls of the smaller-diameter cam disc 21 and the larger-diameter cam disc 22 so as to simplify the manufacturing process of the transmission unit 2.
The input unit 3 includes an input disc 31, an eccentric shaft 32 and a plurality of input rollers 33. The input disc 31 is adapted to be connected with a housing (not shown) to cooperatively define an accommodation chamber for accommodating the transmission unit 2. The input disc 31 has first and second input disc sides (31a, 31b) opposite to each other along the output axis (L). The input disc 31 defines a disc hole 310 which extends from the first input disc side (31a) to the second input disc side (31b). The input disc 31 has a smaller inner peripheral wall 311 which extends from the second input disc side (31b) along the output axis (L) and which engages with the smaller-diameter cam disc 21, and a plurality of first receiving grooves 312 which extend radially and outwardly from the smaller inner peripheral wall 311 and which are formed circumferentially and angularly spaced apart from one another in an equidistant manner about the output axis (L). The eccentric shaft 32 extends through the disc hole 310 and the axial hole 20, and has an input shaft end 321 which extends along an eccentric axis (L1) parallel to and offset from the output axis (L) and which is rotated to drive rotation of the transmission unit 2 in an eccentric cycloidal motion. The first receiving grooves 312 are respectively registered with and spatially communicate with the first grooves 210 to cooperatively define a plurality of receiving spaces 300 which are formed circumferentially and angularly spaced apart from one another in an equidistant manner about the output axis (L). Each of the first receiving grooves 312 has a cross-section which is of one of a trapezoidal, a circular and a Gothic arch shape. Each input roller 33 may be in the form of a metal spherical ball which are widely available. The input rollers are freely and rollably disposed in the receiving spaces 300, respectively. Thus, no retaining structure is needed to accommodate and confine the input rollers 33 within certain configurations, thereby simplifying the manufacturing process.
The output unit 4 includes an output disc 41, a plurality of output rollers 42 and an output shaft 43. The output disc 41 has first and second output disc sides (41a, 41b) opposite to each other along the output axis (L) and distal from and proximate to the input disc 31, respectively, a larger inner peripheral wall 411 which extends from the second output disc side (41b) along the output axis (L) toward the first output disc side (41a) and which engages with the larger-diameter cam disc 22, and a plurality of second receiving grooves 412 which extend radially and outwardly from the larger inner peripheral wall 411 and which are formed circumferentially and angularly spaced apart from one another in an equidistant manner about the output axis (L). The second receiving grooves 412 are respectively registered with and spatially communicate with the second grooves 220 to cooperatively define a plurality of accommodation spaces 400 which are formed circumferentially and angularly spaced apart from one another in an equidistant manner about the output axis (L). Each second receiving groove 412 has a cross-section which is of one of trapezoidal, circular and Gothic arch shapes. Each output roller 42 may be in the form of a metal spherical ball which are easily available. The output rollers 42 are freely and rollably disposed in the accommodation spaces 400, respectively. Thus, no retaining structure is needed to accommodate and confine the output rollers 42 within certain configurations, thereby simplifying the manufacturing process. The output shaft 43 extends from the first output disc side (41a) of the output disc 41 along the output axis (L) and away from the transmission unit 2.
In this embodiment, the input unit 3 and the output unit 4 are disposed at two opposite sides of the transmission unit 2 to have the smaller-diameter cam disc 21 of the transmission unit 2 radially facing the smaller inner peripheral wall 311 of the input disc 3, and the larger-diameter cam disc 22 of the transmission unit 2 radially facing the larger inner peripheral wall 411 of the output disc 41. Rotation of the eccentric shaft 32 results in rotation of both the smaller-diameter cam disc 21 and the larger-diameter cam disc 22 of the transmission unit 2. During the rotation of the transmission unit 2 about the output axis (L), each of the input rollers 33 and each of the outer rollers 42 are freely rollable to serve as a contact medium disposed between the input disc 31 and the smaller-diameter cam disc 21, and between the larger-diameter cam disc 22 and the output disc 41. With the smaller-diameter cam disc 21 having a diameter different from that of the larger-diameter cam disc 22, the rotational energy of the eccentric shaft 32 is transmitted to the output shaft 43, causing the output shaft 43 to rotate at a predetermined reduced speed.
In this embodiment, aside from the input rollers 33 and the output rollers 42, the reducer only includes four component parts which are the input disc 31, the eccentric shaft 32, the transmission unit 2 and the output disc 41, and has a simple component arrangement. Moreover, the input disc 31 is formed with the first receiving grooves 312 and the output disc 41 is formed with the second receiving grooves 412, which can be machined in a simple manufacturing process without the need for highly difficult finishing processes to be performed, and may facilitate the miniaturization of the reducer. Thus, with the freely rollable arrangement of the input rollers 33 and the output rollers 42, the input rollers 33 and the output rollers 42 are available and easily assembled so as to further facilitate reducing the size of the reducer.
As shown in
As shown in
As illustrated, the conjugate cam reducer has a simple structure, and the input rollers 33 and the output rollers 42 are disposed in a freely rollable manner, which simplifies the manufacturing and assembling processes and meets the requirements for miniaturization.
In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment(s). It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to “one embodiment,” “an embodiment,” an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects; such does not mean that every one of these features needs to be practiced with the presence of all the other features. In other words, in any described embodiment, when implementation of one or more features or specific details does not affect implementation of another one or more features or specific details, said one or more features may be singled out and practiced alone without said another one or more features or specific details. It should be further noted that one or more features or specific details from one embodiment may be practiced together with one or more features or specific details from another embodiment, where appropriate, in the practice of the disclosure.
While the disclosure has been described in connection with what are considered the exemplary embodiments, it is understood that this disclosure is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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111127763 | Jul 2022 | TW | national |