Method of manufacturing an electrically conductive extension/compression spring
09692198 ยท 2017-06-27
Assignee
Inventors
- Lane Daniel Dicken (Long Grove, IA, US)
- Dennis Eugene Lund (Bettendorf, IA, US)
- Mark Russell Squires (Davenport, IA, US)
Cpc classification
Y10T29/49073
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
H01R43/16
ELECTRICITY
F25B2309/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01R13/6205
ELECTRICITY
F16F1/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/4906
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
Y10T29/49117
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
H01R13/6315
ELECTRICITY
H01B13/00
ELECTRICITY
International classification
H01R43/16
ELECTRICITY
F16F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electrically conductive spring having first and second coils defining first and second electrical pathways for completing an electric circuit between two components which may move relative to each other. In one embodiment, the spring is a double start helical spring with first and second coils extending between respective, electrically insulated ends with the coils extending in alternating, spaced relation to each other.
Claims
1. A method of manufacturing an electrically conductive extension/compression spring comprising the steps of: a) providing a cylinder of electrically conductive material having first and second end walls; b) machining said cylinder into separate first and second coils each having coil turns extending between respective first and second ends; c) providing first and second electrical insulating components; and d) connecting said first and second coils to said first and second electrical insulating components with said first coil turns alternating in spaced relation between said second coil turns and said first and second ends of said first coil aligned with said first and second ends of said second coil, respectively, said first electrically insulating component electrically insulating said first ends of said first and second coil, and said second electrically insulation component electrically insulating said second ends of said first and second coils and thereby electrically insulating said first and second coils from each other.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENT
(14) Referring now the drawing, a first embodiment of the present invention is seen in
(15) The invention further provides a method of manufacturing an electrically conductive extension/compression spring comprising the steps of:
(16) a. providing a cylinder 28 of electrically conductive material having first and second end walls 28a,b (see
(17) b. machining separate first and second coils 12, 14 from said cylinder with said first coil having first coil turns 12c extending between and defining a first electrical path between first and second end walls 12a, 12b of said first coil, and said second coil 14 having second coil turns 14c extending between and defining a second electrical path between first and second end walls 14a, 14b of said second coil;
(18) c. providing first and second electrical insulating components 16,18, respectively; and
(19) d. attaching said first end walls 12a, 14a of said first and second coils to said first electrically insulating component 16, and attaching said second end walls 12b, 14b of said first and second coils to said second electrically insulating component 18 with said first coil turns in alternating, spaced relation to said second coil turns, e. whereby said first electrically insulating component 16 electrically insulating said first end walls 12a, 14a of said first and second coil, and said second electrically insulation component 18 electrically insulating said second end walls 12b, 14b of said first and second coils and thereby electrically insulating said first and second coils.
(20) Electrical contacts 20a,b and 22a,b are connected to the first and second coil ends 12a,b and 14a,b, respectively, to provide electrical connection between two components which move relative to each other. For example, as seen in
(21)
(22) a. providing a cylinder 28 of electrically conductive material having first and second, opposite end walls 28a,b (see
(23) b. forming first and second notches 30a,b in said first end wall 28a thereby defining first and second end wall segments 28c,d (see
(24) c. forming third and fourth notches 30c,d in said second end wall 28b thereby defining third and fourth end wall segments 28e,f;
(25) d. providing electrical insulating components 30a,b within each of said first and second notches 30a,b and thereby electrically insulating said first and second end wall segments 28c,d from each other, and providing electrical insulating components 30c,d within each of said third and fourth notches 30c,d and thereby electrically insulating said third and fourth end wall segments 28e,f from each other (see
(26) e. machining first and second coil turns 32, 34 in alternating, spaced relation into said cylinder 28 with said first coil turns 32 extending between and defining a first electrical path between said first and third wall segments 28c, 28e, and said second coil turns 34 extending between and defining a second electrical path between said second and fourth wall segments 28d, 28f, said first electrical path being electrically insulated from said second electrical path.
(27) In yet another embodiment of the invention seen in
(28) In yet another embodiment of the invention seen in
(29) In all embodiments, any type of appropriate electrical connection is provided, e.g., direct solder, terminal lugs or soldering wires to electrical contacts which are fastened to the ends of the springs, to establish an electric circuit between any two components requiring a flexible yet durable electric circuit to be established between two components such as a power source and a load moving relative to the power source as seen in
(30) As explained in the Background of the Invention, one type of device requiring an electrically wired connection between movable components is a closed cycle cryogenic cooler which is commonly used to cool devices such as infrared detectors.
(31) Compressor 200 includes first and second pistons 212 and 214 which reciprocate toward and away from each other to compress a working gas within the space 216 between the piston heads. Movement of the pistons toward each other compresses the gas which is directed out of the compressor through gas line 218 to a working device such as an expander (not shown). The reciprocating movement of the pistons 212 and 214 is controlled through a motor coil 220 and 222, respectively, which, when energized, move relative to stationary magnets 224, 226, respectively. Pistons 212, 214 connect to motor coils 220, 222 via connecting elements 228, 230, respectively, via suitable securing elements such as bolts 223, 225, for example. As discussed with reference to the prior art seen in
(32) Spring 10 (or any other embodiment of the inventive spring described and claimed herein) is attached to connecting element 230 with any suitable fastener such as screws 231 which may be passed through aligned openings in the spring 10, insulating components 16,18 and connecting element 230 (see, for example, openings 12d, 14d in
(33) It will thus be appreciated spring 10 acts as a flexible electrical connection between two components which may move relative to each other such as a power source 24 and a load (motor coil) 222. When energized, motor coil 222 reciprocates along longitudinal axis x-x. Since piston 214 is connected to motor coil 222 via connecting element 230, piston 214 reciprocates together with motor coil 222. In the embodiment of spring 10 and 10, a single spring formed of equal or near equal diameter, interleaved, spaced coils 12c and 14c provide separate conducting paths to complete the electric circuit between the power source and the motor coils. The spring end walls 12a, 14a are together mounted in fixed relation to housing end wall 238 which remains stationary with respect to reciprocating piston 214 and motor coil 222. Since opposite spring end walls 12a and 14a are fixed to connecting element 240 which is fixed to motor coil 222, end walls 12a, 14a move together therewith and, as such, wires 20a and 22a which interconnect motor coil 222 and contacts 20a, 22a, also move therewith and do not undergo repeated flexing and straightening as occurred with prior art wires 140, 142 which extended to the exteriorly positioned stationary power source to complete the electrical circuit.
(34) Conversely, in the present invention, the separate coils 12c, 14c of spring 10 (or other spring embodiment) provide a flexible electrical connection between the moving motor coil 222 and stationary power source 26. Since the electrical connection is now provided by spring coils 12c, 14c which may easily move between compressed, neutral and extended positions, the premature wear issues of the prior art are eliminated and the life of the device is extended significantly.