Jounce bumper for an automotive vehicle suspension system and method for manufacturing such a jounce bumper
By integrating a secondary spring element made of a compact material into the jounce bumper's base body, the challenge of achieving both desirable block length and suspension properties is addressed, resulting in improved suspension performance and simplified installation.
Patent Information
- Application Number
- JP2022533521
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-03
- Filing Date
- 2020-12-03
- Publication Date
- 2025-12-15
- Estimated Expiration
- 2040-12-03
AI Technical Summary
Existing jounce bumpers made from volume-compressible materials face challenges in achieving a desirable block length without adversely affecting damping and suspension properties, as they typically have reduced compressibility and longer block length compared to rubber materials.
Incorporating a secondary spring element made of a compact material within the base body, which is elastically deformable between uncompressed and compressed states, to offset the compressibility of the primary volume-compressible material, thereby increasing the overall block length while maintaining desired suspension characteristics.
The integrated secondary spring element allows for a jounce bumper with improved suspension characteristics and a longer block length, while also protecting the secondary spring element from environmental influences and simplifying installation in the vehicle's suspension system.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a jounce bumper for an automotive vehicle suspension system, the jounce bumper having a longitudinal axis and a base body that functions as a primary spring element, the jounce bumper configured to elastically deform between an uncompressed state and a compressed state, wherein in the compressed state the jounce bumper has a shorter length in the direction of the longitudinal axis than in the uncompressed state, and the base body is made partially or completely of a volume-compressible first material. [Background technology]
[0002] Jounce bumpers of the aforementioned type are commonly known in the art and are used in the automotive industry to provide an additional spring element to shock absorber systems to prevent damage to the shock absorbers in the event of an excessive impact.
[0003] The use of volume-compressible materials such as cellular, and in particular microcellular, polyurethane foams has recently attracted attention due to the advantageous properties of these volume-compressible materials. The manufacture of jounce bumpers, i.e., the manufacture of the base body of such jounce bumpers from these volume-compressible materials, is generally known in the art, inter alia, from documents EPA 6283, EPA 36994, EPA 250969, DEA 19548770 and DEA 1954771.
[0004] In the past, many users have relied on rubber materials instead of volume compressible materials. Rubber or similar materials have reduced compressibility when compared directly with volume compressible materials, but at the same time, they also have a long block length along the longitudinal axis. In some applications, the increased block length is a desirable characteristic, which has caused some hesitation in adopting the use of otherwise advantageous volume compressible materials. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] EPA6283 [Patent Document 2] EPA36994 [Patent Document 3] EPA250969 [Patent Document 4] DEA19548770 [Patent Document 5] DEA1954771 Summary of the Invention [Problem to be solved by the invention]
[0006] The object of the present invention is therefore to provide a jounce bumper which overcomes the above-mentioned problems as much as possible, in particular to propose a jounce bumper whose base body can be made from a volume-compressible material, but which at the same time offers a greater block length without adversely affecting the damping and suspension properties provided by the volume-compressible material. [Means for solving the problem]
[0007] The present invention achieves the object by proposing a jounce bumper of the aforementioned type, wherein the base body further comprises at least one secondary spring element integrated within the base body, the secondary spring element being elastically deformable between a first length in an uncompressed state and a second length in a compressed state, the second length being smaller than the first length and being made partly or completely of a compact second material.
[0008] In the context of the present invention, compact materials are understood to be non-cellular and, insofar as they are not or at least not highly compressible in volume, the reduction in length of these materials along their longitudinal axis being typically at least partially offset by radial expansion inwards and / or outwards.
[0009] The present invention is therefore based on the recognition that the overall block length of a jounce bumper can be increased by incorporating a secondary spring element having material properties that reduce compressibility. During the process of reaching a compressed state, the secondary spring element resists axial compression within limits determined by its spring ratio, which is selected based on customer-specific requirements. At the same time, the primary spring element, i.e., the base body, can still be made of a volumetrically compressible material, which provides a delicate, or "soft," initial deformation resistance, making the jounce bumper an ideal compromise between a purely volumetrically compressible jounce bumper and a purely compact jounce bumper. While the deformation resistance is soft during the initial deformation stage, it gradually increases as deformation progresses, including the increased block length defined by the length of the secondary spring element in the compressed state.
[0010] By incorporating the secondary spring elements into the volume of the base body, the invention proposes a single component, where in prior art solutions the jounce bumper is modified by additional support members, such as stiffening rings, in an attempt to create a progressive stiffness of the jounce bumper. The invention therefore proposes a jounce bumper that has improved suspension characteristics and at the same time allows for a simplified installation in the vehicle's suspension system, in particular by protecting and shielding the secondary spring elements from environmental influences.
[0011] In a preferred embodiment, the base body at least partially, preferably completely, encapsulates the secondary spring element, more particularly the secondary spring element is encapsulated by the base body in a substantially cavity-free manner.
[0012] In a further preferred embodiment, the secondary spring element is configured to have a predetermined block length when in a compressed state.
[0013] In a further preferred embodiment, the primary spring element has a first spring ratio, and the secondary spring element has a second spring ratio that is lower than or equal to the first spring ratio. Spring ratio is understood to mean the ratio by which each spring element can be compressed relative to its uncompressed base state. As an example, a spring element having a length of 100 mm in its base state and 30 mm in its fully compressed state (block length) would have a spring ratio of 70%. Thus, a lower spring ratio indicates a longer block length relative to its length in the uncompressed state.
[0014] More preferably, the spring ratio of the primary spring element (without the secondary spring element) is in the range of greater than 65%, preferably greater than or equal to 70%. Alternatively or additionally, the spring ratio of the secondary spring element is in the range of less than or equal to 70%, preferably less than or equal to 65%.
[0015] In a further preferred embodiment, the secondary spring element is selected from the following list: - coil springs, preferably helical coil springs, - wave springs, a plurality of ring elements, preferably disc springs or washers, spaced apart from one another in the direction of the longitudinal axis, or - Elastic deformable cage, is selected from.
[0016] In a preferred embodiment, the secondary spring element is more radially stiff than the primary spring element, especially when using one of the elements from the aforementioned list. In this case, the radial direction is understood to be perpendicular to the longitudinal axis. This allows for more uniform deformation of the primary spring element in the axial direction, since radial expansion is limited by the secondary spring element. This allows the jounce bumper to be designed narrower, i.e., narrower in width relative to its length. As a result, peripheral parts of the vehicle or the vehicle suspension system, for example, can also be dimensioned more efficiently.
[0017] Alternatively or additionally, the secondary spring elements are preferably longitudinally softer (as opposed to stiffer) than the primary spring elements, which allows for the desired deformation behavior (initially soft, then progressively stiffer) while also contributing to increasing the block length.
[0018] In a further preferred embodiment, the first material is a cellular polyisocyanate polyaddition product.
[0019] The base body here can be made of an elastomer, but also of several elastomers present in layered, shell or other form, or in a mixture with one another. The polyisocyanate polyaddition products are preferably based on microcellular polyurethane elastomers, on thermoplastic polyurethanes, or a combination of the two materials, which may optionally have a polyurea structure.
[0020] In a preferred embodiment, 200 kg / m according to DIN 53420 3 to 1100 kg / m 3 , preferably 300 kg / m 3 to 800 kg / m 3 Density of 2N / mm according to DIN 53571 2 , preferably 2N / mm 2 to 8N / mm 2 Particularly preferred are microcellular polyurethane elastomers having a tensile strength of 100%, preferably 300% to 700% according to DIN 53571, and a tear strength of 8 N / mm to 25 N / mm according to DIN 53515.
[0021] The elastomer is preferably a microcellular elastomer based on a polyisocyanate polyaddition product, preferably a microcellular elastomer having cells with a diameter of 0.01 mm to 0.5 mm, particularly preferably 0.01 to 0.15 mm.
[0022] Elastomers based on polyisocyanate polyaddition products and their preparation are generally known and are extensively described, for example in EPA 62835, EPA 36994, EPA 250969, DEA 19548770 and DEA 19548771.
[0023] Conventionally, preparation is carried out by reacting an isocyanate-reactive compound with an isocyanate.
[0024] Elastomers based on cellular polyisocyanate polyaddition products are typically produced in a mold in which reactive starting components are reacted with one another. Suitable molds here are generally conventional molds, such as metal molds, whose shape ensures the three-dimensional shape of the spring element according to the invention. In one embodiment, the profile elements are directly incorporated into the mold; in a further embodiment, they are retroactively incorporated into the concentric base body. In a preferred embodiment, the concentric spring element is cooled to solidification, preferably with liquid nitrogen, and then processed in this state.
[0025] The polyisocyanate polyaddition products can be produced by generally known methods, for example by using the following starting materials in a one- or two-stage process: (a) isocyanates, (b) a compound reactive with isocyanates; (c) water, and optionally (d) a catalyst; (e) a blowing agent and / or (f) auxiliary and / or additional substances, such as polysiloxanes and / or fatty acid sulfonates.
[0026] The surface temperature of the inner mold wall is typically between 40°C and 95°C, preferably between 50°C and 90°C. The production of molded parts is advantageously carried out with an NCO / OH ratio of 0.85 and 1.20. The heated starting components are mixed and introduced into a heated mold, preferably a closed mold tool, in an amount corresponding to the desired molded part density. The molded part is cured for 5 to 60 minutes and can then be removed from the mold. The amount of reaction mixture introduced into the mold tool is typically measured so that the resulting molded body has the desired density. The starting components are typically introduced into the mold tool at temperatures between 15°C and 120°C, preferably between 30°C and 110°C. The degree of compression for producing the molded body is between 1.1 and 8, preferably between 2 and 6. The cellular polyisocyanate polyaddition products are suitably produced in open or, preferably, closed mold tools by the "one-shot" method, using high-pressure, low-pressure, or, in particular, reaction injection molding (RIM) techniques. The reaction is carried out by compression, especially in a closed molding tool. The reaction injection molding technique is described, for example, in "Integralschaumstoffe" by H. Piechota and H. Roehr, Carl Hanser-Verlag, Munich and Vienna, 1975; DJ Prepelka and JL Wharton, Journal of Cellular Plastics, March / April 1975, pp. 87-98; and U. Knipp, Journal of Cellular Plastics, March / April 1973, pp. 76-84.
[0027] In a further preferred embodiment, the second material comprises or consists of: an elastomer, a metal, preferably steel, a steel alloy, aluminum or an aluminum alloy, a fiber composite material, or a combination of some or all of the foregoing materials. If a metal is used, a primer is preferably disposed between the primary and secondary spring elements to improve the mechanical bond between the two spring elements and extend the life of the jounce bumper.
[0028] The second material preferably has the following properties: a Young's modulus of 225 MPa or more, more preferably 750 MPa or more, or preferably 2200 MPa or less, or particularly preferably in the range from 800 MPa to 2200 MPa; - a Shore hardness of at least 40D, preferably at least 60D, or preferably a Shore hardness of at most 90D, or particularly preferably a Shore hardness in the range from 60D to 90D; - a tensile strength of 40 MPa or more, or preferably a tensile strength of 70 MPa or less, or particularly preferably a tensile strength in the range from 40 MPa to 70 MPa; - 1.10g / cm 3 Density of 1.45 g / cm or more, or preferably 1.45 g / cm 3 or particularly preferably 1.10 to 1.45 g / cm 3 Density in the range of have one, some, or all of the following:
[0029] The secondary spring element preferably has an initial longitudinal stiffness in the range of 60 N / mm or less, preferably 20 N / mm or less, more preferably 10 N / mm or less.
[0030] Preferably, the secondary spring element has an initial longitudinal stiffness in the range of 3 N / mm or more, preferably 5 N / mm or more.
[0031] The Young's modulus is preferably determined in accordance with DIN EN ISO 527. The hardness is preferably determined in accordance with DIN ISO 7619-1(3S). The tensile strength is preferably determined in accordance with DIN 53504-S2.
[0032] In a particularly preferred embodiment, the second material comprises or consists of an elastomer, said elastomer being selected from the following list: - Polyether-based polyurethanes, - Polyester-based polyurethane, - polyether-based thermoplastic polyurethanes, - polyester-based thermoplastic polyurethane, - semi-crystalline thermoplastic, - fibre composites with thermoplastic polyurethane as matrix material, said thermoplastic material being preferably polyester-based; is selected from.
[0033] Advantageously, these materials can be chemically bonded to volume-compressible materials such as the cellular polyisocyanate polyaddition products mentioned above.
[0034] A preferred polyether- or polyester-based polyurethane would be, for example, Elasturan®, available commercially from BASF Polyurethanes GmbH, Lemförde, Germany.
[0035] A preferred polyether-based TPU would be Elastollan® line 12, such as 1283 D 11 U 000 or 1278 11 U 000, commercially available from BASF Polyurethanes GmbH, Lemförde, Germany. A preferred polyester-based fiber composite would be Elastollan® line R, such as R2000, commercially available from BASF Polyurethanes GmbH, Lemförde, Germany.
[0036] A preferred polyester-based TPU would be, for example, Ellastolan® C74D50, commercially available from BASF Polyurethanes GmbH, Lemförde, Germany.
[0037] Preferred semi-crystalline thermoplastics are, for example, polyoxymethylene (POM) or polyamides such as PA6.6.
[0038] In a further preferred embodiment, the secondary spring element is a wave spring as described above, having a first end, an opposite second end, and a number of undulating rings disposed adjacent to the two ends, each ring undulating along the longitudinal axis. In other words, the undulating rings extend circumferentially around the secondary spring element and have a serpentine shape between a portion near the first end and a portion near the second end. At their portions nearest one of the ends, each undulating ring is preferably connected to either one of the ends or an adjacent undulating ring.
[0039] More preferably, the wave spring is integrally formed such that the ends and rings join together seamlessly.
[0040] In a preferred embodiment, the secondary spring element includes a plurality of junctions, where one of the rings meets either one of the end portions or an adjacent ring, with the understanding that the rings of the plurality of undulating rings closest to each end meet their adjacent end portions, while the intermediate rings meet each other.
[0041] In a further preferred embodiment, the junctions for adjacent rings are uniformly formed across the secondary spring element. Even more preferably, the junctions where the rings meet at the ends are also uniformly formed across the secondary spring element.
[0042] In a further preferred embodiment, for all junctions or at least for junctions between adjacent rings, adjacent junctions are spaced apart from each other at a predetermined angle relative to the longitudinal axis, the angle preferably being in the range of 15° to 165°, more preferably 60° to 120°, and particularly preferably 75° to 105°.
[0043] Preferably, adjacent junctions are spaced apart from one another at an angle of 90° relative to the longitudinal axis.
[0044] The aforementioned equidistant distribution of adjacent junctions achieves an improved uniformity of elastic deformations in lateral bending of the secondary spring element in particular and of the jounce bumper in general, which has a positive effect on the deformation characteristics of the jounce bumper as a whole.
[0045] In a further preferred embodiment, each confluence includes a longitudinally extending narrowing, which contributes to a more flexible deformation of the secondary spring element.
[0046] In a further preferred embodiment, at least one of the ends of the secondary spring element has a plurality of inwardly extending projections. Preferably, the projections are spaced apart from one another to create recesses between adjacent projections. Preferably, the projections are evenly distributed around the circumference of the secondary spring element.
[0047] In a further preferred embodiment, at least one of the ends of the secondary spring element has a plurality of outwardly extending protrusions, which in a preferred embodiment are also made in a similar manner to the inwardly extending protrusions, i.e., distributed (preferably equidistantly) around the circumference of the end so as to define recesses between adjacent protrusions.
[0048] The protrusions allow for better embedding of the secondary spring element inside the primary spring element when filled with the material of the base body.
[0049] In a further preferred embodiment, at least one of the ends of the secondary spring element has a plurality of material passages extending along the longitudinal axis. The material passages may be filled with spring material from the primary spring element, i.e., the base body, or may be void. In the latter case, the material passages function as air escape holes to facilitate compression of the jounce bumper.
[0050] The present invention has been described so far in a first aspect relating to the jounce bumper itself. In a second aspect, the present invention also relates to a method for reducing jounce bumpers for use in the suspension system of a motor vehicle, in particular a jounce bumper according to any one of the above preferred embodiments.
[0051] The present invention achieves the initially stated object by comprising a method comprising the following steps: - providing a mold having an internal shape corresponding to a predetermined external shape of a base body of the jounce bumper to be manufactured; - placing a spring element in the mold, the spring element being resiliently deformable between a first length in an uncompressed state and a second length in a compressed state, the spring element being made partially or completely of a compact material; - casting a reaction mixture around a spring element in a mold, the reaction mixture configured to form a volumetric compressible material; - providing reaction conditions within the mould such that the reaction mixture expands and takes the shape of the base body, forming a volumetric compressible material incorporating a spring element therein.
[0052] Processes for providing the reaction mixture and respective reaction conditions for producing volume compressible materials are generally known in the art, as discussed above.
[0053] Thus, the reaction mixtures and the reaction conditions required for each reaction mixture can and will be selected from commercially available methods and publicly available literature. An important realization of the invention according to the second aspect is that the base body is manufactured in a one- or multi-step procedure, typically including at least one step of casting a liquid reaction mixture into a mold. The additional effort of introducing a secondary spring element into the mold before expanding the reaction mixture to form the volumetrically compressible material is minimal. There is little economic drawback to adding a spring element to the mold (other than the cost of manufacturing or providing the secondary spring element). The procedure for making the base body otherwise remains substantially the same. Because the secondary spring element is already incorporated into the base body and will remain there for as long as the base body is structurally intact (i.e., the entire life of the jounce bumper), no additional manufacturing or attachment steps are required after the base body is manufactured.
[0054] In a third aspect, the present invention achieves the object initially stated under the third aspect by proposing the use of a spring element made partly or entirely of a compact material as a secondary spring element in a base body of a junk bumper, said secondary spring element being integrated in the base body, said base body being formed from a volume compressible material, in particular as described in any one of the preferred embodiments described herein above for the first and second aspects.
[0055] Preferred embodiments of the jounce bumper under the first aspect are simultaneously preferred embodiments of the method of the second aspect and the use of the third aspect, and vice versa. Similarly, the advantages and benefits described herein above with respect to the jounce bumper are simultaneously advantages and benefits of the method of the invention and the use of the invention, and vice versa, as mentioned herein above in order to avoid unnecessary repetition.
[0056] In a fourth aspect, the present invention relates to a spring element for use in a suspension system, in particular a suspension system of a motor vehicle, the spring element being resiliently deformable between a first length in an uncompressed state and a second length in a compressed state, the second length being smaller than the first length, the spring element being made partly or entirely of a compact material.
[0057] The spring elements described herein as integral parts of the jounce bumper according to the invention are preferentially suitable for being incorporated into a base body acting as primary spring elements with a first spring ratio according to the first, second and third aspects, said spring elements being secondary spring elements comprising a second spring ratio lower than the first spring ratio, the spring ratio being defined as the ratio to which the respective spring element can be compressed relative to its uncompressed base state.
[0058] The spring element of this fourth aspect, however, also represents an aspect of the invention in itself, said spring element being configured in accordance with the secondary spring element of the jounce bumper defined in any one of the preferred embodiments above. Preferred embodiments of the so-called secondary spring elements of the first to third aspects are simultaneously preferred embodiments of the fourth aspect, and vice versa. See above and the following description and claims.
[0059] In a preferred embodiment, the spring element is configured to have a predetermined block length when in a compressed state.
[0060] The spring ratio of the spring element is in the range of 70% or less, preferably 65% or less.
[0061] In a further preferred embodiment, the spring element is a wave spring.
[0062] In further preferred embodiments, the spring element comprises or consists of: an elastomer, a fiber composite material, or a combination of some or all of the aforementioned materials.
[0063] The material of the spring element preferably has the following properties: a Young's modulus of 225 MPa or more, more preferably 750 MPa or more, or preferably 2200 MPa or less, or particularly preferably in the range from 800 MPa to 2200 MPa; - a hardness of at least 40D, preferably at least 60D, or preferably a Shore hardness of at most 90D, or particularly preferably a hardness in the range from 60D to 90D; - a tensile strength of 40 MPa or more, or preferably a tensile strength of 70 MPa or less, or particularly preferably a tensile strength in the range from 40 MPa to 70 MPa; - 1.10g / cm 3 Density of 1.45 g / cm or more, or preferably 1.45 g / cm 3 or particularly preferably 1.10 to 1.45 g / cm 3 Density in the range of have one, some, or all of the following:
[0064] The spring element preferably has an initial longitudinal stiffness in the range of 60 N / mm or less, preferably 20 N / mm or less, more preferably 10 N / mm or less, or the secondary spring element has an initial longitudinal stiffness in the range of 3 N / mm or more, preferably 5 N / mm or more, or the secondary spring element has an initial longitudinal stiffness in the range of 3 N / mm to 60 N / mm, preferably in the range of 5 N / mm to 20 N / mm, more preferably in the range of 6 N / mm to 15 N / mm.
[0065] The Young's modulus is preferably determined in accordance with DIN EN ISO 527. The hardness is preferably determined in accordance with DIN ISO 7619-1(3S). The tensile strength is preferably determined in accordance with DIN 53504-S2.
[0066] In a particularly preferred embodiment, the spring element comprises or consists of an elastomer, said elastomer being selected from the following list: - Polyether-based polyurethanes, - Polyester-based polyurethane, - polyether-based thermoplastic polyurethanes, - polyester-based thermoplastic polyurethane, - semi-crystalline thermoplastic, - fibre composites with thermoplastic polyurethane as matrix material, said thermoplastic material being preferably polyester-based; is selected from.
[0067] Advantageously, these materials can be chemically bonded to volume-compressible materials such as the cellular polyisocyanate polyaddition products mentioned above.
[0068] A preferred polyether- or polyester-based polyurethane would be, for example, Elasturan®, available commercially from BASF Polyurethanes GmbH, Lemförde, Germany.
[0069] A preferred polyether-based TPU would be Elastollan® line 12, such as 1282 D 11 U 000 or 1278 11 U 000, commercially available from BASF Polyurethanes GmbH, Lemförde, Germany. A preferred polyester-based fiber composite would be Elastollan® line R, such as R2000, commercially available from BASF Polyurethanes GmbH, Lemförde, Germany.
[0070] A preferred polyester-based TPU would be, for example, Ellastolan® C74D50, commercially available from BASF Polyurethanes GmbH, Lemförde, Germany.
[0071] Preferred semi-crystalline thermoplastics are, for example, polyoxymethylene (POM) or polyamides such as PA6.6.
[0072] In a further preferred embodiment, the spring element is a wave spring as described above, having a first end, an opposite second end, and a number of undulating rings disposed adjacently between the two ends, each ring undulating in the direction of the longitudinal axis. In other words, the undulating rings extend circumferentially around the spring element and have a serpentine shape between a portion near the first end and a portion near the second end. At their portions nearest one of the ends, each undulating ring is preferably connected to either one of the ends or an adjacent undulating ring.
[0073] More preferably, the wave spring is integrally formed such that the ends and rings join together seamlessly.
[0074] In a preferred embodiment, the spring element includes multiple junctions, where one of the rings meets either one of the end portions or an adjacent ring, with the understanding that the rings closest to each end of the multiple undulating rings meet their adjacent end portions, while the intermediate rings meet each other.
[0075] In a further preferred embodiment, the junctions for adjacent rings are uniformly formed across the secondary spring element. Even more preferably, the junctions where the rings meet at the ends are also uniformly formed across the secondary spring element.
[0076] In a further preferred embodiment, for all junctions or at least for junctions between adjacent rings, adjacent junctions are spaced apart from each other by an angle about the longitudinal axis, the angle preferably being in the range of 15° to 165°, more preferably 60° to 120°, and particularly preferably 75° to 105°.
[0077] Preferably, adjacent junctions are spaced apart from one another at an angle of 90° relative to the longitudinal axis.
[0078] The aforementioned equidistant distribution of adjacent junctions achieves improved uniformity of the elastic deformation, especially for lateral bending of the spring element.
[0079] In a further preferred embodiment, each of the confluences includes a longitudinally extending narrowed portion, which contributes to more flexible deformation of the spring element.
[0080] In a further preferred embodiment, at least one of the ends of the spring element includes a plurality of inwardly extending projections. Preferably, the projections are spaced apart from one another to create recesses between adjacent projections. Preferably, the projections are evenly distributed around the circumference of the secondary spring element.
[0081] In a further preferred embodiment, at least one of the ends of the spring element includes a plurality of outwardly extending protrusions, which are also made in a similar manner to the inwardly extending protrusions, i.e., distributed (preferably equidistantly) around the circumference of the end so as to define recesses between adjacent protrusions.
[0082] The protrusions allow for better embedding of the secondary spring element inside the primary spring element when filled with the material of the base body.
[0083] In a further preferred embodiment, at least one of the ends of the spring element includes a plurality of material passages extending in the direction of the longitudinal axis. When the material passages are embedded in the primary spring element, i.e., the base body, they may be filled with spring material or may remain void. In the case of voids, the material passages act as air escape holes, which facilitates compression of the spring element.
[0084] The present invention will now be described in more detail with reference to the accompanying drawings of preferred embodiments, in which: [Brief explanation of the drawings]
[0085] [Figure 1] 1 shows a schematic three-dimensional view of a jounce bumper according to a preferred embodiment. [Figure 2] 2A-2C show different side and cross-sectional views of the jounce bumper of FIG. 1; [Figure 3] 3 shows a schematic three-dimensional view of the secondary spring component of the jounce bumper of FIGS. 1 and 2; FIG. [Figure 4] 4A-4C show different side and cross-sectional views of the spring element of FIG. 3; [Figure 5] 3 shows a schematic three-dimensional view of an alternative secondary spring component of the jounce bumper of FIGS. 1 and 2. FIG. [Figure 6] 6A-6C show different side and cross-sectional views of the spring element of FIG. 5; DETAILED DESCRIPTION OF THE INVENTION
[0086] FIG. 1 shows a typical exterior view of a jounce bumper 1 according to a preferred embodiment of the present invention. Jounce bumper 1 includes a first end surface 3 and an opposite end surface 5 spaced from first end surface 3 along a longitudinal axis L. Jounce bumper 1 has a substantially cylindrical shape and includes a number of transverse annular recesses 7 configured to facilitate axial compression, i.e., compression in the direction of the longitudinal axis. In FIG. 1, jounce bumper 1 is shown in its uncompressed base state. A cylindrical shape is common in automotive applications. However, it should be understood that other shapes, such as polygonal or (partially or fully) elliptical, are also possible within the scope of the present invention.
[0087] In operation, the jounce bumper resiliently deforms in response to an external impact on the vehicle suspension system such that the two end faces 3, 5 move closer together. The resistance that the jounce bumper 1 offers to this deformation characterizes the overall deformation behavior of the jounce bumper 1.
[0088] The jounce bumper 1 has a base body 9 made of a volume compressible material, for example, a microcellular polyurethane foam such as that commercially available as Cellasto® from BASF Polyurethanes GmbH, Lemförde, Germany.
[0089] The bulk compressible material of the base body has favorable deformation behavior in that it deforms easily and elastically, and at the same time has a very short block length in the direction of the longitudinal axis when considered purely by itself.
[0090] The internal construction of the jounce bumper of FIG. 1 is shown in more detail in FIGS. 2a-d, which together form FIG.
[0091] As can be particularly seen from FIGS. 2a-c, which show the cross-section as shown in FIG. 2d, the base body 9 is not the only component of the jounce bumper 1. Rather, the base body 9 functions as a primary spring element, and the jounce bumper further includes a secondary spring element 11 that is preferably incorporated into the base body 9 by molding the base body 9 around the secondary spring element 11. The secondary spring element 11 is preferably made of a compact, non-volume-compressible material that is different from the first material of the base body 9. The secondary spring element is elastically deformable between an uncompressed base state shown in FIGS. 2a-c and a compressed state, where in the compressed state the secondary spring element is shorter in the direction of the longitudinal axis L than in the uncompressed base state. The block length of the secondary spring element itself is significantly longer than if it were made from a volume-compressible material due to the compact nature of its material.
[0092] In this way, the secondary spring element 11 imposes a predetermined minimum block length on the jounce bumper 1 .
[0093] At the same time, the secondary spring element 11 is elastically deformable so as to deform together with the base body 9 .
[0094] By being fully integrated into the material of the base body 9, the secondary spring element is completely shielded from environmental influences, in particular particles, fluids and radiation.
[0095] In particular, the cross-sectional views of Figures 2a-2c show that the secondary spring element 11 is completely encapsulated inside the base body 9. The material strength is not the same around the entire circumference of the secondary spring element 11, according to those cross-sectional views of Figures 2a-2c. The complete structural layout of the secondary spring element according to the preferred embodiment is shown in more detail in Figure 3.
[0096] As can be seen particularly in Figure 3, secondary spring element 11 is formed as a resiliently deformable cage. Secondary spring element 11 includes a first end 13 and an opposite second end 15. When molded into a jounce bumper, first end 13 is positioned facing first end surface 3 of jounce bumper 1, while second end 15 is positioned facing second end surface 5 of jounce bumper 1.
[0097] Between the two ends 13,15, the secondary spring element 11 includes a plurality of angled leaves 21a,b,c, each oriented at an angle relative to the first and second ends 13,15.
[0098] FIG. 3 shows the secondary spring element 11 in its uncompressed base state.
[0099] When subjected to an axial load, the leaves 21a, b, and c pivot relative to the ends 13 and 15 such that the angle between the leaves 21a, b, and c and their respective ends 13 and 15, or the angle between the leaves and their respective adjacent leaves, decreases. If no material were present between the ends 13 and 15 and the leaves 21a, b, and c, the leaves 21a, b, and c would pivot until they abutted their respective adjacent leaves or ends, defining the minimum block length of the secondary spring element. When molded within the base body 9 of the jounce bumper 1, as shown in Figures 1 and 2, the secondary spring element 11 will in most cases never reach its theoretically possible minimum block length due to the material of the base body 9 that is between the leaves 21a, b, and c and their respective ends 13 and 15.
[0100] As can be seen in Figure 3, the spring leaves 21a, b, c are configured to have a first material thickness M1 in the direction of the longitudinal axis L and a second material thickness M2 in the radial direction relative to the longitudinal axis L. The second material thickness M2 is greater than the first material thickness M1. In combination, this has the effect that the secondary spring element 11 is very easily deformable in the axial direction L, leading to a low spring ratio, while at the same time allowing little lateral expansion during compression, which is thus beneficial to the radial compression stability of the jounce bumper 1 as a whole.
[0101] Preferably, a first set of spring leaves 21 a are integrally formed at first end 13 , while a second set of spring leaves 21 c are integrally formed at second end 15 .
[0102] The secondary spring element 11 further includes a number of intermediate spring leaves 21b each integrally formed with an adjacent spring leaf 21a, b, c.
[0103] To allow better axial compression, i.e. compression in the direction of the longitudinal axis L, the secondary spring element 11 is preferably provided with joints 25 of reduced material thickness to facilitate the pivoting movement of the spring leaves 21a, b, c.
[0104] To provide improved passage of the molding material of the base body 9 through the volume of the secondary spring element 11, the first end 13 preferably comprises a plurality of material passages 27 into and through which the volumetric compressible material of the base body 9 can expand during molding.
[0105] Similarly, the second end 15 preferably includes a plurality of material passages 29 to allow the volume-compressible first material of the base body 9 to pass through the second end 19 .
[0106] Figures 4a, b, which together form Figure 4, show a side view (Figure 4) and a cross-sectional view (Figure 4b) of the secondary spring element 11. As can be seen in Figures 3 and 4b, in particular some of the intermediate spring leaves 21b are integrally joined by ridges 23, again to improve lateral stability.
[0107] The secondary spring element shown in Figures 1 to 4b provides correspondingly shaped confluences between the ends 13, 15 and the spring leaves 21a, b, c. In particular, the joints 25 between adjacent spring leaves 21a, b have highly articulated constrictions to allow for easy bending, while at the same time extending over a considerable angular range relative to the longitudinal axis L, as best shown in Figure 3. The joints 25 are positioned opposite each other, with their centers lying in a common plane that also contains the longitudinal axis L.
[0108] The centre points of the ridges 23 lie in a second plane perpendicular to the aforementioned plane. The ridges 23 are also fairly thin and provide stability to the secondary spring element 11 insofar as they prevent the leaves 21b,c from escaping radially outwards or inwards during compression.
[0109] Figures 5 and 6 show an alternative embodiment of a secondary spring element 11' that shares many structural features and qualities with the spring element 11 exemplarily shown in Figures 1 to 4. Identical features are given identical reference numerals and reference is made to the descriptions herein to avoid unnecessary repetition.
[0110] The secondary spring element 11' differs from the secondary spring element 11 of Figures 1-4 in that the first end 13' includes a plurality of inwardly extending projections 14, which in this embodiment are formed as radial ribs extending toward the longitudinal axis L. These projections 14 serve as additional structural reinforcement. Between adjacent projections 14, recesses 16 are formed that are filled with material to further secure the secondary spring element 11' to the inside of the primary spring element, i.e., base body.
[0111] Additionally, the secondary spring element 11' also includes a plurality of outwardly extending protrusions 18, also at the first end 13'. The protrusions 18 are spaced apart by recesses 20 that may function as air escape holes or may be filled with material from the primary spring element. Similarly, the internal recesses 16 between adjacent protrusions 14 may also function as air escape holes if left empty. The material passages 25, 27 of the secondary spring elements 11, 11' may also be filled with material from the base body as described above or may remain empty.
[0112] The secondary spring element 11' differs from the secondary spring element 11 in the structure of the elastic element itself: the secondary spring element 11 comprises spring leaves 21a, b, c arranged on opposite sides, while the secondary spring element 11' has a modified version thereof in the form of a plurality of undulating rings extending circumferentially around the longitudinal axis L and formed more uniformly along the circumference compared to the configuration of the secondary spring element 11.
[0113] Each ring 22 is formed integrally with the secondary spring element 11'. A ring 22 either joins one of the ends 13', 15 at a junction 28a, or joins an adjacently arranged ring 22 at a junction 28b. The ridges 23 and joints 25 of the secondary spring element 11 of the first embodiment are also junctions in principle, but the mechanical behavior of these elements is not identical to one another.
[0114] In contrast, all of the confluences 28b have essentially the same deformation behavior, and all of the confluences 28a also have the same deformation behavior.
[0115] The configuration shown in Figures 5 and 6 provides that each junction 28a, b is spaced apart from the adjacent junction 28b at an angle α of 90 degrees relative to the longitudinal axis L, thus improving deformation uniformity compared to the embodiment of Figures 1 to 4.
[0116] The second junction 28b, and to some extent also the first junction 28a, are provided with a constriction 30 extending in the direction of the longitudinal axis L to improve flexibility and thereby reduce the risk of mechanical failure of the secondary spring element 11'.
[0117] In the foregoing description of the figures, the secondary spring elements 11, 11' have been described in connection with a jounce bumper according to one aspect of the present invention. However, it should be understood that the spring elements represent an aspect of the present invention in their own right, and therefore the features described above in combination with those of the jounce bumper may also be considered independently thereof as far as their structure and functionality are concerned.
Claims
1. A jounce bumper (1) for an automotive vehicle suspension system, comprising: - having a longitudinal axis (L), the jounce bumper (1) being configured to elastically deform along the longitudinal axis (L) between an uncompressed state and a compressed state, the jounce bumper (1) having a shorter length in the direction of the longitudinal axis (L) in the compressed state than in the uncompressed state; - it has a base body (9) acting as a primary spring element, said base body (9) being made partly or completely of a volume-compressible first material; In the jounce bumper (1), The base body (9) - further comprising at least one secondary spring element (11, 11') integrated in said base body (9), the secondary spring element (11, 11') is elastically deformable between a first length in the uncompressed state and a second length in the compressed state, the second length being smaller than the first length, and the secondary spring element (11, 11') is made partially or completely of a second non-cellular material; the base body (9) has a first spring ratio and the secondary spring elements (11, 11') have a second spring ratio lower than the first spring ratio, a spring ratio being defined as the ratio at which each spring element is compressed relative to its uncompressed base state; the secondary spring element (11, 11') has a first end (13') and an opposite second end (15), and comprises a number of spring leaves arranged in connection with each other between the first end (13') and the second end (15). Jounce bumper (1).
2. 2. Jounce bumper according to claim 1, wherein said base body (9) at least partially encompasses said secondary spring elements (11, 11').
3. 3. A jounce bumper according to claim 1 or 2, wherein the secondary spring element (11, 11') is configured to have a predetermined block length when in the compressed state.
4. Jounce bumper according to any one of claims 1 to 3, wherein the spring rate of the base body (9) is greater than 65% and / or the spring rate of the secondary spring elements (11, 11') is less than or equal to 70%.
5. Jounce bumper according to any one of claims 1 to 4, wherein the secondary spring element (11, 11') is radially stiffer than the base body (9).
6. The jounce bumper of any one of claims 1 to 5, wherein the first material is a cellular polyisocyanate polyaddition product.
7. A jounce bumper according to any preceding claim, wherein the second material comprises or consists of: an elastomer, a metal, a fibre composite material, or a combination of some or all of the foregoing materials.
8. The second material has the following properties: - Young's modulus of 225 MPa or more; - Shore hardness of 40D or more; - tensile strength of 40 MPa or more; - 1.10 g / cm 3 Density of more than 8. The jounce bumper of claim 7, comprising one, some, or all of:
9. The second material comprises or consists of an elastomer, the elastomer being selected from the following list: - Polyether-based polyurethanes, - Polyester-based polyurethane, - polyether-based thermoplastic polyurethanes, - polyester-based thermoplastic polyurethanes, - semi-crystalline thermoplastics, - fibre composites with thermoplastic polyurethane as matrix material; The jounce bumper according to any one of claims 1 to 8, selected from the group consisting of:
10. 10. The jounce bumper of claim 1, wherein the spring leaves, the first end (13') and the second end (15) are integrally formed with one another, and the secondary spring element (11, 11') has a plurality of junctions, at each junction one of the spring leaves joins one of the first end (13') and the second end (15) or one of the adjacent spring leaves.
11. 11. The jounce bumper of claim 10, wherein for all junctions, two respective adjacent junctions are spaced apart from each other by an angle (α), said angle (α) being in the range of 15° to 165°.
12. 12. A jounce bumper according to claim 10 or 11, wherein each junction has a narrowed portion (30) extending in the direction of said longitudinal axis (L).
13. 13. The jounce bumper of claim 1, wherein at least one of the first end (13') and the second end (15) of the secondary spring element (11, 11') has a plurality of inwardly extending projections (14) and / or a plurality of outwardly extending projections (18).
14. 14. The jounce bumper according to any one of claims 1 to 13, wherein at least one of the first end (13') and the second end (15) of the secondary spring element (11, 11') has a plurality of material passages (27, 29) extending in the direction of the longitudinal axis (L).
15. A method of manufacturing a jounce bumper according to any one of claims 1 to 14, comprising the steps of: - providing a mould having an internal shape corresponding to the predetermined external shape of the base body (9) of said jounce bumper (1) to be manufactured; - placing in said mould a secondary spring element (11, 11'), said secondary spring element (11, 11') being elastically deformable between a first length in an uncompressed state and a second length in a compressed state, said secondary spring element (11, 11') being made partly or entirely of a non-cellular material; - casting a reaction mixture around the secondary spring elements (11, 11') in the mould, the reaction mixture being adapted to expand under predetermined reaction conditions to form a volumetrically compressible material; - providing said predetermined reaction conditions in said mould so that said reaction mixture expands and takes the shape of said base body (9) to form a volumetrically compressible material incorporating within itself said secondary spring elements (11, 11'); A method comprising:
16. Use of a spring element (11, 11') made partially or completely of a non-cellular material as a secondary spring element in the base body (9) of a jounce bumper according to any one of claims 1 to 14, wherein the spring element (11, 11') is integrated into the base body (9), and the base body (9) is made of a volume-compressible material.
17. A spring element constructed in accordance with the secondary spring element (11, 11') of a jounce bumper according to any one of claims 1 to 14.
Citation Information
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