ACTUATOR FOR EXOSKELETON
20190203815 ยท 2019-07-04
Inventors
- Matteo LAFFRANCHI (Genova (GE), IT)
- Stefano D'ANGELLA (Genova (GE), IT)
- Samuele CAPPA (Genova (GE), IT)
- Paolo UBOLDI (Genova (GE), IT)
- Jody SAGLIA (Genova (GE), IT)
- Carlo FILIPPO (Genova (GE), IT)
- Emanuele GRUPPIONI (Genova (GE), IT)
Cpc classification
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T74/18648
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
F16H2025/2445
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/2436
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to an actuation device (1) comprising a threaded shaft (2) connected at one end to driving means adapted to allow the threaded shaft (2) to rotate about its longitudinal axis (). The device further comprises a movable element (3) provided with a cylindrical cavity (30) adapted to receive the threaded shaft (2), and configured in such a way that a rotation of the threaded shaft (2) corresponds to a translation the movable element (3) along the longitudinal axis (). The device (1) further comprises two guiding rods (4,4) coupled to the movable element (3) and adapted to constrain the translation of the latter along a direction parallel to the longitudinal axis (). The movable element (3) comprises a first (31) and a second (32) element constrained to each other, wherein the first element (31) is coupled to the threaded shaft (2) and the second element (32) is coupled to the two guiding rods (4,4). A portion (320) protrudes from the second element (32) adapted to fit into a seat (312) formed in the first element (31), and wherein the portion (320) and the seat (312) are shaped in such a way that the contact between the seat (312) and the portion (320) takes place in a contact zone that extends along a section of the portion (320) whose midpoint lies in a plane that comprises the longitudinal axis () and is parallel to the plane which comprises the development axes (,) of the two guiding rods (4,4).
Claims
1. Actuation device (1) comprising, a threaded shaft (2) connected at one end to driving means adapted to allow the threaded shaft (2) to rotate about its longitudinal axis (a), a movable element (3) provided with a cylindrical cavity (30) adapted to receive the threaded shaft (2), said cylindrical cavity (30) being configured in such a way that a rotation of the threaded shaft (2) corresponds to a translation the movable element (3) along said longitudinal axis (a), two guiding rods (4,4) coupled to the movable element (3) and adapted to constrain the translation of the latter along a direction parallel to said longitudinal axis (a), characterized in that the movable element (3) comprises a first (31) and a second (32) element constrained to each other, wherein said first element (31) is coupled to the threaded shaft (2) and said second element (32) is coupled to said two guiding rods (4,4), and in that a portion (320) protrudes from said second element (32) adapted to fit into a seat (312) formed in said first element (31), and wherein said portion (320) and said seat (312) are shaped in such a way that the contact between the seat (312) and the portion (320) takes place in a contact zone that extends along a section of the portion (320) whose midpoint lies in a plane which comprises said longitudinal axis (a) and is parallel to the plane which comprises the development axes (,) of said two guiding rods (4,4).
2. Actuation device (1) according to claim 1, wherein said first element (31) comprises a second seat arranged symmetrically to said seat (312) with respect to a plane passing through the longitudinal axis (a) and orthogonal to the plane which comprises the development axes (,) of said two guiding rods (4,4), and wherein a second portion (321) protrudes from said second element (32) adapted to be inserted in said second seat, and wherein said second portion (321) and said second seat are shaped in such a way that the contact between the second seat and the second portion (321) takes place in a second contact zone which extends along a section of the second portion (321) whose midpoint lies in the plane which comprises the longitudinal axis (a) and is parallel to the plane which comprises the development axes (,) of the two guiding rods (4,4).
3. Actuation device (1) according to claim 1, wherein said seat (312) comprises two surfaces (312 a,312 b) facing each other and which have a profile shaped in such a way that a minimum distance d between said two surfaces (312a,312b) is at a central region of said seat (312), and wherein said central region extends for a section whose midpoint lies on the plane that comprises said longitudinal axis (a) and is parallel to the plane which comprises the development axes (,) of said two guiding rods (4,4).
4. Actuation device (1) according to claim 3, wherein said profile has a monotonically decreasing trend from the ends (312c,312d) of said seat towards the central region of said seat (312), and wherein said monotonically decreasing trend is rectilinear or curvilinear.
5. Actuation device (1) according to claim 1, wherein said second element (32) is coupled to each of said two guiding rods (4,4) through a respective plain bearing (5), and wherein between said plain bearing (5) and said second element (32) a ball joint (6) is interposed.
6. Actuation device (1) according to claim 1, wherein said seat (312) and said portion (320) are shaped in such a way that a contact zone between said seat (312) and said portion (320) has a surface ranging from 0.01% to 5% of the surface of said portion (320), wherein said contact zone extends symmetrically with respect to the plane that comprises said longitudinal axis (a) and is parallel to the plane which comprises the development axes (,) of said two guiding rods (4,4).
7. Actuation device (1) according to claim 1, in which said first element (31) comprises a nut screw (310) and a supporting element (311) fixed to each other, in which the nut screw (310) is coupled to the threaded shaft (2) and wherein said seat (312) is formed on said supporting element (311).
8. Actuation device (1) according to claim 1, wherein the threaded shaft (2) is a ball screw.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The invention will be described here below with reference to not limitative examples, provided by way of example and not as a limitation in the annexed drawings. These drawings show different aspects and embodiments of the present invention and, where appropriate, reference numerals showing like structures, components, materials and/or elements in different figures are denoted by like reference numerals.
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE INVENTION
[0025] While the invention is susceptible of various modifications and alternative constructions, some non-limitative embodiments, provided by way of example, are described in details herein below.
[0026] It should be understood, however, that there is no intention to limit the invention to the specific disclosed embodiments but, on the contrary, the invention intends to cover all the modifications, alternative constructions and equivalents that fall within the scope of the invention as defined in the claims.
[0027] Therefore in the following description, the use of for example, etc., or denotes non-exclusive alternatives without limitation, unless otherwise noted; the use of also means among which, but not limited to, unless otherwise noted; the use of includes/comprises means includes/comprises, but not limited to, unless otherwise noted.
[0028]
[0029] The actuator comprises a motion converting mechanism 1 comprising a threaded shaft 2 on which a mobile element 3 is fitted. The shaft 2 has, at one reduced cross-section end 2a, a seat 2b for the connection to a motor or other driving means, not shown in
[0030] In a preferred embodiment, the threaded shaft 2 and the movable element 3 are coupled such to obtain a ball screw that, as known, provides to use balls running a closed raceway formed between the threaded shaft 2 and the movable element 3, such to reduce friction between these elements during motion. Obviously, other solutions are possible and the shaft 2 can be composed of a simple threaded rod.
[0031] In order to obtain the conversion of rotary motion to linear motion, and as visible in
[0032] More in details, the movable element 3 comprises a first 31 and a second 32 elements constrained to each other. The first element 31 is coupled directly to the threaded shaft 2 through the cylindrical cavity 30, while the second element 32 is coupled to two guiding rods (4,4) developing along the axes and parallel to each other and parallel to the axis a. Thus the guiding rods constrain the translation of the movable element 3 along the direction of the longitudinal axis ().
[0033] In the shown embodiment, the first element 31 further comprises a nut screw 310 and a support element 311 fastened with each other. The cylindrical cavity 30 provided with the thread is obtained in the nut screw 310 that therefore is coupled to the threaded shaft 2.
[0034] The support element 311 has also a cavity 311a, to allow the nut screw 310 to be inserted therein, and on its external surface a seat 312 is obtained intended to receive a portion 320 protruding from the second element 32 of the movable element 3. It is suitable to specify that in variant embodiments of the device 1, the seat 312 can be similarly obtained on the nut screw 310 itself, therefore for the purposes of the invention it is sufficient for the seat 312 to be obtained on the first element 31, which is the one coupled to the threaded shaft 2.
[0035] More in details, and with reference to
[0036] Preferably, such contact area has a surface ranging from 0.01% to 5% of the surface of the portion 320.
[0037] In the examples shown therein, a second portion 321 protrudes from the second element 32, which fits into a second seat (not visible in
[0038] The two seats are symmetrically arranged with respect to the longitudinal axis a, and they house a respective portion of the two portions (320,321) protruding from the second element 32. Seats and portions (320,321) are shaped such that the respective contact with each other occurs in two corresponding contact areas that extend along a section of the portion (320) and of the portion (321) respectively and whose midpoint of each section lies in a plane comprising the longitudinal axis a and it is parallel to the plane comprising the axes and .
[0039]
[0040] In all such variants the portion 320 is a rectangular-based prism developing in a direction orthogonal to the one of the longitudinal axis a and it has a plane of symmetry Q orthogonal to a.
[0041] The seat 312 comprises two side surfaces 312a and 312b, facing each other on opposite sides with respect to the plane of symmetry , each one having a profile shaped such that their minimum distance d is in a central area of the seat 312. Moreover the central area of the seat 312 is a region lying on the plane comprising the longitudinal axis a and also parallel to the plane comprising the development axes and of the two guiding rods 4 and 4.
[0042] In
[0043] Differently, in
[0044] With reference again to
[0045] Particularly the second element 32 is provided with two cavities (32a,32b) each one intended to receive a respective guiding rod of the two guiding rods 4 and 4, to allow the second element 32 to run with respect thereto.
[0046] Each cavity 32a and 32b has, at each one of its two ends, a seat for housing a plain bearing 5 and a ball joint.
[0047] The plain bearings 5for example bushingsand the ball joints 6 are therefore two for each guiding rod. Each plain bearing 5 is in direct contact with a respective rod, and between the second element 32 and each plain bearing 5 there is provided a ball joint 6.
[0048] By such arrangement the ball joints 6 allow the plain bearings 5 to be adapted to the misalignments of the guiding rods (4,4) with respect to their development axes and . The application of forces on the element 32 not in line with the direction of axis a, can generate moments that tend to displace the guiding rods from the axes and ; the ball joints 6 and the bearings 5 allow such misalignments to be absorbed and prevent such moments from being transferred on the shaft 2.
[0049] A first implementation example of the invention is shown in
[0050] This solution allows a very high reduction value between motor and joint to be obtained, as well as it allows back drive of the motion of the movable element 32 to be guaranteed and therefore allowing the torque applied to the device 1 to be estimated by measuring the current on the windings of the motor 50. Thus torque sensors are avoided which are expensive and bulky.
[0051] Moreover, the use of a crank-connecting rod mechanism makes the gear ratio variable and dependent on the angle of the joint 54. The non-linearity of the transmission between motor and joint of such solution is thus used in favor of the actuation, for example in the case the torque/velocity profile is a function of the angle of the joint 54. The dependence of the torque and velocity profile on the angular position of the joint 54 and its cyclic repeatability are typical features of joints in legs of human beings and therefore the implementation example shown in
[0052] A second implementation example is shown in
[0053] In such arrangement, the overall kinematic chain provides a motor 60such as for example a brushless electric motor or the likethat by a belt transmission 61 transmits a rotary motion to the ball screw 2. The latter allows the movable element 32 to translate which is provided with hooking means 32a to engage the links of a chain 62 that, by engaging a plurality of gear wheels 63, transfers a rotary motion to a ring connected to a joint 65.
[0054] The main difference of such solution from the example shown in
[0055] Moreover, the use of a chain has the advantage of making such solution noiseless, since it does not use planetary reduction gears and the advantage of obtaining minimized lateral overall dimensions of the apparatus where the actuation device 1 is implemented.
[0056] Both the examples of
[0057] From the above description it is clear how the described reduction gear allows the above objects to be achieved.
[0058] Therefore, it is clear for a person skilled in the art that it is possible to make changes and variants to the solution described with reference to the above figures without for this reason departing from the scope of protection of the present patent as defined in the annexed claims.
[0059] For example, the seats of the element 31 and the portions of the elements 32 inserted therein can have shapes different from those shown in