Compression spring assembly and methods of using the same
11060580 ยท 2021-07-13
Assignee
Inventors
Cpc classification
B05B11/1023
PERFORMING OPERATIONS; TRANSPORTING
F16F1/377
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2230/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2236/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/3605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2234/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/445
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B11/1074
PERFORMING OPERATIONS; TRANSPORTING
F16F2236/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B11/1076
PERFORMING OPERATIONS; TRANSPORTING
A47K5/1205
HUMAN NECESSITIES
International classification
F16F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/377
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An all plastic compression spring assembly includes a slotted tubular spring element formed from a tensile polymer material and upper and lower loading cones received at opposing upper and lower ends of the slotted tubular spring element. The upper loading cone may be axially compressible towards the lower loading cone within the slotted tubular spring element whereby the slotted tubular spring element radially expands in tension to create an opposing radial contraction force, and in turn, an axial extension spring force. When released, the spring element elastically returns to its normal at rest shape, returning the cones to their normal at rest positions. In some dispenser configurations, the lower loading cone may be stationary or fixed within the dispensing head and the upper loading cone may be downwardly compressible toward the lower loading cone by movement of a nozzle head.
Claims
1. A compression spring assembly comprising: a slotted tubular spring element formed from a tensile polymer material, said slotted tubular spring element having an internal surface and an external surface; and first and second circular loading cones received at opposing first and second ends of said slotted tubular spring element, said first and second circular loading cones each having an external surface which slidably engages said internal surface of said slotted tubular spring element, said loading cones being axially compressible toward each other within said slotted tubular spring element, whereby said slotted tubular spring element radially expands in tension and without friction on said external surface to create an opposing axial extension spring force.
2. The compression spring assembly of claim 1 wherein said slotted tubular spring element is cylindrical.
3. The compression spring assembly of claim 1 wherein said slotted tubular spring element has inner wall edges which are chamfered to reduce friction with said external surface of said loading cones.
4. The compression spring assembly of claim 1 wherein said slotted tubular spring element is hyperboloid in shape.
5. The compression spring assembly of claim 1 wherein said loading cones are symmetrical.
6. The compression spring assembly of claim 1 wherein said loading cones have at least one wall section with a wall angle of no less than 11 degrees.
7. The compression spring assembly of claim 1 wherein said loading cones have a first frustoconical pre-load section having a wall angle greater than 11 degrees and a second frustoconical section having a wall angle of no less than 11 degrees.
8. The compression spring assembly of claim 1 wherein said loading cones have a first frustoconical preloading section with a first wall angle and a second loading section with a second wall angle which is less than said first wall angle.
9. A compression spring assembly comprising: a slotted tubular spring element formed from a tensile polymer material, said slotted tubular spring element having an internal surface and an external surface; and first and second circular loading cones received at opposing first and second ends of said slotted tubular spring element, said first and second circular loading cones each having an external surface which slidably engages said internal surface of said slotted tubular spring element, said slotted tubular spring element having inner wall edges which are chamfered to reduce friction with said external surface of said loading cones, said second loading cone being axially compressible toward said first loading cone within said slotted tubular spring element, whereby said slotted tubular spring element radially expands in tension to create an opposing axial extension spring force.
10. The compression spring assembly of claim 9 wherein said slotted tubular spring element has strain reducing ribs extending longitudinally along opposing slot edges.
11. The compression spring assembly of claim 10 wherein said strain reducing ribs are symmetrical.
12. A compression spring assembly comprising: a slotted tubular spring element formed from a tensile polymer material, said slotted tubular spring element having an internal surface and an external surface; and first and second circular loading cones received at opposing first and second ends of said slotted tubular spring element, said second loading cone being axially compressible towards said first loading cone within said slotted tubular spring element said first and second circular loading cones each having an external surface which slidably engages said internal surface of said slotted tubular spring element, whereby said slotted tubular spring element radially expands in tension and without friction on said external surface to create an opposing axial extension spring force, and wherein said loading cones have a first frustoconical preloading section with a first wall angle and a second loading section with a second wall angle which is less than said first wall angle.
13. The compression spring assembly of claim 12 wherein said slotted tubular spring element is cylindrical.
14. The compression spring assembly of claim 12 wherein said slotted tubular spring element has inner wall edges which are chamfered to reduce friction with said external surface of said loading cones.
15. The compression spring assembly of claim 12 wherein said slotted tubular spring element is hyperboloid in shape.
16. The compression spring assembly of claim 12 wherein the first loading cone is a lower stationary loading cone and the second loading cone is an upper movable loading cone.
17. The compression spring assembly of claim 1 wherein said slotted tubular spring element has strain reducing ribs extending longitudinally along opposing slot edges.
18. The compression spring assembly of claim 17 wherein the strain reducing ribs are symmetrical.
19. The compression spring assembly of claim 17 wherein the strain reducing ribs have parallel facing surfaces at the slot edges and opposed convex surfaces extending circumferentially outward from the slot edges.
20. The compression spring assembly of claim 17 wherein the strain reducing ribs have symmetrical convex surfaces extending radially outward from the slot edges.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) While the specification concludes with claims particularly pointing out and distinctly claiming particular embodiments of the instant invention, various embodiments of the invention can be more readily understood and appreciated from the following descriptions of various embodiments of the invention when read in conjunction with the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE INVENTION
(25) Referring now to the drawings, an exemplary embodiment of the present compression spring assembly is generally indicated at 10 in
(26) In the exemplary embodiment, the slotted tubular spring element 12 is cylindrical in shape and has a uniform wall thickness (best illustrated in
(27) The loading cones 14, 16 are identical in shape and are symmetrically inverted to provide opposing axial compression and extension forces on the tubular spring element 12. Referring to
(28) Turning to
(29) Turning to
(30) The dispensing pump 100 comprises an accumulator cup 102 having a clip tube receptacle 104 and ball valve 106 at a lower end thereof. A tubular guide 108 is received in the upper end of the accumulator cup 102, and the tubular guide 108 is secured on a container neck (not shown) with a threaded cap ring 110. The present compression spring assembly 10 is received and guided within the tubular guide 108. As noted above, the angle .sup.1 of the loading wall 26 of the loading cones 14, 16 is a critical factor in determining overall spring assembly diameter. As seen in this pump embodiment 100, the spring assembly 10 fits within the inner walls of the guide 108 which in turn must fit within the neck of the container. Accordingly, the wall angle, spring element material and profile are all factors in determining this specification. A piston rod 112 is received axially through the loading cones 14, 16 and the tubular spring element 12 and extends through the bottom of the guide 108 into the accumulator cup 102 wherein the terminal end is fitted with a piston 112 which forms a seal with the inner wall of the accumulator 102. A nozzle head 116 is secured to the upper end of the piston rod 112 and received over the upper loading cone 16.
(31) In operation, a forcible downward compression of the nozzle head 116 causes a corresponding downward axial movement of the upper loading cone 16 relative to the lower loading cone 14 and outward deflection and loading of the spring element 12 as per the illustrations earlier described in
(32) Turning now to
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(36) In operation, a forcible downward compression of the nozzle head 408 causes a corresponding downward axial movement of the upper loading cone (piston stem head) 410/306 relative to the lower loading cone (closure) 406/304 and outward deflection and loading of the spring element 302 similar to the illustrations earlier described in
(37) It can therefore be seen that the exemplary embodiments provide unique and novel compression spring assemblies in which all the discrete components may be molded from a single plastic material to facilitate single stream plastic recycling. Further, the all plastic compression spring assemblies can be advantageously used in all plastic dispensing pumps which can then also be easily recycled.
(38) While there is shown and described herein certain specific structures embodying various embodiments of the invention, it will be manifest to those skilled in the art that various modifications and rearrangements of the parts may be made without departing from the spirit and scope of the underlying inventive concept and that the same is not limited to the particular forms herein shown and described except insofar as indicated by the scope of the appended claims