The present invention relates to a device for slowing the movement of a door, drawer or similar member which is movable with respect to a fixed structure and urged by unidirectional thrust means, of a type described in the preamble to Claim 1.
A device of this type is known from British Patent Application GB-A 2 062 933 and is normally used to smooth the movement of a slidable drawer caused by spring means, as used in certain types of ashtray fitted in the dashboard of motor vehicles, or of pivoted doors, of a type used, for example in tape recorder apparatus.
It is also known that such drawers or doors often have latch closure means which are released by a light pressure on the drawer, so that pressure is used to carry out both opening and closing operations.
The document U.S. Pat. No. 4,893,522 describes a rotary damper including a cylindrical rotor, a casing with a shaft for insertion into the cylindrical rotor and a cylindrical wall enclosing this shaft, with a viscous fluid between the inner surface of the cylindrical rotor and the casing shaft. A spiral spring is fitted between the cylindrical wall of the casing and the outer surface of the rotor and is wound up by the rotation induced by an applied torque. This device has incorporated latch closure means, including an excursion groove formed either in the inner surface of the casing lid or in an end surface of the cylindrical rotor and having a heart-shaped cam groove at one end and an operating pin either provided on the lid or on the cylindrical rotor, operable to slide along the groove.
The document EP-A-0 199 242 describes a device in which the latch closure means include a sphere engaged in a rectilinear groove, formed in the lateral surface of the stator, and urged by a shaped groove formed in the lateral wall of the rotor and having a cam defining a forward path and a return path for the sphere.
The object of the present invention is a device for slowing the movement of a door or drawer of a compact type, having the characteristics defined in the Claims.
A few preferred but non-limitative embodiments of the invention will now be described with reference to the appended drawings, in which:
With reference to
With reference to
The device 15 also includes a rotor 31 housed in the chamber 18. The rotor 31 includes a disc portion 32, rotatable inside the casing 17, and a shaft portion 33 which extends axially from the centre of the disc portion 32 and protrudes from the lid 21 of the casing 17, passing through the central hole 22. The free end 33a of the shaft portion 33 of the rotor 31 is arranged so the pinion 16 can be mounted thereon. The rotor 31 also has a central hole 34, formed in the base of the disc portion 32 for enabling the rotor 31 to be mounted on the pin portion 24 of the casing 17 and providing thereby an axis of rotation for the rotor.
The chamber 18 is filled with a highly viscous fluid of a known type, in such a way that the rotor 31 is fully immersed. The fluid tight seal at the central hole 22 is ensured by an O-ring 41 housed in a circular seat 42 formed around the central hole 22 through the lid 21.
With reference also to
A recess 77 is formed in the cam portion 76, in front of which a cuspid branch 78 is extended which interconnects the two branches 74, 75 of the groove 70. The cuspid branch 78 defines two sharp bends 79, 81 at its ends, substantially opposite the recess 77 of the cam portion 76.
The groove 70 is engageable by the pin portion 54 of the arm element 51, which moves along the groove when the rotor 31 is rotated relative to the casing 17. After passing through the portions 71, 72, the pin portion 54 engages in succession the branches 75 and 74 of the groove 70, accompanied by the movement of the arm element 52, thereby accomplishing locking and release operations in the manner of the pressure latch system described with reference to the prior art.
FIGS. 6 to 14 illustrate the operation of the device according to the invention.
From the latched position (
When pressure on the door 2 is released, the spring 4 urges it until it is fully open. The movement transmitted to the rotor 31 causes it to rotate anti-clockwise, whereby the pin portion 54 (see
If pressure continues to be exerted on the door 2, the rotor 31 rotates clockwise (see
If pressure on the door 2 is continued, the rotor 31 rotates until the pin portion 54 engages the bend 81 of the return branch 75, which prevents further rotation (see
If pressure is released, the action of the spring 4 causes the rotor 31 to rotate slightly anti-clockwise (see
A second embodiment of the slowing device of the invention will now be described with reference to FIGS. 15 to 17. Elements which are the same as those of the previous embodiment are indicated with the same reference numbers followed by an apostrophe. This embodiment is substantially similar to the previous one, therefore only those elements which are different will be described, and reference should be made to the previous description for any remaining details.
In the present embodiment, generally indicated 15′, a casing 17′, which defines internally a substantially cylindrical chamber 18′ open at one end, has a radial extension 17a′ and, on opposite sides with respect to the direction defined by the radial extension 17a′, a pair of lateral wings 19′ each having a resilient flap portion 19b′ extending upwardly. These portions 19b′ are provided for rapid engagement coupling with one of the two bodies whose relative movement needs to be slowed, for example with the structure S of the tape recorder. These portions 19b′ could, of course, be of a different shape, being folded downwards, for example, or the lateral wings 19′ could have fixing holes similar to those of the embodiment described earlier.
A rotor 31′ housed inside the chamber 18′ comprises a disc portion 32′ arranged inside the chamber 18′ and a shaft portion 33′ which extends axially from the centre of the disc portion 32′ and protrudes from a lid 21′ of the chamber 18′, passing through a central hole 22′ through this lid 21′. An intermediate axial portion 33b′ of the shaft portion 33′ of the rotor 31′ is arranged so that a rotatable arm element 35′ can be mounted, while the free end 33a′ of the shaft portion 33′ is fixable to one of the two bodies whose relative movement needs to be slowed, for example to the door 2. Unlike the previous embodiment, the device 15′ is intended to be mounted at the pivot axis of the door 2, in such a way that this pivot axis coincides with the axis of rotation of the rotor 31′. The coupling provided by the pinion 16 and the rack 6 is therefore no longer required.
The rotatable arm element 35′, which extends radially from the shaft portion 33′ of the rotor 31′, is able to rotate integrally with the rotor 31′, passing over the radial extension 17a′ of the casing 17′. As will be explained later, it is necessary to maintain a narrow space 36′ between the opposing surfaces of the shaft portion 33′ and the radial extension 17′ when, during its rotation, the rotating arm element 35′ passes over the radial extension 17a′. To this end, the radial extension 17a′ has a flap portion 37′ which extends substantially vertically from its distal end and has a free end 37a′ folded inwardly, so as to form a stop for limiting flexure of the distal portion of the rotatable arm element 35′.
With reference to
With reference to
A third embodiment of the slowing device of the invention will now be described with reference to FIGS. 18 to 20. Elements which are the same as those of the previous embodiments have been given the same reference number followed by two apostrophes. The present embodiment is substantially similar to the second, therefore only those elements which differ will be described, reference being made to the descriptions of the first and second embodiments for any remaining details.
In this embodiment, generally indicated 15″, a casing 17″, defining internally a substantially cylindrical chamber 18″, has a radial extension 17a″. The cylindrical chamber 18″ is open at one end, while the other end is provided with a base 23″ with a central through hole 23a″ and a pin portion 24″ projecting axially from the centre of the base 23″ of the chamber 18″ inwardly of the chamber, with the hole 23″ coaxially passing through it.
A rotor 31″ housed within the chamber 18″ comprises a disc portion 32″ inside the chamber 18″ and a shaft portion 33″ which extends axially from the centre of the disc portion 32″ and protrudes through the central hole 23a″ in the base 23″ of the chamber 18″. The free end 33a″ of the shaft portion 33″ of the rotor 31″ is arranged for enabling a rotatable arm element 35″ to be fitted. The rotor 31″ has a coaxial through-hole 31a″, aligned with a central hole 22″ through a lid 21″ which closes the open end of the chamber 18″. The through-hole 31a″ of the rotor 31″ is arranged for securing to a rod (not shown) which defines a pivot axis for the door 2 fixed to the structure S. The radial extension 17a″ of the casing 17″ is fixable to the door 2. In the same way as in the second embodiment, the device 15″ is intended to be mounted coincident with the pivot axis of the door 2, in such a way that this pivot axis coincides with the axis of rotation of the rotor 31″. However, while in the second embodiment the device 15′ is intended to be positioned laterally in relation to the door 2, in the third embodiment the device 15″ is intended to be positioned in a mid position along the pivot axis of the door 2.
The rotor 31″ has a plurality of vane portions 61″ extending axially from the periphery of the disc portion 32″, between the pin portion 24″ and the wall of the cylindrical chamber 18″, while the disc portion 32″ is enclosed between the lid 21″ of the cylindrical chamber 18″ and the top of the pin portion 24″.
Extending radially from the shaft portion 33″ of the rotor 31″, the rotatable arm element 3511 of the rotor 31″ is able to rotate with the rotor 31″, passing beneath the radial extension 17a″ of the casing 17″. The positions of the radial extension 17a″ of the casing 17″ and of the rotatable arm element 35″ of the rotor 31″ are reversed compared to those of the second embodiment. A space 36″ is defined between the radial extension 17a″ and the rotatable arm element 35″ and kept small by a flap portion 37″ which extends substantially vertically from the distal end of the rotatable arm element 35″ and has a free end 37a″ folded inwards.
With reference to
With reference to
It will be appreciated that, although it has internal latch means, the slowing device according to the first embodiment of the invention has a structure which is more compact and is simpler to manufacture than the prior art, wherein the axial depth of the casing can be of only a few millimetres, while maintaining the high reliability of the device. In particular, the Applicant has made the portion 73 of the groove 70 with an angular extent of around 10-20° in a device with a diameter of around 1.5 cm. In this way, by fitting this device with the rack 6, it is possible to activate the release mechanism with an angular movement of the door of only a few degrees.
The devices according to the second and third embodiments of the invention are suited, on the other hand, to be fitted directly onto the pivot axis of the door 2. By arranging the portion 731, 73″ of the groove 70′, 70″ on the rotatable arm element 35′ or on the radial extension 17a″, it is possible to adapt the angular extent of this portion 73′, 73″ and its distance from the axis of rotation of the rotor 31′, 31″ to the extent of the angular movement required in order to release the latch mechanism (which normally depends on the height of the door 2).
It is understood that the invention is not limited to the embodiments described and illustrated here, but that the shape and arrangements of parts, construction and operating details can be modified. In the first embodiment, for example, the arm element could be mounted on the disc portion of the rotor, while the groove could be formed in the base of the chamber itself. Alternatively, it is possible to arrange these latch means between the upper surface of the disc portion and the lower surface of the casing lid, or on both sides of the disc portion.
The groove 70, 70′, 70″ can of course be orientated as a mirror image of that described, thereby causing the device to be locked or released by rotation in the opposite sense to that described above.
In addition, the device according to the first embodiment can be coupled with a rectilinear rack in order to control the movement of a slidable drawer.
Number | Date | Country | Kind |
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TO2003U000058 | Mar 2003 | IT | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IT03/00535 | 9/8/2003 | WO | 8/31/2006 |