Telescopic arrangement
10837513 ยท 2020-11-17
Assignee
Inventors
Cpc classification
F16F2230/0047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/0218
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/3292
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2224/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2222/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2232/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A telescopic arrangement (10) having a hollow cylinder (12) and a part (14) which is telescopically engaged with the cylinder. The arrangement is provided with at least one coil (22) constituting a first form of pulse-induction device, and at least one target (28) constituting a second form of pulse-induction device, to monitor the position of the said part (14) relative to the cylinder (12). A plurality of devices (22) each of one of the said first and second forms of device are positioned on the outside of the cylinder (12), at different respective positions therealong. At least one (28) of the other of the said first and second forms of device is fixed relative to the said part (14) of the arrangement (10) in a position such that it is moved over the said plurality of devices (22) in succession as the said part (14) is telescopically moved relative to the cylinder (12) of the arrangement (10).
Claims
1. A telescopic arrangement having a hollow cylinder and a part which is telescopically engaged with the cylinder, in which the arrangement is provided with at least one coil constituting a first form of pulse-induction device, and at least one target constituting a second form of pulse-induction device, to monitor the position of the said part relative to the cylinder, wherein a plurality of devices each of one of the first and second forms of device are positioned on the outside of the cylinder, at different respective positions therealong, and at least one of the other of the said first and second forms of device is fixed relative to the said part of the arrangement in a position such that it is moved over the said plurality of devices in succession as the said part is telescopically moved relative to the cylinder of the arrangement; wherein the telescopic arrangement is provided with a sleeve that is fixed relative to and surrounds the said part of the arrangement and within which extends the cylinder, or at least a portion of the cylinder, depending upon the position of the said part relative to the cylinder, the said at least one of the said other form of device being attached to the interior of the sleeve at the end thereof from which extends a portion of the cylinder.
2. A telescopic arrangement according to claim 1, wherein the said plurality of devices are positioned linearly along the cylinder, with their centers lying on an imaginary line that is parallel to the axis of the cylinder.
3. A telescopic arrangement according to claim 1, wherein the said plurality of devices lay flat against the cylinder.
4. A telescopic arrangement according to claim 1, wherein in that the sleeve is made of a plastics material.
5. A telescopic arrangement according to claim 1, wherein the sleeve is made from an electrically conductive material, and a shield of electrically insulative magnetically permeable material is provided between the sleeve and the said at least one of the said other form of device.
6. A telescopic arrangement according to claim 1, wherein the cylinder is made from an electrically conductive material and a shield made of a material which is relatively electrically insulative and which is magnetically permeable is provided between the said plurality of devices and the cylinder.
7. A telescopic arrangement according to claim 1, wherein the said one form of device is a pulse-induction coil.
8. A telescopic arrangement according to claim 7, wherein the respective axes of the pulse-induction coils are transverse of the axis of the cylinder.
9. A telescopic arrangement according to claim 8, wherein each coil is electrically connected to an associated coil located laterally alongside it, each coil being wound with the opposite handedness to that of its associated coil.
10. A telescopic arrangement according to claim 7 wherein the pulse-induction coils are printed on respective circuit boards.
11. A telescopic arrangement according to claim 10, wherein the pulse-induction coils are printed on respective circuit boards as respective rectangular spirals.
12. A telescopic arrangement according to claim 1 wherein the said one form of device is a pulse-induction target, and there are a plurality of pulse-induction coils fixed relative to the said part of the arrangement, to provide a Nonius configuration.
13. A telescopic arrangement according to claim 1, wherein the telescopic arrangement is constituted by a piston and cylinder arrangement.
14. A shock absorber comprising a piston and cylinder arrangement as claimed in claim 13.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) An example of a telescopic arrangement made in accordance with the present invention will now be described in greater detail with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF EMBODIMENTS OF THE DISCLOSURE
(7) Accordingly, the present invention is directed to a telescopic arrangement having a hollow cylinder and a part which is telescopically engaged with the cylinder, in which the arrangement is provided with at least one coil constituting a first form of pulse-induction device, and at least one target constituting a second form of pulse-induction device, to monitor the position of the said part relative to the cylinder, characterised in that a plurality of devices each of one of the said first and second forms of device are positioned on the outside of the cylinder, at different respective positions therealong, and at least one of the other of the said first and second forms of device is fixed relative to the said part of the arrangement in a position such that it is moved over the said plurality of devices in succession as the said part is telescopically moved relative to the cylinder of the arrangement.
(8) This provides the advantages of an accurate and relatively inexpensive construction,
(9) It is preferable that the said plurality of devices are positioned linearly along the cylinder, with their centers lying on an imaginary line that is parallel to the axis of the cylinder, for simplicity of manufacture.
(10) Preferably the said plurality of devices lay flat against the cylinder. This facilitates a compact construction for the arrangement.
(11) The telescopic arrangement may be provided with a sleeve that is fixed relative to and surrounds a said part of the arrangement and within which extends the cylinder, or at least a portion of the cylinder, depending upon the position of the said part relative to the cylinder, the said at least one of the said other form of device being attached to the interior of the sleeve at the end thereof from which extends a portion of the cylinder.
(12) This provides protection for the said part and cylinder from dirt as well as providing a firm support for the said at least one of the said other form of device.
(13) In the event that the cylinder is made from steel or other electrically conductive material, a shield made of a material which is relatively electrically insulative (compared to copper) and which is magnetically permeable, for example an amorphous metal alloy, may be provided between the said plurality of devices and the cylinder. This inhibits interference from eddy currents that would otherwise be created in the cylinder when the arrangement is in use.
(14) The sleeve may be made of a plastics material. In the event that the sleeve is made from steel or other electrically conductive material, a shield of electrically insulative magnetically permeable material, for example an amorphous metal alloy, may be provided between the sleeve and the said at least one of the said other form of device. This inhibits interference from eddy currents that would otherwise be created in the sleeve when the arrangement is in use.
(15) The said one form of device may be a pulse-induction coil.
(16) This provides a relatively simple construction.
(17) Preferably the respective axes of the coils are transverse of the axis of the cylinder. This facilitates the telescopic construction.
(18) Each coil may be electrically connected to an associated coil located laterally alongside it, each coil being wound with the opposite handedness to that of its associated coil. As a result, interference form stray electromagnetic radiation is inhibited, and each coil and its associated coil will be wholly covered, or wholly uncovered, or covered to the same extent by the target, regardless of the relative position of the said part relative to the cylinder. One manner in which each coil and its associated coil may be wound in this way is described and illustrated in our co-pending patent application number 1608207.5, the whole contents of which application are hereby imported into this present specification by direct reference. Thus the coils may be printed on respective circuit boards, for example as rectangular spirals.
(19) In an alternative embodiment of the present invention, the said one form of device is a pulse-induction target, and there are a plurality of pulse-induction coils fixed relative to the said part of the arrangement, to provide a Nonius configuration as described in our co-pending European patent application number 14002097.5, the whole contents of which are hereby imported into this present specification by direct recitation.
(20) The telescopic arrangement may be constituted by a piston and cylinder arrangement.
(21) The piston and cylinder arrangement may be constituted by a shock absorber.
(22) The shock absorber 10 shown in
(23) A sleeve 20 made from a plastics material extends from the anchor portion 16 parallel with the rod 14 thereby to surround the latter, and at its opposite end receives a portion of the cylinder 12 which is nearer to the anchor portion 16. The extent to which the cylinder 12 extends within the sleeve 20 depends upon the extent to which the rod 14 extends within the cylinder 12 within the range of possible positions of the piston 13 within the cylinder 12 by a relative sliding movement between the cylinder 12 and the rod 14.
(24) With the shock absorber 10 oriented as shown in
(25) Six coils 22 are shown spaced apart along the length of the cylinder 12 in
(26) The coils 22 are enclosed within a non-metallic or thin metallic cover 26 having an open rectangular cross-section.
(27) As can be seen more clearly from
(28) The coils 22 are connected to circuitry {not shown in
(29) It will be appreciated in this respect that the presence of the layer 24 provides a shield and enables the circuitry to measure a significant signal from a coil 22 from a much greater distance than if the shield were absent, because magnetic field lines cannot penetrate the amorphous metal, so that they are directed outwardly, and then up towards the target 28, effectively focusing the magnetic field towards the target.
(30) When the shock absorber 10 is in use, its length continuously varies in accordance with the forces and impulses acting on the anchor portions 16 and 18, to vary the overall length of the shock absorber 10. During use, electrical pulses are continuously fed to the coils 22 by the circuitry (not shown in
(31) Numerous variations and modifications to the illustrated construction may occur to the reader without taking the resulting construction outside the scope of the present invention. For example, the sleeve 20 may be made of a metal, and a layer of amorphous metal alloy may be arranged between the target 26 and the sleeve 20, and extend further along the interior of the sleeve 20 all the way to the anchor portion 16, to reduce the effect of eddy currents within the sleeve 20 when the shock absorber is in use. The coils 22 may be replaced by pulse-induction targets, and the target 28 may be replaced by pulse-induction coils, and circuitry may be provided to enable measurements to be made on the basis of the Nonius principle. Each coil 22 may be electrically connected to an associated coil (not shown) located laterally alongside it, each coil 22 being wound with the opposite handedness to that of its associated coil (not shown). As a result, each coil 22 and its associated coil (net shown) will be wholly covered, or wholly uncovered, or covered to the same extent by the target or activator 28, regardless of the relative position of the piston 13 within the cylinder 12. The coils 22 may be formed by being printed on respective printed circuit boards, for example as rectangular spirals, rather than as illustrated in