Torque transmission device, actuator and robot
09841061 · 2017-12-12
Assignee
Inventors
- Georg Bachmaier (München, DE)
- Marco Cyriacks (München, DE)
- Andreas Gödecke (München, DE)
- Wolfgang Zöls (München-Lochhausen, DE)
Cpc classification
F16F15/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10S901/19
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16D3/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D3/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A torque transmission device includes an inner ring, an outer ring, and at least one pair of receiving bellows. The at least one pair of receiving bellows includes a positive receiving bellows and a negative receiving bellows. The torque transmission device also includes at least one gas pressure spring and an adjusting unit connected to the at least one gas pressure spring. The receiving bellows are arranged between the outer ring and the inner ring such that when the inner ring is rotated in the positive rotational direction, the positive receiving bellows may be compressed, and when the inner ring is rotated in the negative rotational direction, the negative receiving bellows may be compressed. In addition, the receiving bellows are connected to the at least one gas pressure spring in a fluidically conductive manner.
Claims
1. A torque transmission device comprising: an inner ring; an outer ring arranged so as to be rotatable relative to the inner ring from a neutral position in a positive direction of rotation or negative direction of rotation; at least one pair of receiving bellows comprising a positive receiving bellows and a negative receiving bellows; at least one gas pressure spring; and an adjusting unit connected to the at least one gas pressure spring, wherein the receiving bellows are arranged between the outer ring and the inner ring in such a manner that the positive receiving bellows is compressible when the inner ring is rotated in the positive direction of rotation and the negative receiving bellows is compressible when the inner ring is rotated in the negative direction of rotation, wherein the receiving bellows are connected to the at least one gas pressure spring so as to conduct fluid, wherein the at least one gas pressure spring comprises a hermetically sealed gas pressure chamber and a transmission bellows that projects into the gas pressure chamber and an adjusting bellows that projects into the gas pressure chamber, and wherein the receiving bellows are connected to the transmission bellows so as to conduct fluid and the adjusting unit is connected to the adjusting bellows so as to conduct fluid.
2. The torque transmission device as claimed in claim 1, wherein the adjusting unit includes a reservoir and a pump.
3. The torque transmission device as claimed in claim 2, wherein the pump is a piezo-pump.
4. The torque transmission device as claimed in claim 3, wherein the torque transmission device comprises two gas pressure springs connected to the adjusting unit, wherein the at least one positive receiving bellows is connected to one of the two gas pressure springs so as to conduct fluid and the at least one negative receiving bellows is connected to the other of the two gas pressure springs so as to conduct fluid.
5. The torque transmission device as claimed in claim 4, wherein the at least one pair of receiving bellows comprises two pairs of receiving bellows.
6. The torque transmission device as claimed in claim 5, wherein the torque transmission device comprises a form of a cylinder with a circular surface area.
7. The torque transmission device as claimed in claim 6, wherein at least one bellows of the at least one pair of bellows is a metal bellows.
8. The torque transmission device as claimed in claim 1, wherein the torque transmission device comprises two gas pressure springs connected to the adjusting unit, wherein the at least one positive receiving bellows is connected to one of the two gas pressure springs so as to conduct fluid and the at least one negative receiving bellows is connected to the other of the two gas pressure springs so as to conduct fluid.
9. The torque transmission device as claimed in claim 8, wherein the adjusting unit comprises a separate pump per gas pressure spring.
10. The torque transmission device as claimed in claim 8, wherein the at least one pair of receiving bellows comprises two pairs of receiving bellows.
11. The torque transmission device as claimed in claim 8, wherein the torque transmission device comprises a form of a cylinder with a circular surface area.
12. The torque transmission device as claimed in claim 8, wherein at least one bellows of the at least one pair of bellows is a metal bellows.
13. The torque transmission device as claimed in claim 1, wherein the at least one pair of receiving bellows comprises two pairs of receiving bellows.
14. The torque transmission device as claimed in claim 1, wherein the torque transmission device comprises a form of a cylinder with a circular surface area.
15. The torque transmission device as claimed in claim 1, wherein at least one bellows of the at least one pair of bellows is a metal bellows.
16. An actuator comprising: a torque transmission device comprising: an inner ring; an outer ring arranged so as to be rotatable relative to the inner ring from a neutral position in a positive direction of rotation or negative direction of rotation; at least one pair of receiving bellows comprising a positive receiving bellows and a negative receiving bellows; at least one gas pressure spring; and an adjusting unit connected to the at least one gas pressure spring, wherein the receiving bellows are arranged between the outer ring and the inner ring in such a manner that the positive receiving bellows is compressible when the inner ring is rotated in the positive direction of rotation and the negative receiving bellows is compressible when the inner ring is rotated in the negative direction of rotation, wherein the receiving bellows are connected to the at least one gas pressure spring so as to conduct fluid, wherein the at least one gas pressure spring comprises a hermetically sealed gas pressure chamber and a transmission bellows that projects into the gas pressure chamber and an adjusting bellows that projects into the gas pressure chamber, and wherein the receiving bellows are connected to the transmission bellows so as to conduct fluid and the adjusting unit is connected to the adjusting bellows so as to conduct fluid; and a servomotor comprising: a rotor; and a stator, wherein the stator is non-rotatably connected to the outer ring or the inner ring of the torque transmission device.
17. A robot comprising: a mechanical unit; and an actuator comprising: a torque transmission device comprising: an inner ring; an outer ring arranged so as to be rotatable relative to the inner ring from a neutral position in a positive direction of rotation or negative direction of rotation; at least one pair of receiving bellows comprising a positive receiving bellows and a negative receiving bellows; at least one gas pressure spring; and an adjusting unit connected to the at least one gas pressure spring, wherein the receiving bellows are arranged between the outer ring and the inner ring in such a manner that the positive receiving bellows is compressible when the inner ring is rotated in the positive direction of rotation and the negative receiving bellows is compressible when the inner ring is rotated in the negative direction of rotation, wherein the receiving bellows are connected to the at least one gas pressure spring so as to conduct fluid, wherein the at least one gas pressure spring comprises a hermetically sealed gas pressure chamber and a transmission bellows that projects into the gas pressure chamber and an adjusting bellows that projects into the gas pressure chamber, and wherein the receiving bellows are connected to the transmission bellows so as to conduct fluid and the adjusting unit is connected to the adjusting bellows so as to conduct fluid; a servomotor comprising: a rotor; and a stator, wherein the stator is non-rotatably connected to the outer ring or the inner ring of the torque transmission device, wherein the actuator is connected to the mechanical unit so as to transmit force or so as to transmit torque.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) A sketch of the robot 26 according to one or more of the present embodiments is shown in
(5) The actuator 1 according to one or more of the present embodiments is shown as an example in
(6) According to one or more of the present embodiments, the torque transmission device 3 includes an inner ring 5 and an outer ring 4 that is arranged around the inner ring 5. The outer ring 4 and the inner ring 5 are arranged concentrically with respect to the rotational axis 23. The outer ring 4 is rotatable about a certain torsional angle on the rotational axis 23 in relation to the inner ring 5. In the example shown in
(7) Different variants of the torque transmission device 3 are shown as an example in
(8) In
(9) The outer ring 4 includes at least two moldings 24. Each molding 24 projects into a recess 7 of the inner ring 5. At least one driver 6 is situated in each case at the moldings 24. At each recess 7, the inner ring 5 includes a support 8 at a region that is positioned opposite the driver 6. In each case, one of the receiving bellows 9, 10 is arranged between the support 8 of the inner ring 5 and the driver 6 of the outer ring 4. The receiving bellows 9, 10 are fastened in each case at least to the support 8. In terms of one or more of the present embodiments, a bellows may also be a hydraulic cylinder or the like (e.g., the bellows is produced from metal).
(10) The at least one pair of receiving bellows 9, 10 includes a positive receiving bellows 9 and a negative receiving bellows 10. In terms of one or more of the present embodiments, the positive receiving bellows 9 is arranged such that the positive receiving bellows 9 is compressed when the inner ring 5 is modified 5 in the positive direction of rotation 17 from the neutral position 2. The negative receiving bellows 10 is arranged such that the negative receiving bellows 10 is compressed when the inner ring 5 is modified in the negative direction of rotation 18 from the neutral position.
(11) The receiving bellows 9, 10 are provided, according to one or more of the present embodiments, with a fluid (e.g., with a hydraulic fluid), such as, for example, silicone oil or glycerin. The receiving bellows 9, 10 are connected to the at least one gas pressure spring 13 so as to conduct fluid by the fluid lines 16.
(12) According to one or more of the present embodiments, the at least one gas pressure spring 13 includes a hermetically sealed gas pressure chamber 28 that is filled with a fluid. The fluid is, for example, a gas and may be at an overpressure of between 2 bar and 10 bar. Two bellows 14, 15 that are positioned, for example, opposite one another, are arranged projecting into the gas pressure chamber 28 (e.g., a transmission bellows 14 and an adjusting bellows 15). The transmission bellows 14 is connected to the adjusting unit so as to conduct fluid by fluid lines 16. The adjusting bellows 15 is connected to the adjusting unit so as to conduct fluid by fluid lines 16.
(13) According to one or more of the present embodiments, the adjusting unit includes at least one pump 12 (e.g., a piezo-pump 12) and a reservoir 11 in which a fluid (e.g., a hydraulic fluid) may be held.
(14) When the inner ring 5 is rotated in the positive direction of rotation 17 in relation to the outer ring 4, the pressure in the positive receiving bellows 9 is increased and a hydraulic fluid that is situated in the positive receiving bellows 9 is conducted through the fluid line 16 into the transmission bellows 14 of the at least one gas pressure spring 13. The transmission bellows 14 attempts to expand. According to one or more of the present embodiments, the torque to be provided for rotation in the positive direction of rotation 17 is adjustable in a variable manner by the pressure in the gas pressure chamber 28.
(15) When the inner ring 5 is rotated in the negative direction of rotation 18 in relation to the outer ring 4, the pressure in the negative receiving bellows 10 is increased and a hydraulic fluid located in the negative receiving bellows 10 is conducted through the fluid line 16 into the transmission bellows 14 of the at least one gas pressure spring 13. The transmission bellows 14 attempts to expand. According to one or more of the present embodiments, the torque to be provided for rotation in the negative direction of rotation 18 is adjustable in a variable manner by the pressure in the gas pressure chamber 28.
(16) The pressure in the gas pressure chamber 28 of the gas pressure spring 13 acts on the transmission bellows 14 and the adjusting bellows 15. The adjusting bellow 15 is realized such that the gas volume in the gas pressure spring 13 is compressible. Using the pump 12 of the adjusting unit, a fluid (e.g., a hydraulic fluid) is pumpable out of the reservoir 11 into the adjusting bellows 15, or out of the adjusting bellows 15. In this way, the stiffness of the gas pressure spring 13 is able to be adjusted within a broad range.
(17) If the adjusting bellows 15 is completely emptied, the gas in the gas pressure chamber 28 may take-in a high volume at a low pressure. The transmission bellows 14 may consequently expand without the pressure in the gas pressure chamber 28 increasing significantly (e.g., the gas pressure spring 13 has a small amount of stiffness in this position).
(18) If the adjusting bellows 15, in contrast, is filled up to an end position, as is thus shown in
(19) As the transmission bellows 14 transmits the pressure of the gas pressure chamber 28 of the gas pressure spring 13 to the receiving bellows 9, 10, and a torque is built up there, the variable stiffness of the gas pressure spring 13 therefore translates directly into a variable torsion spring characteristic. According to one or more of the present embodiments, the volume of the adjusting bellows 15 is variable by the pump 12, and as a result, the rotational stiffness of the torque transmission device 3 according to one or more of the present embodiments is adjustable. This is effected within a few seconds or fractions of a second, depending on the design of the output of the pump 12.
(20) The adjusting unit is controlled or regulated by a control unit that is not shown here in any detail and to which the adjusting unit is connected. In addition, sensors that detect states such as, for example, the pressure in at least one of the bellows, may be arranged in the torque transmission device 3.
(21) The torque transmission device 3 may also include support elements. For example, rolling elements may be arranged between the outer ring 4 and the inner ring 5.
(22) The realization variant of the torque transmission device 3 according to one or more of the present embodiments shown as an example in
(23) The receiving bellows 9, 10 are fastened in each case to the support 9 and rest loosely on the driver 6. The receiving bellows 9, 10 include in each case a stop 19 that prevents the receiving bellows 9, 10 from expanding beyond the dimension available when the inner ring 5 is in the neutral position 25. Both receiving bellows 9, 10 include a maximum volume in the neutral position 25. When the inner ring 5 is rotated in relation to the outer ring 5 out of the neutral position, one of the receiving bellows 9, 10 is compressed, and the other of the receiving bellows 10, 9 maintains its volume. During the compression, the above-described damping is performed by the gas pressure spring 13. The torque transmission device 3 has no stiffness when the torque transmission device 3 is rotated in the opposite direction into the neutral position 25. Torque is able to work freely until the neutral position has been reached again.
(24) Compared to the variant shown in
(25) With two gas pressure springs 13, the number of gas pressure springs 13 corresponds to the possible directions of rotation 17, 18. The two gas pressure springs 13 are separately controllable. The adjusting unit includes two pumps 12 for this purpose. Consequently, the receiving bellows 9, 10 are able to be influenced in each case not only in a pressure phase but also in a tension phase. Whereas one of the gas pressure springs 13 accompanies the pressure phase of the one receiving bellows 9, 10, at the same time the other of the gas pressure springs 13 influences the tension phase of the other receiving bellows 10, 9.
(26) The receiving bellows 9, 10 do not include a stop 19 in this case. The receiving bellows 9, 10 are fastened in each case both to the support 8 of the inner ring 5 and to the driver 6 of the outer ring 4. The positive receiving bellows 9 includes a greatest volume with the inner ring 5 in the position in which the negative receiving bellows 10 includes a smallest volume and vice versa. For example, both pumps 12 may be operated in parallel such that each of the gas pressure springs 13 in each case includes the same inner stiffness.
(27) In addition to the variant shown in
(28) Although the invention has been illustrated and described in detail by the exemplary embodiments, the invention is not restricted by the disclosed examples, and other variations may be derived herefrom by the person skilled in the art without departing from the scope of protection of the invention.
(29) The elements and features recited in the appended claims may be combined in different ways to produce new claims that likewise fall within the scope of the present invention. Thus, whereas the dependent claims appended below depend from only a single independent or dependent claim, it is to be understood that these dependent claims may, alternatively, be made to depend in the alternative from any preceding or following claim, whether independent or dependent. Such new combinations are to be understood as forming a part of the present specification.
(30) While the present invention has been described above by reference to various embodiments, it should be understood that many changes and modifications can be made to the described embodiments. It is therefore intended that the foregoing description be regarded as illustrative rather than limiting, and that it be understood that all equivalents and/or combinations of embodiments are intended to be included in this description.