HYDRAULIC DEVICE
20200063722 ยท 2020-02-27
Assignee
Inventors
Cpc classification
F04B53/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/2014
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/2007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A hydraulic device (1) comprises a housing (27), a shaft (2) which is mounted in the housing (27) and rotatable about a first axis of rotation (4), wherein the shaft (2) has a flange (8) extending perpendicularly to the first axis (4), a plurality of pistons (9) which are fixed to the flange (8) at equiangular distance about the first axis of rotation (4), and a plurality of cylindrical sleeves (10) cooperating with the pistons (9) to form respective compression chambers (11) of variable volume. The sleeves (10) are rotatable about a second axis of rotation which intersects the first axis of rotation (4) by an acute angle such that upon rotating the shaft (2) the volumes of the compression chambers (11) change. Each piston (9) has a piston head (14) including a ball-shaped circumferential outer side. Each of the pistons (9) has a modular structure comprising a piston head member (14) which forms the piston head, a piston pin (20) which is fixed to the flange (8) and to which the piston head member (14) is mounted, and a spacer (26) which is located at the outer side of the piston pin (20) and sandwiched between the piston head member (14) and the flange (8).
Claims
1. A hydraulic device comprising a housing, a shaft which is mounted in the housing and rotatable about a first axis of rotation, wherein the shaft has a flange extending perpendicularly to the first axis of rotation, a plurality of pistons which are fixed to the flange at equiangular distance about the first axis of rotation, a plurality of cylindrical sleeves cooperating with the pistons to form respective compression chambers of variable volume, wherein the sleeves are rotatable about a second axis of rotation which intersects the first axis of rotation by an acute angle such that upon rotating the shaft the volumes of the compression chambers change, each piston has a piston head including a ball-shaped circumferential outer side, characterized in that each of the pistons has a modular structure comprising a piston head member which forms said piston head, a piston pin which is fixed to the flange and to which the piston head member is mounted, and a spacer which is located at the outer side of the piston pin and sandwiched between the piston head member and the flange.
2. A hydraulic device according to claim 1, wherein play is present between the piston pin and the spacer.
3. A hydraulic device according to claim 1, wherein the spacer is a bush, which surrounds the piston pin.
4. A hydraulic device according to claim 3, wherein the bush has a concentrical and cylindrical inner and outer side.
5. A hydraulic device according to claim 1, wherein the piston head member has a central through-hole through which the piston pin extends.
6. A hydraulic device according to claim 5, wherein the piston head member is fixed to the piston pin in an axial direction of the piston pin through a press fitting between a surrounding wall of the central through-hole and an outer surface portion of the piston pin.
7. A hydraulic device according to claim 5, claim 1, wherein the piston pin partly extends beyond the piston head member as seen from the flange.
8. A hydraulic device according to claim 1, wherein the piston head member comprises a circular recess around a center line of the piston pin at a side of the piston head member facing away from the flange.
9. A hydraulic device according to claim 5, wherein the piston pin has a piston pin shank which is fixed to said flange and extends through said through-hole and a piston pin head, wherein the piston head member is sandwiched between the piston pin head and the spacer.
10. A hydraulic device according to claim 9, wherein a concave transition zone is present between the piston pin head and the piston pin shank, wherein the piston pin head and the piston head member contact each other within the transition zone.
11. A hydraulic device according to claim 9, wherein the piston head member is cup-shaped including a circumferential wall which has an inner side opposite to said ball-shaped circumferential outer side, which wall surrounds a cavity in which the piston pin head is located such that a circumferential outer side of the piston pin head faces the inner side of the circumferential wall of the piston head member.
12. A hydraulic device according to claim 11, wherein a slot-shaped cavity is present between the inner side of the circumferential wall of the piston head member and the circumferential outer side of the piston pin head.
13. A hydraulic device according to claim 12, wherein the outer side of the piston pin head and the inner side of the circumferential wall of the piston head member are parallel in circumferential direction.
14. A hydraulic device according to claim 9, wherein the piston pin head partly extends beyond the piston head member as seen from the flange.
15. A hydraulic device according to claim 1, wherein an end portion of the piston pin is clamped in the flange.
16. A hydraulic device according to claim 2, wherein the spacer is a bush, which surrounds the piston pin.
17. A hydraulic device according to claim 6, wherein the piston pin partly extends beyond the piston head member as seen from the flange.
18. A hydraulic device according to claim 10, wherein the piston head member is cup-shaped including a circumferential wall which has an inner side opposite to said ball-shaped circumferential outer side, which wall surrounds a cavity in which the piston pin head is located such that a circumferential outer side of the piston pin head faces the inner side of the circumferential wall of the piston head member.
19. A hydraulic device according to claim 10, wherein the piston pin head partly extends beyond the piston head member as seen from the flange.
20. A hydraulic device according to claim 11, wherein the piston pin head partly extends beyond the piston head member as seen from the flange.
Description
[0021] The invention will hereafter be elucidated with reference to very schematic drawings showing embodiments of the invention by way of example.
[0022]
[0023]
[0024]
[0025]
[0026] The hydraulic device 1 comprises face plates 7 which are mounted inside the housing 27 at a distance from each other. The face plates 7 have a fixed position with respect to the housing 27 in rotational direction thereof. The shaft 2 extends through central through-holes in the face plates 7.
[0027] The shaft 2 is provided with a flange 8 which extends perpendicularly to the first axis of rotation 4. A plurality of pistons 9 are fixed at both sides of the flange 8 at equiangular distance about the first axis of rotation 4, in this case fourteen pistons 9 on either side. Each of the pistons 9 has a modular structure which will be explained hereinafter. The pistons 9 have centre lines which extend parallel to the first axis of rotation 4. The planes of the face plates 7 are angled with respect to each other and with respect to the plane of the flange 8 in the embodiment as shown in
[0028] Each of the pistons 9 cooperates with a cylindrical sleeve 10 to form a compression chamber 11 of variable volume. The hydraulic device 1 as shown in
[0029] The sleeve bottoms 12 of the respective cylindrical sleeves 10 are supported by respective barrel plates 15 which are fitted around the shaft 2 by means of respective ball hinges 16 and are coupled to the shaft 2 by means of keys 17. Consequently, the barrel plates 15 rotate together with the shaft 2 under operating conditions. The barrel plates 15 rotate about respective second axes which are angled with respect to the first axis of rotation 4. This means that the cylindrical sleeves 10 also rotate about the respective second axes of rotation. As a consequence, upon rotating the shaft 2 the volumes of the compression chambers 11 change. During rotation of the barrel plates 15 each cylindrical sleeve 10 makes a combined translating and swivelling motion around the cooperating piston 9. Therefore, the outer side of each piston head member 14 is ball-shaped. The ball-shape creates a sealing line between the piston 9 and the cylindrical sleeve 10 which extends perpendicularly to the centre line of the cooperating cylindrical sleeve 10. The diameter of each piston 9 near the flange 8 is smaller than at the piston head member 14 in order to allow the relative motion of the cooperating cylindrical sleeves 10 about the pistons 9.
[0030] The sides of the respective barrel plates 15 which are directed away from the flange 8 are supported by respective supporting surfaces of the face plates 7. Due to the inclined orientation of the face plates 7 with respect to the flange 8 the barrel plates 15 pivot about the ball hinges 16 during rotation with the shaft 2. The angle between the first axis of rotation and the respective second axes of rotation is approximately nine degrees in practice, but may be smaller or larger.
[0031] The barrel plates 15 are pressed against the respective face plates 7 by means of springs 18 which are mounted in holes in the shaft 2. The compression chambers 11 communicate via a central through-hole in the respective sleeve bottoms 12 with cooperating passages 19 in the barrel plates 15. The passages 19 in the barrel plates 15 communicate via passages in the face plates 7 with a high-pressure port and a low-pressure port in the housing 27.
[0032]
[0033]
[0034] The circumferential wall of the piston head member 14 surrounds a cavity in which a part of the piston pin head 22 is located. The diameter of the inner side of the circumferential wall is larger than the diameter of the piston pin head 22. Consequently, a slot-shaped cavity 25 is present between the inner side of the circumferential wall and the outer side of the piston pin head 22. This means that under operating conditions hydraulic fluid can enter the cavity 25 and exert a force onto the circumferential wall of the piston head member 14 in order to deform the piston head member 14, which has a beneficial effect on minimizing leakage between the piston 9 and the sleeve 10, as explained hereinbefore. In the embodiment as shown in
[0035]
[0036] Upon assembly of the piston 9 of the embodiments as shown in
[0037] The invention is not limited to the embodiments shown in the drawings and described hereinbefore, which may be varied in different manners within the scope of the claims and their technical equivalents.