Actuating device with double screw connecting means
10378622 ยท 2019-08-13
Assignee
Inventors
Cpc classification
F16H25/2454
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An actuating device having a longitudinal shaft, an internal sleeve, an external sleeve, internal screw connecting means provided between the longitudinal shaft and the intermediate sleeve, external screw connecting means provided between the intermediate sleeve and the external sleeve. The direct efficiency of the internal screw connecting means is higher than the direct efficiency of the external screw connecting means. The self-releasable coupling means are provided between the longitudinal shaft and the internal sleeve.
Claims
1. An actuating device comprising: a non-rotating and translating longitudinal shaft, a rotating and translating internal sleeve positioned coaxially to and around the shaft, a rotating and non-translating external sleeve positioned coaxially to the shaft and around said internal sleeve, internal screw connecting means provided between the longitudinal shaft and the internal sleeve, external screw connecting means provided between the internal sleeve and the external sleeve, wherein the internal screw connecting means and the external screw connecting means are adapted to move the longitudinal shaft in the same longitudinal direction when the external sleeve is rotated in the same rotary direction; wherein the direct efficiency of the internal screw connecting means is higher than the direct efficiency of the external screw connecting means; and wherein terminal abutment means are provided for limiting the longitudinal motion of the internal sleeve with respect to the external sleeve at corresponding terminal longitudinal positions; second terminal abutment means are provided for limiting the longitudinal motion of the longitudinal shaft with respect to the internal sleeve at corresponding terminal longitudinal positions; and self-releasable coupling means for maintaining a coupling state between the internal sleeve and the longitudinal shaft are provided on one of the terminal abutment means provided for limiting the longitudinal motion of the longitudinal shaft with respect to the internal sleeve, such that the resistant torque induced by the self-releasable coupling means is higher than the driven torque of the external friction screw connecting means.
2. The actuating device according to claim 1, wherein the internal screw connecting means is a roller screw mechanism and the external screw connecting means is a thread friction screw mechanism.
3. The actuating device according to claim 1, wherein the terminal abutment means comprise rotary abutment means.
4. The actuating device according to claim 1, wherein the terminal abutment means for limiting the longitudinal motion of the longitudinal shaft with respect to the internal sleeve comprises an annular ring attached to the longitudinal shaft and a ring attached to the internal sleeve, at least one of the rings being provided with the self-releasable coupling means.
5. The actuating device according to claim 1, wherein the self-releasable coupling means comprise a plurality of protruding elements able to engage recesses, respectively carried by the longitudinal shaft and the internal sleeve.
6. The actuating device according to claim 5 wherein the protruding elements are balls.
7. The actuating device according to claim 1, wherein the self-releasable coupling means comprise attractive magnets.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
(1) An actuating device according to the present invention will now be described as an example and illustrated on the drawing in which
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DETAILED DESCRIPTION OF THE INVENTION
(11) As illustrated in
(12) As a reference, the longitudinal shaft 2 extends from left to right in the figures.
(13) The longitudinal shaft 2 is connected to an organ to be moved, such as a rod 2a axially connected to an end of the shaft 2, provided with anti-rotary means (non-illustrated) for preventing rotation of the longitudinal shaft 2, such as longitudinal guiding means. As a reference, the rod 2a is attached to the right end of the shaft 2 in the
(14) The external sleeve 4 is supported by a tubular support 6 through a ball bearing system 7 such that the external sleeve 4 cannot move in translation but only in rotation.
(15) Internal screw connecting means 8 are provided between the longitudinal shaft 2 and the internal sleeve 3. For example, the internal screw connecting means 8 is a roller screw mechanism which provides a plurality of longitudinal circulating rollers 9 having respectively a peripheral thread engaged with a peripheral thread of the longitudinal shaft 2 and with an inner thread of the internal sleeve 3, such that a rotation of the internal sleeve 3 induces a longitudinal motion of the longitudinal shaft 2 without a longitudinal motion of the rollers 8 with respect to the shaft 2.
(16) External screw connecting means 10 are provided between the internal sleeve 3 and the external sleeve 4. For example, the external screw connecting means 10 is a friction thread mechanism comprising an external thread of the internal sleeve 3 engaged with an internal thread of the external sleeve 4.
(17) The internal screw connecting means 8 and the external screw connecting means 10 are adapted to move the longitudinal shaft 2 in the same longitudinal direction when the external sleeve 3 is rotated in the same direction.
(18) The direct efficiency of the internal screw connecting means 8 is higher than the direct efficiency of the external screw connecting means 10. This means that, without any other active element, a rotation of the external sleeve 4 is transformed into a translation of the shaft 2 via preferentially the internal screw connecting means 8 and that the internal sleeve 3 and the external sleeve 4 are coupled via the external screw connecting means 10 and turn together. It means also that if the longitudinal shaft 2 and the internal sleeve 3 are coupled, a rotation of the external sleeve 4 is transformed into a translation of the shaft 2 via the external screw connecting means 10.
(19) The longitudinal motion of the internal sleeve 3 relative to the external sleeve 4 is limited by terminal abutment means 11 and 12 active at the end of a predetermined longitudinal stroke of the internal sleeve 3 with respect to the external sleeve 4. As a reference, the terminal abutment means 11 is on a left side of the figure and the terminal abutment means 12 is on the right side of the figure.
(20) The terminal abutment means 11 and 12 provide rings 13 and 14 which are attached to end portion of the internal sleeve 3 and rings 15 and 16 which are attached to the external sleeve 4, which respectively come in contact at the end of the longitudinal stroke of the internal sleeve 3 with respect to the external sleeve 4.
(21) For example, the rings 13 and 15 and the rings 14 and 16 provide respective lugs 17 and 18 (
(22) The longitudinal motion of the longitudinal shaft 2 relative to the internal sleeve 4 is limited by terminal abutment means 19 and 20 active at the end of a predetermined longitudinal stroke of the longitudinal shaft 2 with respect to the internal sleeve 3. As a reference, the terminal abutment means 19 is on a left side of the figure and the terminal abutment means 20 is on the right side of the figure.
(23) The terminal abutment means 18 provides a ring 21 which is attached to the end portion of the longitudinal shaft 2 and the the ring 13 attached to the end of to the internal sleeve 3.
(24) For example, the rings 13 and 21 provide respective lugs 22 and 23 which form rotary abutments and respectively come in circumferential abutments by the effect of the helix thread of the internal screw means 8, at the end of the stroke of the longitudinal shaft relative to the internal sleeve 3.
(25) The terminal abutment means 20 provides an annular ring 24 attached to the longitudinal shaft 2 and the ring 14 attached to the internal sleeve 3.
(26) Furthermore, the ring 14 and 24 are provided of self-releasable coupling means 25 formed as following. The ring 24 is provided of a plurality of balls 26 projected longitudinally towards the ring 14 and of inserted springs 27 acting longitudinally on these balls 24. The balls 24 are distributed on a circumference.
(27) When the ring 24 carried by the longitudinal shaft 2 reaches the ring 14 carried by the internal sleeve 3, by the effect of the helix thread of the internal screw means 8, the balls 26 slide on the radial face of the ring 14 and finally engage in recesses 28 of the ring 14.
(28) The resistant torque induced by the self-releasable coupling means 25 is higher than the driven torque of the external friction screw connecting means 10.
(29) As an alternative not illustrated, the ring 24 may be provided of a plurality of balls projected radially towards the internal sleeve 3 and of inserted springs acting radially on these balls, the balls being distributed on an outer periphery of the ring 24. When the ring 24 carried by the longitudinal shaft 2 reaches the ring 14 carried by the internal sleeve 3, by the effect of the helix thread of the internal screw means 8, the balls slide on an axial inner surface of the internal sleeve 3 and finally engage in recesses of the axial inner surface of the internal sleeve 3 so as to generate a resistant torque.
(30) As another alternative not illustrated, the rings 24 and 14 may be provided of a plurality of associated attractive magnets. When the ring 24 carried by the longitudinal shaft 2 reaches the ring 14 carried by the internal sleeve 3, by the effect of the helix thread of the internal screw means 8, the associated attractive magnets of the rings 24 and 14 cooperate together so as to generate a resistant torque.
(31) The end of the external sleeve 4, opposed to the rod 2a, is provided with a handwheel 29.
(32) We will now describe how the actuating device 1 works.
(33) A first end longitudinal position is illustrated in
(34) The abutment means 11 operate and the abutment means 19 operate. The internal sleeve 3 is on the left side of the drawing relative to the external sleeve 4.
(35) We consider now that the handwheel 29 is rotated in a forth rotating direction in order to drive the longitudinal shaft 2 in a forth direction FD, from left to right in the drawing.
(36) As the efficiency of the internal screw connecting means 8 is higher than the efficiency of the external screw connecting means 10, the internal sleeve 3 does not move and the rotation of the handwheel 29 is transformed in a translation of the longitudinal shaft 2 through the internal screw connecting means 8. The torque which can be transmitted is high.
(37) A corresponding current position is illustrated in
(38) After the forth stroke of the longitudinal shaft 2 relative to the internal sleeve 3 (as a first forth stage) is performed, the abutment means 20 formed by the ring 14 and 24 operate and the self-releasable coupling means 25 operate by engaging the balls 26 in the recesses 28. A corresponding intermediate longitudinal position is reached as illustrated in
(39) After that, the internal sleeve 3 is coupled to the longitudinal shaft and the external screw connecting means 10 take over and the rotation of the handwheel 29 is transformed in a translation of the longitudinal shaft 2 through the external screw connecting means 10. The torque which can be transmitted is reduced. But, the longitudinal speed of the longitudinal shaft is increased. A corresponding current position is illustrated on
(40) After the forth stroke of the internal sleeve 3 relative to the external sleeve 4 (as a second forth stage) is performed, the abutment means 12 operate. A second end longitudinal position is reached as illustrated in
(41) We consider now that the handwheel 29 is rotated in a return or reverse rotating direction in order to drive the longitudinal shaft 2 in a return direction RD, from right to left in the drawing.
(42) Because of the existence of the self-releasable coupling means 25 which induce a resistant torque higher than the driven torque of the external friction screw connecting means 10, the internal sleeve 3 stay coupled in rotation with the longitudinal shaft 2 and the return rotation of the handwheel 29 is transformed in a return translation of the longitudinal shaft 2 through the external screw connecting means 8. The blocking torque induced by the self-releasable coupling means 25 is made sufficient to create and maintain this coupling state.
(43) A corresponding current position is illustrated in
(44) After the return stroke of the longitudinal shaft 2 relative to the internal sleeve 3 (as a first return stage) is performed, the abutment means 19 operate.
(45) A corresponding intermediate longitudinal position is reached as illustrated in
(46) After that, the internal screw connecting means 8 take over and the rotation of the handwheel 29 is transformed into a translation of the longitudinal shaft 2 through the internal screw connecting means 10. It occurs an unblocking or releasing of the self-releasable coupling means 25 by rotation inducing a disengagement of the balls 26 out of the recesses.
(47) A corresponding current position is illustrated in
(48) After the return stroke of the internal sleeve 3 relative to the external sleeve 4 (as a second return stage) is performed, the abutment means 11 operate. The first end position illustrated in
(49) As an example, the rod 2a can be connected to the opening/closing plate of a knife gate valve. In this type of valve, the opening motion presents a first opening phase during which the resistance to opening is high and a second opening phase during which the resistance to opening becomes smaller. The closing motion presents a first closing phase during which the resistance to opening is small and a second closing phase during which the resistance to closing becomes higher.
(50) Hence, when the actuating device is at the the first end position (
(51) The consequences are the following.
(52) The the first forth stage of the actuating device 1, during which the torque able to be transmitted from the handwheel 29 to the longitudinal shaft 2 through the internal screw connecting means 8 is high, corresponds to the first opening phase of the valve, with a small speed of translation.
(53) The second forth stage of the actuating device 1, during which the torque able to be transmitted from the handwheel 29 to the longitudinal shaft 2 through the external screw connecting means 10 is small, corresponds to the second opening phase of the valve, with a high speed of translation.
(54) The first return stage of the actuating device 1, during which the torque able to be transmitted from the handwheel 29 to the longitudinal shaft 2 through the external screw connecting means 10 is small, corresponds to the second closing phase of the valve, with a high speed of translation.
(55) The the second return stage of the actuating device 1, during which the torque able to be transmitted from the handwheel 29 to the longitudinal shaft 2 through the internal screw connecting means 8 is high, corresponds to the second closing phase of the valve, with a small speed of translation.
(56) According to another embodiment, the self-releasing means 20 could be formed with elements other than the lugs 17 and 18. As an example, the ring 16 and 24 could carry magnets attractive when the last are close in order to create the the blocking torque between the longitudinal shaft 2 and the internal sleeve 3. As another example, the balls 26 could act radially and cooperate with longitudinal grooves and ribs of the internal sleeve 3.
(57) In another embodiment, the handwheel could be replaced by an electro-mechanical wheel. In this case, the actuating device such as described could permit to reduce the necessary power of this electro-mechanical wheel.
(58) Although the present invention has been illustrated using an inverted roller screw mechanism and a friction screw mechanism as double screw connecting means, it will be understood that the invention can be applied without major modification to actuating devices using any other types and combination of screw mechanism, such as planetary roller screw mechanism, ball screw mechanism, friction screw mechanism.
(59) Moreover, although the present invention has been illustrated using a plurality of ball bearing systems, it will be understood that the invention can be applied without major modification to bearings using rolling elements that are not balls and/or that have several rows of rolling elements.
(60) The invention can be used with any type of valves, for instance gate valves, control or regulation valves or choke valves. The actuating device may be used for instance with a surface gate or a subsea valve gate which may be actuated by a remote operating vehicle or an actuator.
(61) Moreover, the different longitudinal speeds able to be induced by actuation of the first screw connecting means and the screw connecting means, successively, can be implemented in other examples of applications, particularly when there is a need to have a fast approach strokes and then a slow and precise positioning. So, the actuating device of the invention can be applied for displacing organs of robots or machines, tools, controlled chirurgical tools, laser cuttings, welding means, molding means, pendulums.
(62) The embodiments disclosed in the description may be arranged or combined together and are still within the meaning of the present invention.