DAMPER HAVING REINFORCED CATCHER
20170274719 · 2017-09-28
Inventors
- Sven BROECKX (Hasselt, BE)
- Tomasz GÓRSKI (Laziska Gorne, PL)
- Julien Wilkin (Fraiture, BE)
- Jan WÓJTOWICZ (Bobrowniki, PL)
Cpc classification
B60G2204/12422
PERFORMING OPERATIONS; TRANSPORTING
B60G15/062
PERFORMING OPERATIONS; TRANSPORTING
F16F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G2204/4308
PERFORMING OPERATIONS; TRANSPORTING
B60G15/063
PERFORMING OPERATIONS; TRANSPORTING
B60G2202/312
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A strut-type damper is disclosed. The damper has a shock absorber having a housing with a telescoping piston rod, a coil spring, an upper spring seat operably coupled to a distal end of the piston rod, and a lower spring seat operatively coupled to the housing. The upper and lower spring seats capture the coil spring therebetween. The lower spring seat has a base portion having an opening for receiving the housing and is fixedly securable to the housing. A generally circumferential wall portion extends from the base portion and forms a catcher for catching a broken portion of the coil spring if the coil spring fractures. An impact absorbing structure is formed on the lower spring seat adjacent both of the catcher and the base portion, and is configured to be crushed in the event of a fracture of the coil spring.
Claims
1. A strut-type damper comprising: a shock absorber having a housing with a telescoping piston rod projecting at least partially therefrom; a coil spring; an upper spring seat operably coupled to a distal end of the piston rod; a lower spring seat operatively coupled to the housing of the shock absorber, the upper and lower spring seats capturing the coil spring therebetween; and the lower spring seat including: a base portion having an opening for receiving the housing of the shock absorber and being fixedly securable to the housing; a generally circumferential wall portion extending from the base portion and forming a catcher for catching a broken portion of the coil spring in an event where the coil spring fractures; and an impact absorbing structure formed on the lower spring seat base portion, and configured to be crushed in the event of a fracture of the coil spring, wherein the impact absorbing structure comprises a plurality of spaced apart, impact absorbing structures extending from the base portion arranged and extending circumferentially around the catcher.
2. (canceled)
3. The strut-type damper of claim 1, wherein the impact absorbing structure comprises: a first crush rib arranged to project generally inwardly from an inside wall surface of the catcher towards an axial center of the lower spring seat, the first crush rib having a first height, the first crush rib being operative to be crushed by the broken portion of the coil spring when the coil spring fractures and to absorb energy from the broken portion of the coil spring; and a second crush rib projecting upwardly from the base portion, the second crush rib operating to be crushed by the broken portion of the coil spring and to further help absorb the energy from the broken portion of the coil spring.
4. The strut-type damper of claim 3, wherein the first crush rib is arranged to project radially inwardly generally toward the axial center of the lower spring seat.
5. The strut-type damper of claim 4, wherein the second crush rib is arranged tangentially relative to the axial center of the lower spring seat.
6. The strut-type damper of claim 3, wherein the second crush rib is formed to extend generally perpendicularly to the first crush rib.
7. The strut-type damper of claim 3, wherein the first crush rib and the second crush rib are integrally formed with the catcher and the base portion.
8. The strut-type damper of claim 3, wherein the lower spring seat, the first crush rib and the second crush rib are all integrally formed from plastic.
9. The strut-type damper of claim 1, wherein the lower spring seat further includes at least one coil locating rib formed on the base portion.
10. The strut-type damper of claim 9, wherein the coil locating rib includes a portion in contact with an inside surface of the catcher.
11. The strut-type damper of claim 3, wherein the second crush rib has a different thickness than the first crush rib.
12. The strut-type damper of claim 3, wherein the first crush rib has an upper portion having a first thickness and a lower portion having a second thickness, the second thickness being greater than the first thickness.
13. A strut-type damper comprising: a shock absorber having a housing with a telescoping piston rod projecting at least partially therefrom; a coil spring; an upper spring seat operably coupled to a distal end of the piston rod; a lower spring seat operatively coupled to the housing of the shock absorber, the upper and lower spring seats capturing the coil spring therebetween; and the lower spring seat including: a base portion having an opening for receiving the housing of the shock absorber and being fixedly securable to the housing; a generally circumferential wall portion extending from the base portion and integrally formed with the base portion, the generally circumferential wall portion forming a catcher for catching a broken portion of the coil spring in an event where the coil spring fractures; and a plurality of circumferentially spaced apart, impact absorbing structures formed on the lower spring seat adjacent both of the catcher and the base portion, and extending from an inside wall portion of the catcher, wherein each impact absorbing structure circumferentially and radially extends relative to an axial center of the base portion; and each said impact absorbing structure configured to be crushed in the event of a fracture of the coil spring and to absorb and dissipate energy from the broken portion of a fractured coil spring.
14. The strut-type damper of claim 13, wherein at least one of the impact absorbing structures comprises: a first crush rib extending from an inside wall portion of the catcher and having a first height for absorbing and dissipating energy from the broken portion of the coil spring when the coil spring fractures; and a second crush rib for further absorbing energy when the coil spring fractures.
15. The strut-type damper of claim 14, wherein the first crush rib extends radially inwardly toward the opening from the inside wall portion of the catcher.
16. The strut-type damper of claim 14, wherein the second crush rib extends generally tangentially relative to an axial center of the base portion.
17. The strut-type damper of claim 14, wherein the first crush rib and the second crush rib are integrally formed.
18. The strut-type damper of claim 13, wherein the lower spring seat and the impact absorbing structures comprise an integrally formed component.
19. The strut-type damper of claim 18, wherein the integrally formed component is formed from plastic.
20. A strut-type damper comprising: a shock absorber having a housing with a telescoping piston rod projecting at least partially therefrom; a coil spring; an upper spring seat operably coupled to a distal end of the piston rod; a lower spring seat operatively coupled to the housing of the shock absorber, the upper and lower spring seats capturing the coil spring therebetween; and the lower spring seat including: a base portion having an opening for receiving the housing of the shock absorber and being fixedly securable to the housing; a generally circumferential wall portion extending from the base portion and integrally formed with the base portion, the generally circumferential wall portion forming a catcher for catching a broken portion of the coil spring in an event where the coil spring fractures; and a plurality of impact absorbing structures formed on the lower spring seat adjacent both of the catcher and the base portion, and extending from an inside wall portion of the catcher; each said impact absorbing structure configured to be crushed in the event of a fracture of the coil spring and to absorb and dissipate energy from the broken portion of a fractured coil spring, and each said impact absorbing structure including; and a first crush rib extending from an inside wall portion of the catcher radially inwardly toward an axial center of the lower spring seat, for absorbing and dissipating energy from the broken portion of the coil spring when the coil spring fractures; and a second crush rib integrally formed with the first crush rib and arranged generally tangentially relative to the axial center of the lower spring seat; and wherein the lower spring seat and the impact absorbing structures are integrally formed as a single piece component, the second crush ribs being circumferentially spaced apart from one another.
21. A strut-type damper comprising: a shock absorber having a housing with a telescoping piston rod projecting at least partially therefrom; a coil spring; an upper spring seat operably coupled to a distal end of the piston rod; a lower spring seat operatively coupled to the housing of the shock absorber, the upper and lower spring seats capturing the coil spring therebetween; and the lower spring seat including: a base portion having an opening for receiving the housing of the shock absorber and being fixedly securable to the housing; a generally circumferential wall portion extending from the base portion and forming a catcher for catching a broken portion of the coil spring in an event where the coil spring fractures; and an independent impact absorbing structure including: a plate having a floor portion; a plurality of rib structures projecting outwardly from the floor portion, the rib structures configured to deform and to absorb energy from the broken portion of the coil spring when the coil spring fractures; and wherein the plate has a configuration enabling it to fit within the catcher and to rest on the base portion of the lower spring seat, and to receive an end portion of the coil spring thereon.
22. The strut-type damper of claim 1, wherein the impact absorbing structure comprises a plurality of impact absorbing structures that extend from the base to an inside wall portion of the catcher, wherein an edge of the impact absorbing structure is generally parallel to the base portion.
23. The strut-type damper of claim 1, wherein the impact absorbing structure comprises a plurality of impact absorbing structures that interconnect the base portion and the wall portion, the lower spring seat further comprising a plurality of additional support structures provided on an outside surface of the catcher.
24. The strut-type damper of claim 23, wherein each of the plurality of the impact absorbing structures interconnecting the base portion and the wall portion is aligned with each of the plurality of the additional support structures provided on the outside surface of the catcher.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
[0013]
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DETAILED DESCRIPTION
[0021] The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
[0022] Referring to
[0023] Referring to
[0024] The lower spring seat 18 in this example may be formed from a non-metallic, lightweight material, for example a high strength plastic or a composite. A principal feature of the catcher 28 is the inclusion of a plurality of integrally formed, radially arranged impact absorbing structures 38. In this example the impact absorbing structures 38 take the form of T-shaped structures when viewed in plan (i.e., when looking straight down on an inside surface 26a of the base portion 26).
[0025] With reference to
[0026] Since the first crush ribs 40 project from both an inside surface wall portion 28a of the catcher 28, as well as an inner surface 26a of the base portion 26, they are directly exposed to the coil spring impact if the coil spring 16 fractures. The first crush ribs 40 thus form impact absorbing elements that are designed to deform (i.e., be partially or substantially crushed) to at least partially absorb and dissipate the energy from the fractured coil spring portion if the coil spring 16 fractures. The first crush ribs 40 in one example have a thickness of preferably about 1 mm-3 mm, although it will be appreciated that this dimension may vary depending on various factors, including, but not limited to, the dimensions of the coil spring 16 and/or the cross sectional thickness of its coils. The second crush ribs 42 are designed to collectively form a circumferential plane that further help to ensure that the first crush ribs 40 do not “fold” or collapse too easily toward the base portion 26 when impacted by the broken portion of the coil spring 16. In some instances it may occur that one or more of the second crush ribs 42 receive all or a majority of the impact force from a fractured coil spring. In summary then, both of the first and second crush ribs 40 and 42 cooperatively operate to absorb and dissipate the energy that is produced when the coil spring 16 fractures.
[0027] Referring briefly to
[0028] Referring to
[0029]
[0030] Referring to 7, another embodiment 34′ of the coil locating rib 34 shown. Coil locating rib 36 could likewise be constructed in an identical manner to coil locating rib 34′. Coil locating rib 34′ has been modified to include a radial portion 34a′ having a first portion 34a1 and a second portion 34a2. Second portion 34a2 extends out to the wall portion 28 of the lower spring seat 18. The second portion 34a2 thus further helps to reinforce the catcher 28.
[0031] Referring to
[0032] It will be appreciated that the configuration and dimensions of the various embodiments of the impact absorbing structures 38 described herein may be varied considerably to tailor them to specific coil spring dimensions, spring rates, and other factors. The weight and/or type of vehicle that the strut-type damper 10 is being used with may also influence the number and precise configuration and/or placement of the impact absorbing structures 38.
[0033] The lower spring seat 18, and particularly the construction of the catcher 28, thus forms a means to significantly strengthen the catcher without significantly increasing its weight, dimensions or bulk, or cost of manufacture. Importantly, the catcher 28 of the present disclosure does not require any significant modifications to the construction of a coil spring or to any other portion of a strut-type damper. The entire lower spring seat 18, catcher 28 and impact absorbing structures 38, 38′ or 38″ may be integrally formed as a single component from high strength plastic, from a composite or any other suitably strong, lightweight material.
[0034] While various embodiments have been described, those skilled in the art will recognize modifications or variations which might be made without departing from the present disclosure. The examples illustrate the various embodiments and are not intended to limit the present disclosure. Therefore, the description and claims should be interpreted liberally with only such limitation as is necessary in view of the pertinent prior art.