Cycloidal speed reducer
20230223815 · 2023-07-13
Inventors
Cpc classification
International classification
Abstract
A cycloidal speed reducer including a housing for input and output rotor assemblies. Stationary pin features having a radius are spaced in a housing cavity. The input assembly includes an eccentric hub with an eccentricity equal or greater than the radius, two lobes each rotatably holding a cycloid disk, and an input engagement feature for a drive motor. The cycloid disks each have engagement holes and contact surfaces having truncated-profiles. The output assembly includes a pin disc holding roller pins, and an output engagement feature for a driven device. As rotational motion is input to the cycloidal speed reducer from the drive motor, the input rotor assembly and cycloid disks are rotated, the contact surfaces interact with the stationary pin features, the engagement holes of the cycloid disks interact with the roller pins and the output assembly is rotated, and proportional rotational motion is output to the driven device.
Claims
1. A cycloidal speed reducer mate-able between a drive motor (12) and an opposed driven device (14) along an axis of symmetry (22), the cycloidal speed reducer comprising: a housing (16), an input rotor assembly (18), and an output rotor assembly (20); said housing having a first end suitable for mating with the drive motor and a second end suitable for mating with the driven device, and further having a generally cylindrical shaped interior cavity located between said first end and said second end and coaxial with the axis of symmetry; a plurality of stationary pin features (26) spaced equidistant apart around said interior cavity of said housing equidistant from the axis of symmetry, wherein said stationary pin features have a radius; said input rotor assembly including an eccentric hub (28) having an eccentricity equal to or greater than said radius, a pair of lobes (38) each rotatably holding a cycloid disk (30), and having an input engagement feature (52) to engage with the drive motor, wherein said cycloid disks each have a plurality of engagement holes (36) and a plurality of contact surfaces (56) having truncated-profiles; said output rotor assembly including a pin disc (40) holding a plurality of roller pins (42), and having an output engagement feature (54) to engage with the driven device; and wherein as an input rotational motion is input to the cycloidal speed reducer from the drive motor, said input rotor assembly and said cycloid disks are rotated, said contact surfaces interact with said stationary pin features, said engagement holes of said cycloid disks interact with said roller pins of said output rotor assembly causing said output rotor assembly to be rotated, and an output rotational motion proportional to said input rotational motion is output to the driven device.
2. The cycloidal speed reducer of claim 1, wherein: said first end of said housing includes an indent region suitable for mating a conventional instance of the drive motor.
3. The cycloidal speed reducer of claim 1, wherein: said first end of said housing has same cross-sectional dimensions as a conventional instance of the drive motor.
4. The cycloidal speed reducer of claim 1, wherein: said second end of said housing has same cross-sectional dimensions as a conventional instance of the driven device.
5. The cycloidal speed reducer of claim 1, wherein: said input engagement feature is a female-like void suitable for accepting a male-like shaft of the drive motor.
6. The cycloidal speed reducer of claim 1, wherein: said output engagement feature is a female-like void suitable for accepting a male-like shaft of the driven device.
7. The cycloidal speed reducer of claim 1, wherein: said stationary pin features have semicircular cross-sections.
8. The cycloidal speed reducer of claim 7, wherein: said stationary pin features are protrusions from said housing such that said housing and and said stationary pin features are a single unitary piece.
9. The cycloidal speed reducer of claim 7, wherein: said stationary pin features are are distinct pieces seperable from said housing.
10. The cycloidal speed reducer of claim 1, wherein: said engagement holes are 16 in quantity, said contact surfaces are 16 in quantity, and said stationary pin features are 17 in quantity.
11. The cycloidal speed reducer of claim 1, wherein: said engagement holes have no friction-reducing elements where they with said roller pins and said roller pins have no friction-reducing elements where they mate with said pin disc.
12. A cycloidal speed reducer mate-able between a drive motor (12) and an opposed driven device (14) along an axis of symmetry (22), the cycloidal speed reducer comprising: a housing (16), an input rotor assembly (18), and an output rotor assembly (20); said housing having a first end suitable for mating with the drive motor and a second end suitable for mating with the driven device, and further having a generally cylindrical shaped interior cavity located between said first end and said second end and coaxial with the axis of symmetry; a plurality of stationary pin features (26) spaced equidistant apart around said interior cavity of said housing equidistant from the axis of symmetry; said input rotor assembly including an eccentric hub (28) having a pair of lobes (38) each rotatably holding a cycloid disk (30), and having an input engagement feature (52) that is a female-like void suitable for accepting a male-like shaft of the drive motor, wherein said cycloid disks each have a plurality of engagement holes (36) and a plurality of contact surfaces (56); said output rotor assembly including a pin disc (40) holding a plurality of roller pins (42), and having an output engagement feature (54) that is a female-like void suitable for accepting a male-like shaft of the driven device; and wherein as an input rotational motion is input to the cycloidal speed reducer from the drive motor, said input rotor assembly and said cycloid disks are rotated, said contact surfaces interact with said stationary pin features, said engagement holes of said cycloid disks interact with said roller pins of said output rotor assembly causing said output rotor assembly to be rotated, and an output rotational motion proportional to said input rotational motion is output to the driven device.
13. The cycloidal speed reducer of claim 1, wherein: said first end of said housing includes an indent region suitable for mating a conventional instance of the drive motor.
14. The cycloidal speed reducer of claim 1, wherein: said first end of said housing has same cross-sectional dimensions as a conventional instance of the drive motor.
15. The cycloidal speed reducer of claim 1, wherein: said second end of said housing has same cross-sectional dimensions as a conventional instance of the driven device.
16. The cycloidal speed reducer of claim 1, wherein: said stationary pin features have a radius and said eccentric hub has an eccentricity equal to or greater than said radius.
17. The cycloidal speed reducer of claim 1, wherein: said contact surfaces have truncated-profiles.
18. The cycloidal speed reducer of claim 1, wherein: said stationary pin features have semicircular cross-sections.
19. The cycloidal speed reducer of claim 18, wherein: said stationary pin features are protrusions from said housing such that said housing and and said stationary pin features are a single unitary piece.
20. The cycloidal speed reducer of claim 18, wherein: said stationary pin features are are distinct pieces seperable from said housing.
21. The cycloidal speed reducer of claim 1, wherein: said engagement holes are 16 in quantity, said contact surfaces are 16 in quantity, and said stationary pin features are 17 in quantity.
22. The cycloidal speed reducer of claim 1, wherein: said engagement holes have no friction-reducing elements where they with said roller pins and said roller pins have no friction-reducing elements where they mate with said pin disc.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
[0015] The purposes and advantages of the present invention will be apparent from the following detailed description in conjunction with the appended figures of drawings in which:
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[0026] In the various figures of the drawings, like references are used to denote like or similar elements or steps.
DETAILED DESCRIPTION OF THE INVENTION
[0027] A preferred embodiment of the present invention is a cycloidal speed reducer. As illustrated in the various drawings herein, and particularly in the view of
[0028]
[0029]
[0030]
[0031]
[0032]
[0033] The eccentric hub 28 includes a first lobe 38a and a second lobe 38b (collectively lobes 38), which have an eccentric relationship in the conventional manner of all cycloidal speed reducers. The first lobe 38a mountably holds one lobe bearing 32 and thus the first cycloid disk 30a, and the second lobe 38b mountedly holds the other lobe bearing 32 and thus the second cycloid disk 30b. The two lobe bearing C-clips 34 attachably hold the lobe bearings 32 in place (and in turn each of their respective cycloid disks 30) onto the eccentric hub 28, thus making the input rotor assembly 18 an assembly. For completeness, the input rotor assembly 18 further includes an input bearing and an input bearing C-clip which are hidden from view here (see
[0034] Returning to
[0035] The role of the roller pins 42 in the output rotor assembly 20 is to rollingly engage with the sets of the engagement holes 36 in the cycloid disks 30 of the input rotor assembly 18. In this manner, as the drive motor 12 rotates the input rotor assembly 18 the output rotor assembly 20 is also rotated, albeit at a different speed as is the characteristic manner and benefit of cycloidal speed reducers.
[0036]
[0037] Turning first to
[0038] Turning next to
[0039] Turning next to
[0040] Returning now to
[0041] Both the input engagement feature 52 and the output engagement feature 54 in this embodiment of the cycloidal speed reducer 10 are voids (i.e., female). That is, they are suitably shaped (albeit not necessarily same shaped) to receive male engaging features respectively of the drive motor 12 and the driven device 14. These voids are design features and not requirements of the inventive cycloidal speed reducer 10. However, since most conventional motors used in industry today have a male keyed shaft (e.g., as shown in the drive motor 12 in
[0042] While there is less “gender of engagement” standardization for driven devices, embodiments of the inventive cycloidal speed reducer 10 having a female or void for the output engagement feature 54 may still be flexibly employed (and stocked in fewer variations accordingly). For example, in the event that a given driven device also has a female engagement mechanism, such as a shaft-and-key shaped void to receive a conventional shaft and key, a simple, short length of shaft stock and key stock can be used to mate the cycloidal speed reducer 10 and the given driven device together.
[0043] Accordingly, in this manner embodiments of the cycloidal speed reducer 10 can be particularly employed where more compact overall applications are desired. Moreover, the inventive cycloidal speed reducer 10 can also have the housing 16 intentionally shaped to facilitate easy and standardized mating with conventional standardized shaped instances of drive motors and driven devices (e.g., as with the already discussed indent region 46 of the housing 16, and see general similarity of the shapes in
[0044]
[0045] It can again be seen here that the stationary pin features 26 need not be true “pins,” but rather that they can be integrated into the housing 16. Recall that roller pins are fixed (i.e., stationary; see e.g.,
[0046] Next it can also be seen in
[0047] Additionally,
Summarizing
[0048] The inventive cycloidal speed reducer 10 can have the truncated-profile contact surfaces 56, to reduce or eliminate sliding friction where the contact angle is smaller than would provide efficient torque transfer. This also can reduce the dimensions of embodiments.
[0049] The inventive cycloidal speed reducer 10 can have the stationary pin features 26 reduced to semicircular/semi-cylindrical protrusions from the housing 16, or be reduced from fully circular/cylindrical to semicircular/semi-cylindrical distinct elements. This can also reduce the dimensions of embodiments. Additionally, because of the high efficiency granted by other features of this invention, there is no need to add friction-reducing elements such as ball bearings to the roller pins 42. This can also reduce the dimensions and particularly the cost of embodiments.
[0050] The inventive cycloidal speed reducer 10 can have the eccentricity of the eccentric hub 28 be equal to or greater than the radius of the stationary pin features 26 to increase the contact angle and thereby reduce friction in embodiments.
[0051] The inventive cycloidal speed reducer 10 can have the input engagement feature 52 and/or the output engagement feature 54 be female voids. This eliminates the need for external shafts, couplings, etc. This also can reduce dimensions, as well as costs and provide yet other significant advantages in embodiments.
[0052] And the inventive cycloidal speed reducer 10 can have an exterior shape particularly similar and mate-able with similar or same cross-sectional dimensions likely in instances of the drive motor 12 and/or the driven device 14 (e.g., to conform with the 86 mm on a side industry standard for some common drive/driven devices).
[0053] While various embodiments have been described above, it should be understood that they have been presented by way of example only, and that the breadth and scope of the invention should not be limited by any of the above described exemplary embodiments but should instead be defined only in accordance with the following claims and their equivalents.