Anti-vibration bracket and method for manufacturing the anti-vibration bracket

Thermoplastic elastomer bushings with helical structures in anti-vibration brackets address the weight and damping issues of traditional brackets, providing efficient vibration isolation for electric motors through reduced weight and cost-effective manufacturing.

JP7802944B2Active Publication Date: 2026-01-20VIBRACOUSTIC GMBH
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Patent Information

Application Number
JP2024543293
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-01-21
Filing Date
2023-01-01
Publication Date
2026-01-20
Estimated Expiration
2043-01-01

AI Technical Summary

Technical Problem

Existing anti-vibration brackets for electric motors are heavy, complex, and lack effective vibration damping characteristics, as traditional support means for internal combustion engines do not adequately support electric motors.

Method used

The use of thermoplastic elastomers (TPE) for bushings in anti-vibration brackets, which are lighter, easier to manufacture, and provide efficient vibration damping across a wide frequency range through helical blade structures and integrated design, allowing for single-step molding processes.

Benefits of technology

The TPE bushings offer reduced weight, lower manufacturing costs, and improved vibration damping capabilities, effectively isolating vibrations from electric motors by shifting resonant frequencies and reducing peak amplitudes, while enabling efficient manufacturing methods like 3D printing and injection molding.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A bushing (6) for an anti-vibration bracket, the bushing (6) comprising an outer structure (20, 24) and an inner sleeve (16), the outer structure (20, 24) comprising a connection structure (21) connected to the inner sleeve (16), the outer structure (20, 24) designed to connect to an opening in an anti-vibration bracket, the inner sleeve (16) comprising a through hole (30) adapted to connect at least partially to a tubular member (18), the connection structure (20) being made of a thermoplastic elastomer (TPE).
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Description

[Technical Field]

[0001] The present invention relates to a bush for an anti-vibration bracket, an anti-vibration bracket, and a method for manufacturing an anti-vibration bracket. [Background technology]

[0002] Bushings for anti-vibration brackets, anti-vibration brackets and methods of manufacturing anti-vibration brackets are generally known in the prior art.

[0003] Anti-vibration brackets are commonly used in automotive applications, such as engine mounts. In recent years, the development of electric vehicles has progressed significantly, with more and more electric vehicles now on the road. The electric motors that power electric vehicles exhibit a different vibration range than typical internal combustion engines. Therefore, support means for internal combustion engines cannot be adapted to support electric motors while exhibiting similar vibration damping or absorption characteristics. In particular, damping or absorption of vibrations generated by electric motors cannot be reliably achieved with absorbers / dampers for internal combustion engines. As a result, new support means for electric motors have been developed.

[0004] WO 2021 / 037919 discloses a bracket for supporting an electric motor on a vehicle chassis, the bracket comprising a first half shell defining a first half space and a second half shell defining a second half space, the first and second half shells being made of a plastic material, particularly a polymer material, and the first and second half shells being fixed to each other, preferably by welding, to define a cavity within the bracket including the first and second half spaces. The bracket has a bushing made of a rubber material.

[0005] Automakers and suppliers are constantly striving to develop better, lighter and more cost-effective solutions. Traditional anti-vibration brackets are heavy and complex to manufacture. Summary of the Invention

[0006] An object of the present invention is to provide a bush for an anti-vibration bracket, an anti-vibration bracket, and a method for easily manufacturing an anti-vibration bracket that are lighter and easier to manufacture.

[0007] This purpose , Germany Claims 1 Anti-vibration bracket according to the independent claim 13 A method for manufacturing an anti-vibration bracket according to the present invention and an independent claim 14 The problem is solved by a method for manufacturing an anti-vibration bracket according to the present invention. Further embodiments are described in the dependent claims.

[0008] Described below is a bushing for an anti-vibration bracket, the bushing comprising an outer structure and an inner sleeve, the outer structure comprising a connection structure connected to the inner sleeve, the outer structure designed to connect to an opening in the anti-vibration bracket, the inner sleeve comprising a through hole adapted to connect at least partially to a tubular member, and the connection structure made from a thermoplastic elastomer (TPE).

[0009] The bushings can be made of multiple materials, particularly one or more polymeric materials such as plastic or rubber in addition to TPE. Each material used may be elastomeric. The elastomeric material allows for reversible displacement and reversible extension of the bushing's structural components. When the structural components are displaced, a damping force is generated in the opposite direction, thereby effectively absorbing vibration energy caused by the vibration-generating components held in the bushing.

[0010] Thermoplastic elastomers, sometimes called thermoplastic rubbers, are a type of copolymer, or physical mixture of certain polymers, consisting of materials that exhibit both thermoplastic and elastomeric properties. While most elastomers commonly used in bushings are thermosets, thermoplastics are relatively easy to use in additive manufacturing processes such as injection molding and 3D printing. Another advantage of using thermoplastic elastomers is their ability to stretch to moderate elongations and return to nearly their original shape, resulting in a longer lifespan and a wider physical range than other materials.

[0011] Suitable TPE materials include PP-EPDM (TPE and TPE-V), PP-SEBS, and TPE-U. The use of TPEs offers several advantages over the use of known materials such as rubber. TPEs offer significant advantages in the manufacturing process. First, TPEs are often cheaper than rubber, lowering the cost of goods and resulting in cheaper parts. Second, TPEs are cheaper to manufacture because they do not require the use of a vulcanized core. Third, TPEs do not require adhesives to form a material connection with another component, such as the anti-vibration bracket body or sleeve. Fourth, the use of TPEs allows for different, more efficient manufacturing methods, such as 2K molding, which also allows for faster curing times and less contamination.

[0012] Additionally, TPE offers advantages for certain use cases. TPE has a lower specific gravity than commonly used damped elastomeric materials, such as rubber, allowing for the manufacture of bushings that are lighter than those made from more common materials. Due to the low specific gravity of TPE, eigenmodes are generally at higher frequencies, which are less of a problem than lower frequencies. Also, due to the high damping at the eigenmodes, the eigenmodes can be engineered to have significantly reduced amplitudes.

[0013] The inner sleeve can be directly or indirectly connected to a mounting structure such as a rod or bar, which itself can be connected to a motor, especially an electric motor, a gearbox, etc., and the connecting structure can itself be connected to an anti-vibration bracket that can be attached to a vehicle body or chassis part, or vice versa. The indirect connection to the mounting structure can be achieved by a sleeve, which itself can be made of plastic or metal to allow rotation of the mounting structure relative to the bushing. Typically, each vibration-generating part supported by an anti-vibration bracket, such as an electric motor, will be supported by multiple anti-vibration brackets, so multiple bushings may be used to support a single vibration-generating part.

[0014] Specific applications of such bushings include supporting electric motors in vehicles, such as fully electric and hybrid vehicles. Such electric motors can be any type of electric motor capable of converting electrical energy into rotational motion, thereby driving one or more wheels of the vehicle. Electric motors typically used in vehicle drivetrains can generate vibrations in the frequency range of 1 to 2000 Hz. Vibration isolation brackets utilizing such bushings can be designed to damp and absorb vibrations across the entire frequency range, thereby effectively damping all of the anticipated frequency ranges exhibited by electric motors. Various components of the vibration isolation bracket can have different damping characteristics, with bushings typically damping lower frequency ranges and the bracket body, in some embodiments, in combination with other dampers included in the bracket body, damping higher frequency ranges exhibited by vibration-generating components.

[0015] Another aspect of achieving a specified material stiffness with a lighter bushing is that the natural modes of the bushing will typically be higher than with a heavier bushing, meaning that one or more resonant frequencies can be shifted further away from the resonant frequencies of components directly or indirectly connected to the bushing, improving NVH characteristics.

[0016] Furthermore, the peak amplitude of each eigenmode of the bushing can be significantly reduced compared to commonly known bushings, and the damping characteristics are still sufficient for the eigenmodes. The bushing may be a one-piece component, i.e., the bushing may comprise a single piece.

[0017] According to a first alternative embodiment, the outer structure comprises an outer sleeve and the connecting structure is connected to the outer sleeve. The connecting structure and the outer sleeve may be integrally formed, i.e. made from a single piece of material.

[0018] This allows the bushing to be integrally constructed as a single structural unit, including an inner sleeve, an outer sleeve, and at least two helical blades connecting the inner and outer sleeves, respectively, resulting in a one-piece bushing configuration that can withstand high loads before failure, allowing for a more compact bushing design.

[0019] According to other further embodiments, the inner sleeve and / or the outer sleeve are made from a second plastic material. This allows the selection of a material suited to each requirement, for example a non-elastomeric inner sleeve which can be used to avoid the need for a separate connecting sleeve.

[0020] According to other further embodiments, the bushing is made entirely of TPE or the spring element of the bushing is made of TPE, preferably entirely of TPE. The use of a single material for the bushing or spring member allows for a simple and efficient manufacturing process, such as a single-step molding process to create the bushing, which can be part of a multi-step manufacturing process for the vibration isolation bracket.

[0021] The spring member can include an inner sleeve and / or an outer structure. The spring member can be the main spring member of the bushing and / or the outer sleeve can be directly connected to the inner sleeve.

[0022] According to another further embodiment, the connecting structure comprises at least two blades connecting the outer structure and the inner sleeve. The blades are designed so that two of their three dimensions are significantly greater than the third dimension (for example, the length and radial blade width of a helical blade are significantly greater than the blade thickness). The blade surface can be curved, and the length, width, and thickness can vary across the blade, making it thicker in some areas than in others.

[0023] According to another further embodiment, the connection structure consists of a blade or at least one pair of blades. This allows for a variety of possible manufacturing methods, including additive manufacturing processes such as injection molding and 3D printing, as the blade or set of blades can be designed to suit such processes.

[0024] According to another further embodiment, the at least two blades have a structure that extends helically relative to the axis of the through hole. Because the helical structure allows a defined material stiffness to be achieved using less material than with other known connection structures, each bushing is lighter than known bushings with similar material properties. This effect is amplified by the fact that for a given stiffness, each bushing can be designed to be smaller than known bushings, further reducing its weight. The helical structure of the blade also introduces another dimension of design freedom, allowing for better tuning of the damping characteristics of the bushing for each application.

[0025] Furthermore, the use of helical blades allows for fine tuning of different stiffness and damping characteristics in different directions, e.g., axial, radial, and torsional characteristics depend on the design of the helical blades and may also depend on the direction of the torsional moment introduced into the bushing.

[0026] Furthermore, surprisingly, the combination of spirally extending structures on the one hand and TPEs on the other hand produces a significant beneficial effect: the use of TPEs makes spirally extending structures possible or even improved, further enhancing the aforementioned advantages. In particular, on the one hand, elongated structures can be produced with TPEs, without any loss of functionality on the other hand.

[0027] According to another further embodiment, at least two blades have a curved cross-sectional shape with essentially parallel sidewalls over at least 50% of their extension path. Each design can have multiple curves, e.g., an S-shape. The curved cross-sections can allow for different damping characteristics depending on the relative direction of the moment introduced into the bushing, e.g., clockwise vs. counterclockwise.

[0028] The curved blades can be designed to avoid uncontrolled buckling of the structure in the direction of compression of the curved blade. Instead, controlled bending of the blade structure occurs in the direction of compression.

[0029] The maximum amplitude can also be increased by curved, particularly S-shaped, blades, resulting in higher amplitudes for a given size bushing, particularly in the direction of extension as opposed to compression, or in a smaller size bushing for a given maximum amplitude specification.

[0030] According to other further embodiments, the at least two blades have a pitch in the range of 30 mm to 300 mm and / or cover an inclination angle between 0° and 80°, in particular between 1° and 80°, in particular between 10° and 50° and / or have a path length of at least 1.1 times the distance between the inner sleeve and the outer sleeve or between the inner sleeve and the opening in the vibration isolation bracket.

[0031] The above pitch ranges can provide the required damping specifications while allowing for a variety of manufacturing methods, such as injection molding and additive manufacturing processes like 3D printing. Typically, the larger the pitch, the stiffer the bushing will be both radially and axially. Each tilt angle configuration allows each bushing to be demolded at a specific demolding angle through the spiral motion of the mold inner structure in a high speed manufacturing line.

[0032] The inclination angle of the blades can be used to adjust the ratio of radial to axial stiffness. The smaller the inclination angle, the lower the ratio of radial to axial stiffness. The inclination angle can span between the axis of the through-hole, on the one hand, and the spiral structure or course of each blade, on the other. A zero-degree inclination angle can be considered a zero angle in mathematical terms. At such a zero angle, the blades can extend radially without tilting circumferentially, or they can extend parallel to the axis of the through-hole. The inclination angle specifically relates to the degree to which the blades are inclined relative to the axis of the through-hole. This causes the blades to wrap around the axis.

[0033] A path length longer than the distance between the inner sleeve and the outer sleeve or opening in the vibration isolation bracket allows for further fine tuning of the bushing characteristics, including allowing for blades that do not extend radially outward, but also at an angle to the radial direction, allowing for more travel and higher vibration amplitudes.

[0034] According to another further embodiment, the at least two blades cover a radial angle between 0° and 90°, in particular between 1° and 85°, in particular between 70° and 80°. The radial angle of the blades can be used to make them easier to demold. This advantage is particularly evident in injection molding. The radial angle can span between the axis of the through hole, on the one hand, and the helical structure or the average course of each blade in the longitudinal section, on the other hand. The radial angle can also lie within the longitudinal section through the bushing. The axis can also lie within the longitudinal section. A radial angle of 0° can be considered a zero angle in the mathematical sense. At such a zero angle, the blades can extend radially without tilting in the circumferential direction, or the blades can extend parallel to the axis of the through hole.

[0035] According to other embodiments, each of the blades may extend over a circumferential angular range of 0° to a multiple of 360°, preferably 0° to 270°, more preferably 0° to 180°. The circumferential angle can be located in the cross-section. As a result, the blade is spirally wound around the axis of the through-hole. In this range, an optimum is achieved between the beneficial effects mentioned above (material stiffness, less material used, lighter bushing weight, similar material properties) and manufacturability. For example, if the blade needs to be demolded after manufacturing, the molded part can be easily removed. Furthermore, this feature increases the flexibility to adjust the stiffness ratio in one or more spatial directions.

[0036] If the blade is manufactured by injection molding, a circumferential angle in the range of 0° to 360°, preferably 0° to 270°, more preferably 0° to 180° is advantageous for easy demolding. If the blade is manufactured using an additive manufacturing process such as 3D printing, a larger circumferential angle can also be chosen, since the demoldability aspect is not relevant there.

[0037] According to other further embodiments, the number of blades is between 2 and 12. The number of blades, as well as the stiffness of the bushing, can determine the maximum load that can be tolerated: a given load is distributed among the blades, and the load per blade is smaller the more blades in the bushing.

[0038] According to other further embodiments, the at least two blades are evenly distributed around the circumference of the inner sleeve, or the blades are unevenly distributed around the circumference of the inner sleeve. The evenly distributed blades can have rotational symmetry which provides more flexibility in assembly as well as axially isotropic damping characteristics.

[0039] Uneven blade spacing allows for grouping, where two or more blades are positioned closer to each other than the others. Such blade placement can be evenly spaced around the circumference of the inner sleeve, achieving a different radial stiffness compared to non-grouped blades. Furthermore, depending on the respective placement of the unevenly distributed blades, the radial stiffness in different directions can be adjusted differently to compensate for static loads.

[0040] According to another further embodiment, at least two blades have a smooth transition to the outer sleeve and / or the inner sleeve. A smooth transition can reduce shear forces and avoid high peaks in material tension, significantly reducing the risk of the bushing failing due to fracture in high overload situations. The smooth transition can be a radiused section.

[0041] According to another further embodiment, the bushing may include a core member. The core member may be disposed within the through hole. The core member may be a separate or distinct component, in particular from the spring member. The core member may be hollow cylindrical and serve to connect other components, for example, tubular components. The inner sleeve may rest against the outer periphery of the core member and is preferably firmly connected to the core member. The core member further serves to provide a stable connection with other components.

[0042] It is also conceivable that the bushing is formed from only two parts: a spring element and a core element. The spring element can comprise an inner sleeve and an outer structure. The core element can be attached to the spring element in a single step during the manufacturing or molding of the spring element. As a result, the advantages of the present invention can be realized even when using core elements known per se.

[0043] It is also conceivable that the outer structure and / or core member have circumferential longitudinal ribs extending along the axis of the bracket through-hole. It is also conceivable that the bracket through-hole and / or the bushing through-hole have longitudinal grooves formed therein for the respective longitudinal ribs. However, it is also conceivable that the ribs and grooves are reversed on the respective other members. Such rib connections improve the interference fit of the respective members, especially under rotational loads about the axis of the bracket through-hole.

[0044] A first independent aspect relates to an anti-vibration bracket comprising a bracket body, the bracket body comprising an opening for a bushing as previously described, the bushing being connected to the opening via an outer structure.

[0045] The bracket body can be made of one or more materials different from the bushings. The bracket body can be made of, in particular, a PA that does not have elastomeric properties like the bushings themselves. The bracket structure, together with at least one bushing as described above, is designed to exhibit defined static and dynamic characteristics that provide effective damping of vibrations across a wide frequency spectrum introduced by at least one vibration-generating component.

[0046] The bracket body can be designed to be lightweight and highly rigid through the use of reinforcing structures, such as reinforcing walls that extend in one or more directions, and can cross each other to provide multi-dimensional structural rigidity.

[0047] The bracket body and at least one bushing can be designed to have different damping characteristics to provide broad frequency damping of vibration, with some portions of the frequency spectrum being absorbed by the bushing and other portions being absorbed by the bracket body.

[0048] According to a first further embodiment, the bushing is made by overmolding the bracket body. In this way, the bushing can be bonded to the bracket body in a single 2K molding manufacturing step without the use of adhesives.

[0049] According to another further embodiment, the bracket body comprises: Vibration isolation A mounting structure is provided for mounting the bracket to an object. The bracket body can be attached to a vibration-generating component, e.g., an electric motor held in the anti-vibration bracket via at least one bushing, while the bracket body can be attached to a body component, frame, chassis, etc. The latter attachment can be achieved via a damping material, such as a rubber or TPE sleeve, to improve the anti-vibration bracket's NVH characteristics.

[0050] A further independent aspect relates to a method of manufacturing an anti-vibration bracket according to the preceding description, the method comprising the steps of placing a bracket body in an injection mold, overmolding the bracket body with a thermoplastic elastomer (TPE) to form a bushing or a spring member of the bushing, and after the thermoplastic material has sufficiently hardened, Vibration isolation and releasing the bracket.

[0051] When the bushing or spring member is directly overmolded onto the bracket body, the use of adhesives to attach the bushing to the bracket body can be avoided, reducing not only the amount of material used but also the number of manufacturing steps. It also reduces the problem of improper adhesion of the bushing to the bracket body. Furthermore, the mounting structure provided on the bushing can be sized differently compared to conventional anti-vibration brackets, saving space and weight.

[0052] A further independent aspect relates to a method of manufacturing an anti-vibration bracket according to the preceding description, the method comprising the steps of providing a two-component injection mold, injecting a first plastic material to form a bracket body, allowing the first plastic material to sufficiently harden, overmolding the bracket body with a thermoplastic elastomer (TPE) to form a bushing or a spring member of the bushing, and after the thermoplastic material forming the bushing or the spring member of the bushing has sufficiently hardened: Vibration isolation and demolding the bracket.

[0053] According to this embodiment, a vibration-damping bracket can be produced in a single 2K molding process. In the first step of the 2K molding process, a mold consisting of multiple mold parts is provided, and a bracket body structure can be molded that can include one or more through holes for a structure to be formed in a further step of the 2K molding process. A first material is injected into the cavity formed by the mold and allowed to harden until the shape is stable.

[0054] One mold part can then be removed, a different mold part or set of mold parts can be placed against the bracket body, and TPE can be injected into one or more cavities formed by the mold and bracket body. The TPE can bond directly to the bracket body, forming a strong connection between the two materials. The bracket body material can be selected based on its ability to bond with the TPE. Suitable materials include short-glass fiber-reinforced polymers such as polyamide, polyester, or polypropylene, which have a molding temperature of 120°C or less.

[0055] On the bushing, further components such as further parts or attachment structures to the lining can also be formed in this respective step. According to a further embodiment of the method described above, the inner form forming the blade of the bushing is deformed by means of a spring and a spiral guide groove guiding the inner form. In this way, the demolding path of the inner mold is precisely defined, and the demolding process results in fewer defects.

[0056] According to further inventive aspects, it is also contemplated that additive manufacturing processes, such as 3D printing, may be used as a manufacturing process instead of molding. Furthermore, features disclosed in the context of molding apply equally to additive manufacturing processes, where technically possible. Where a range of values ​​extends from a first value to a second value, the two limits are included in the range.

[0057] Further features and details are set forth in the following description, where applicable, with reference to the drawings, in which at least one exemplary embodiment is described in detail. The described and / or illustrated features may constitute subject matter on their own or in any possible and meaningful combination, and ultimately also independent of the claims. In particular, they may be subject matter of one or more separate applications. The figures are shown diagrammatically. [Brief explanation of the drawings]

[0058] [Figure 1]1 is a three-dimensional perspective view showing a first embodiment of the vibration-isolating bracket of the present invention. [Figure 2] FIG. 2 is an exploded perspective view of the vibration isolation bracket of FIG. 1. [Figure 3] 2 is a three-dimensional perspective view of a bush of the vibration-isolating bracket of FIG. 1. FIG. [Figure 4] FIG. 4 is a front view of the bushing of FIG. 3. [Figure 5] FIG. 4 is a longitudinal cross-sectional view of the bushing of FIG. 3. [Figure 6] FIG. 10 is a three-dimensional perspective view showing a second embodiment of the vibration-isolating bracket according to the present invention. [Figure 7] FIG. 7 is an exploded perspective view of the vibration isolation bracket of FIG. 6. [Figure 8] FIG. 7 is a three-dimensional perspective view of a bush of the vibration-isolating bracket of FIG. 6. [Figure 9] FIG. 9 is a front view of the bushing of FIG. 8. [Figure 10] FIG. 9 is a longitudinal cross-sectional view of the bushing of FIG. 8. [Figure 11] FIG. 10 is a three-dimensional perspective view showing a third embodiment of the vibration-isolating bracket according to the present invention. [Figure 12] FIG. 12 is an exploded perspective view of the vibration isolation bracket of FIG. [Figure 13] 12 is a three-dimensional perspective view of a bush of the vibration-isolating bracket of FIG. 11. FIG. [Figure 14] FIG. 14 is a front view of the bushing of FIG. 13. [Figure 15] FIG. 14 is a side view of the bushing of FIG. 13. [Figure 16] FIG. 10 is a three-dimensional perspective view showing a fourth embodiment of the vibration-isolating bracket according to the present invention. [Figure 17] FIG. 17 is an exploded perspective view of the vibration isolation bracket of FIG. 16. DETAILED DESCRIPTION OF THE INVENTION

[0059] For purposes of readability and clarity, identical or similar features, or features having identical or similar properties or functions, in different embodiments may be labeled with the same reference numerals.

[0060] FIG. 1 is a perspective view showing the vibration-isolating bracket 2. As shown in FIG. The vibration isolation bracket 2 comprises a bracket body 4 and a bushing 6. The bushing 6 is an integral unit. The bushing 6 is disposed within a through hole 8 located generally on one side of the bracket body 4. Three mounting holes 10 are located on the opposite side of the bracket body 4. The bushing 6 is designed for attachment to a vibration-generating component, such as an electric motor in an electric vehicle. The mounting holes 10 are positioned for attachment to a structural component of the vehicle, such as the vehicle frame, using threaded bolts.

[0061] The mounting hole 10 in this embodiment is provided with an elastomeric lining 12 that prevents low frequency noise such as rattle caused by different vibration sources such as road irregularities that are introduced into the vehicle through the vehicle suspension. Other embodiments may not require an additional lining depending on the circumstances.

[0062] The bracket body 4 has a three-dimensional shape designed to fit the respective mounting shapes of a vehicle and a vibration-generating component, such as an electric motor. The bracket body 4 is designed to be lightweight and strong enough to withstand the static and dynamic forces present during typical vehicle use. The bracket body 4 may be a one-piece structure. The through-hole 8 and the mounting hole 10 are surrounded by a bracket body structure sufficient to absorb forces introduced through the vibration-generating component.

[0063] To reduce weight, the bracket body 4, instead of being made from a solid block of material, is provided with a series of reinforcing ribs 14. The reinforcing ribs 14 extend in different directions, some of which are arranged generally perpendicular to the axis x of the bushing 6, while others extend radially and / or parallel to the axis x. The reinforcing ribs 14 can reinforce various structural components of the bracket body 4.

[0064] 1 and 2, the bushing 6 forms an inner sleeve 16 that holds a separate sleeve 18. The separate sleeve 18 is designed to receive a mounting structure attached to a vibration-generating component, for example, a respective rod formed on a respective electric motor. The sleeve 18 is made of a harder material than the bushing 6 in order to absorb static and dynamic forces. The separate sleeve 18 is not required to receive the mounting structure of the vibration-generating component. The separate sleeve 18 does not need to form part of the bushing 6, 6', 6'', 6'''.

[0065] Moving radially outward, the inner sleeve 16 transitions into a number of blades 20 that are part of a connecting structure 21 that connects the inner sleeve 16 to an outer structure 22. The outer structure 22 connects the bushing 6 to the bracket body 4. Part of the outer structure 22 in the embodiment described here is an outer sleeve 24. The outer sleeve 24 is glued to the bracket body 4 as described below. The spring member 9 comprises the inner sleeve 16 and the outer structure 22.

[0066] In other embodiments, the outer sleeve 24 may not be provided and the blade 20 may be connected directly to the through-hole 8 of the bracket body 4, in which case the connecting structure and the outer structure are the same.

[0067] The bracket body 4 and sleeve 18 can be made from a polymer material such as polyamide (PA) or a fiber-reinforced polymer material, in particular a short-fiber-reinforced polymer material, here polyamide, while the lining 12 and bushing 6 are made from TPE. The anti-vibration bracket 2 is manufactured using a 2K molding process, in a first step of which the bracket body 4 is formed from PA, and in a second step the bushing 6 and lining 12 are manufactured by overmolding the bracket body 4 with TPE.

[0068] As can be seen in FIG. 2, the bracket body 4 has a mounting surface 26 at the through hole 8, which is used to bond the mounting surface 28 of the outer sleeve 24 of the bushing 6 to the bracket body 4 during curing of the TPE without the use of additional adhesive.

[0069] The sleeve 18 is retained within a through hole 30 formed by the inner sleeve 16 of the bushing 6. In some embodiments, the sleeve 18 can be glued to the bushing 6, while in other embodiments, the sleeve 18 can be removable and retained by a friction fit. The sleeve 18 includes a hole 32 for receiving a mounting structure for the vibration-producing component to be attached.

[0070] FIG. 3 is an enlarged perspective view of the bushing 6. As shown in FIG. The bushing 6 has three blades 20 evenly spaced around the circumference of the inner sleeve 16 such that the distance between each successive blade 20 is the same.

[0071] As can be seen in Figures 3 to 5, the blades 20 extend in an S-shape from the inner sleeve 16 to the outer sleeve 24. The shape of the blades 20 allows for an increased maximum amplitude and a defined bending of the blades 20 under load instead of an arbitrary buckling. The dotted lines indicate the course E of the blades 20, which means that the respective course E can be traced in the illustrated longitudinal cross sections.

[0072] The distance G between the inner sleeve 16 and the outer sleeve 24 is defined by the outer diameter d of each of the inner sleeves 16 and the inner diameter D of the outer sleeve 24. The path length S of the blade 20 between the connection points of each of the inner sleeve 16 and the outer sleeve 24 is approximately 1.2 times longer than the distance G in certain embodiments.

[0073] The connections 20.1 to the inner sleeve 16 and the connections 20.2 to the outer sleeve 24 are rounded to provide a smooth transition to the inner sleeve 16 and the outer sleeve 24 respectively to avoid fracture of the bushing structure due to overload.

[0074] The intermediate portion 20.3 between the connecting portions 20.1, 20.2 has substantially parallel side walls 20.A, 20.B and therefore has a substantially constant material thickness to facilitate the demolding process.

[0075] The blades 20 extend in a spiral shape along the axis x of the bushing 6. The spiral arrangement of the blades 20 generally results in lower stiffness compared to axially arranged blades, allowing the use of materials with elastomeric properties, which are generally stiffer compared to rubber materials. The number of blades 20 and the geometrical characteristics of the blades 20 can be adjusted to suit different requirements.

[0076] Each of the blades 20 extends over a circumferential angle U of 180° in the illustrated embodiment. The pitch P of the blades 20 in the first embodiment is greater than the total axial length L of the bushing 6. This makes it possible to facilitate the deformation process of each mold.

[0077] The inclination angle B of the blade 20 relative to the axis x can be designed to determine the ratio of radial to axial stiffness. The inclination angle B specifically relates to the measure by which the blade 20 is inclined relative to the axis x, thereby causing the blade 20 to wrap around the axis x. The inclination angle B is between the axis x and the course E of the blade 20. In the illustrated embodiment, the inclination angle B is 67°.

[0078] Each blade 20 has a radial angle C. The radial angle C is between, on the one hand, the axis x of the through hole 8 and, on the other hand, the helical structure or average course of each blade 20 in a longitudinal section. In the embodiment shown, the radial angle C is 72°.

[0079] Since the inner sleeve 16 extends beyond the mounting surface 28 in the direction of the axis x, the axial length l of the outer sleeve 24 is less than the overall axial length L. The blades 20 therefore transition conically from the inner sleeve 16 to the outer sleeve 24.

[0080] 6 to 10 show a second embodiment of an anti-vibration bracket 2'. The vibration isolation bracket 2' shown in Figure 6 comprises a bracket body 4 and a bushing 6'. The bushing 6' is an integral unit. The bushing 6' is disposed in a through hole 8 located on approximately one side of the bracket body 4. Three mounting holes 10 are located on the opposite side of the bracket body 4. The bushing 6' is designed to be attached to a vibration-generating component such as an electric motor in an electric vehicle.

[0081] In this embodiment, the mounting hole 10 is positioned for attachment to a structural member of the vehicle, such as the vehicle frame, using a threaded bolt. The mounting hole 10 includes an elastomeric lining 12 that prevents low frequency noise, such as rattle, caused by different vibration sources, such as road irregularities, from being introduced into the vehicle via the vehicle suspension. In other embodiments, no additional lining may be required, depending on the circumstances.

[0082] The bracket body 4 has a three-dimensional shape designed to fit the mounting shapes of a vehicle and a vibration-generating component, such as an electric motor. The bracket body 4 is designed to be lightweight and strong enough to withstand the static and dynamic forces present during typical vehicle use. The bracket body 4 may be a one-piece structure. The through-hole 8 and the mounting hole 10 are surrounded by a bracket body structure sufficient to absorb the force introduced through the vibration-generating component.

[0083] To reduce weight, the bracket body 4, instead of being made from a solid block of material, is provided with a series of reinforcing ribs 14. The reinforcing ribs 14 extend in different directions, some of which are generally arranged approximately perpendicular to the axis x of the bushing 6, while others extend radially and / or parallel to the axis x. The reinforcing ribs 14 can reinforce various structural components of the bracket body 4.

[0084] 6 and 7, the bushing 6' forms an inner sleeve 16 which holds a separate sleeve 18. The separate sleeve 18 is designed to receive a vibration-generating component, for example a mounting structure attached to a respective rod formed on a respective electric motor. The sleeve 18 is made of a harder material than the bushing 6 in order to absorb static and dynamic forces.

[0085] Moving radially outward, the inner sleeve 16 transitions into a number of blades 20 that are part of a connecting structure 21 that connects the inner sleeve 16 to an outer structure 22. The outer structure 22 connects the bushing 6' to the bracket body 4. Part of the outer structure 22 in the embodiment described here is an outer sleeve 24. The outer sleeve 24 is glued to the bracket body 4 as described below. The spring member 9 comprises the inner sleeve 16 and the outer structure 22.

[0086] In other embodiments, the outer sleeve 24 may not be provided and the blade 20 may be connected directly to the through-hole 8 of the bracket body 4, in which case the connecting structure and the outer structure are the same.

[0087] The bracket body 4 and sleeve 18 can be made from a polymer material such as polyamide (PA) or from a fiber, in particular a short fiber reinforced polymer material, here polyamide, while the lining 12 and bushing 6 are made from TPE. The vibration isolation bracket 2 is manufactured using a 2K molding process, in a first step the bracket body 4 is formed from PA, and in a second step the bushing 6 and lining 12 are manufactured by overmolding the bracket body 4 with TPE.

[0088] As can be seen in FIG. 7, the bracket body 4 has a mounting surface 26 at the through hole 8, which is used to bond the mounting surface 28 of the outer sleeve 24 of the bushing 6′ to the bracket body 4 during curing of the TPE without the use of additional adhesive.

[0089] The sleeve 18 is retained within a through hole 30 formed by the inner sleeve 16 of the bushing 6'. In some embodiments, the sleeve 18 can be glued to the bushing 6', while in other embodiments, the sleeve 18 can be removable and retained by a friction fit. The sleeve 18 includes a hole 32 for receiving a mounting structure of the vibration-generating component to be attached.

[0090] FIG. 8 is an enlarged perspective view of the bushing 6'. The bushing 6' comprises two pairs of blade sets 32. Each blade set 32 ​​is made up of two blades 20 arranged adjacent to each other. The blade sets 32 themselves are evenly spaced around the circumference of the inner sleeve 16. By using blade sets 32 instead of individual blades, a different radial stiffness can be achieved compared to individual blades.

[0091] 8-10, the blades 20 extend in an S-shape from the inner sleeve 16 to the outer sleeve 24. The shape of the blades 20 allows for increased maximum amplitude and defined bending of the blades 20 under load instead of arbitrary buckling.

[0092] The distance G between the inner sleeve 16 and the outer sleeve 24 is defined by the outer diameter d of the inner sleeve 16 and the inner diameter D of the outer sleeve 24. The path length S of the blade 20 between the respective connection points of the inner sleeve 16 and the outer sleeve 24 is approximately 1.2 times longer than the distance G in certain embodiments.

[0093] The connection portions 20.1, 20.2 to the inner sleeve 16 and outer sleeve 24 are rounded to provide a smooth transition to the inner sleeve 16 and outer sleeve 24, respectively, to avoid fracture of the bushing structure due to overload. The intermediate portion 20.3 between the connection portions 20.1, 20.2 has substantially parallel side walls 20.A, 20.B and therefore a substantially constant material thickness to facilitate the demolding process.

[0094] The blades 20 extend helically along the axis x of the bushing 6'. The helical arrangement of the blades 20 generally results in lower stiffness compared to axially arranged blades, allowing the use of materials with elastomeric properties, which are generally stiffer compared to rubber materials. The number of blades 20 and the geometrical characteristics of the blades 20 can be adjusted to suit different requirements.

[0095] Each of the blades 20 extends over a circumferential angle U of 120° in the illustrated embodiment. No. 2 The pitch P of the blades 20 in this embodiment is greater than the total axial length L of the bushing 6', which can facilitate the deformation process of the respective molds.

[0096] The inclination angle B of the blade 20 relative to the axis x can be designed to determine the ratio of radial stiffness to axial stiffness. The inclination angle B specifically relates to the measure by which the blade 20 is inclined relative to the axis x, thereby causing the blade 20 to wrap around the axis x. The inclination angle B is between the axis x and the course E of the blade 20. In the illustrated embodiment, the inclination angle B is 28°.

[0097] Each blade 20 has a radial angle C. The radial angle C is between, on the one hand, the axis x of the through hole 8 and, on the other hand, the helical structure or average course of the respective blade 20 in a longitudinal section. In the embodiment shown, the radial angle C is 35°.

[0098] Since the inner sleeve 16 extends beyond the mounting surface 28 in the direction of the axis x, the axial length l of the outer sleeve 24 is less than the overall axial length L. The blades 20 therefore transition conically from the inner sleeve 16 to the outer sleeve 24.

[0099] 11 to 15 show a third embodiment of an anti-vibration bracket 2''. The vibration isolation bracket 2'' shown in Figure 11 comprises a bracket body 4 and a bushing 6''. The bushing 6'' is an integral unit. The bushing 6'' is disposed in a through hole 8 located on approximately one side of the bracket body 4. Three mounting holes 10 are located on the opposite side of the bracket body 4. The bushing 6'' is intended for attachment to a vibration-generating component, such as an electric motor in an electric vehicle. The mounting holes 10 are positioned so that the bushing 6'' can be attached to a structural component of the vehicle, such as the vehicle frame, using threaded bolts.

[0100] The mounting hole 10 in this embodiment is provided with an elastomeric lining 12 that prevents low frequency noises such as rattles caused by different vibration sources such as road irregularities that are introduced into the vehicle through the vehicle suspension. In other embodiments, no additional lining may be required depending on the circumstances.

[0101] The bracket body 4 has a three-dimensional shape designed to fit the mounting shapes of a vehicle and a vibration-generating component, such as an electric motor. The bracket body 4 is designed to be lightweight and strong enough to withstand the static and dynamic forces present during typical vehicle use. The bracket body 4 may be a one-piece structure. The through-hole 8 and the mounting hole 10 are surrounded by a bracket body structure sufficient to absorb the force introduced through the vibration-generating component.

[0102] To reduce weight, the bracket body 4, instead of being made from a solid block of material, is provided with a series of reinforcing ribs 14. The reinforcing ribs 14 extend in different directions, some of which are arranged generally perpendicular to the axis x of the bushing 6, while others extend radially and / or parallel to the axis x. The reinforcing ribs 14 can reinforce various structural components of the bracket body 4.

[0103] 11 and 12, the bushing 6'' forms an inner sleeve 16 which holds a separate sleeve 18. The separate sleeve 18 is designed to receive a vibration-generating component, for example a mounting structure attached to a respective rod formed on a respective electric motor. The sleeve 18 is made of a harder material than the bushing 6 in order to absorb static and dynamic forces.

[0104] Moving radially outward, the inner sleeve 16 transitions into a number of blades 20 that are part of a connecting structure 21 that connects the inner sleeve 16 to an outer structure 22. The outer structure 22 connects the bushing 6'' to the bracket body 4. A further part of the connecting outer structure 22 in the embodiment described here is the outer sleeve 24. The outer sleeve 24 is glued to the bracket body 4 as described below. The spring member 9 comprises the inner sleeve 16 and the outer structure 22.

[0105] In other embodiments, the outer sleeve 24 may not be provided and the blade 20 may be connected directly to the through-hole 8 of the bracket body 4, in which case the connecting structure and the outer structure are the same.

[0106] The bracket body 4 and sleeve 18 can be made from a polymer material such as polyamide (PA) or a fiber, in particular a short fiber reinforced polymer material, here polyamide, while the lining 12 and bushing 6 are made from TPE. The anti-vibration bracket 2'' is manufactured using a 2K molding process, in a first step of which the bracket body 4 is formed from PA, and in a second step the bushing 6 and lining 12 are manufactured by overmolding the bracket body 4 with TPE.

[0107] As can be seen in FIG. 12, the bracket body 4 has a mounting surface 26 at the through hole 8, which is used to bond the mounting surface 28 of the outer sleeve 24 of the bushing 6″ to the bracket body 4 during curing of the TPE without the use of additional adhesive.

[0108] The sleeve 18 is retained in a through hole 30 formed by the inner sleeve 16 of the bushing 6''. In some embodiments, the sleeve 18 can be glued to the bushing 6'', while in other embodiments the sleeve 18 can be removable and retained by a friction fit. The sleeve 18 includes a hole 32 for receiving a mounting structure of the vibration-generating component to be attached.

[0109] FIG. 13 is an enlarged perspective view of the bushing 6''. The bushing 6'' has ten blades 20. The blades 20 are evenly spaced around the circumference of the inner sleeve 16 and extend radially outward. The relatively large number of blades 20 increases the maximum allowable force that the bushing 6'' can absorb.

[0110] As seen in Figures 13-15, the blades 20 extend in an S-shape from the inner sleeve 16 to the outer sleeve 24. The shape of the blades 20 allows for increased maximum amplitude and defined bending of the blades 20 under load instead of arbitrary buckling.

[0111] The distance G between the inner sleeve 16 and the outer sleeve 24 is defined by the outer diameter d of the inner sleeve 16 and the inner diameter D of the outer sleeve 24. The path length S of the blade 20 between the respective connection points of the inner sleeve 16 and the outer sleeve 24 is approximately 1.2 times longer than the distance G in certain embodiments.

[0112] The connection portions 20.1, 20.2 to the inner sleeve 16 and outer sleeve 24 are rounded to provide a smooth transition to the inner sleeve 16 and outer sleeve 24, respectively, to avoid fracture of the bushing structure due to overload. The intermediate portion 20.3 between the connection portions 20.1, 20.2 has substantially parallel side walls 20.A, 20.B and therefore a substantially constant material thickness to facilitate the demolding process.

[0113] Because the inner sleeve 16 extends further along the axis x than the mounting surface 28, the axial length l of the outer sleeve 24 is less than the overall axial length L. Thus, the blades 20 transition from the inner sleeve 16 to the outer sleeve 24 in a conical shape.

[0114] 13 to 15, the blade 20 has a course E, which, or a corresponding line, extends parallel to the axis x. Between the axis x and the course E there is a so-called zero angle.

[0115] 16 and 17 show a fourth embodiment of an anti-vibration bracket 2'''. To avoid repetition, only the differences between Figures 16 and 17 on the one hand and Figures 11 to 15 on the other hand will be described.

[0116] The bushing 6''' includes a core member 7 disposed within the through bore 30 and extending along the axis x. The core member 7 is a separate component from the spring member 9 and has a hollow cylindrical shape and function. A sleeve 18 is held within a through bore 34 formed in the core member 7 of the bushing 6'''. In some embodiments, the sleeve 18 can be glued to the core member 7, while in other embodiments, the sleeve 18 can be removable and held by a friction fit. The inner sleeve 16 can rest against, and is preferably rigidly coupled to, the outer peripheral side of the core member 7.

[0117] As can be seen, the outer structure 22 has longitudinal ribs 36 extending along the axis x on its outer periphery, and the through holes 8 of the bracket body 4 have corresponding longitudinal grooves 38 for the respective longitudinal ribs 36. Furthermore, the core member 7 has longitudinal ribs 40 on its outer periphery extending along the axis x, and the through holes 30 have corresponding longitudinal grooves 42 for the respective longitudinal ribs 40.

[0118] While the foregoing summary and detailed description, as well as the claims, have presented at least one exemplary embodiment, it should be understood that numerous variations exist. It should also be understood that the one or more exemplary embodiments are merely examples and are not intended to be limiting in any way in scope, applicability, or configuration. Rather, the foregoing summary and detailed description are intended to provide those skilled in the art with a convenient road map for implementing at least one exemplary embodiment, and it should be understood that various changes can be made in the function and arrangement of elements described in an exemplary embodiment without departing from the scope as defined in the appended claims and their legal equivalents.

[0119] Any feature disclosed in the claims, specification, and drawings, including structural details, relative positioning, or method steps, may be relevant to the present invention alone or in any meaningful combination with any other feature(s).

[0120] To avoid repetition, features disclosed according to the bushing / bracket should be considered to be disclosed and claimable according to the method. Similarly, features disclosed according to the method should be considered to be disclosed and claimable according to the bushing / bracket. The disclosed method can produce the disclosed bushing and / or the disclosed bracket. [Explanation of symbols]

[0121] 2,2',2'',2''' Anti-vibration bracket 4 Bracket body 6, 6', 6'', 6'' Bush 7 Core member 8 through holes (Opening) 9 Spring members 10 Mounting holes (Mounting structure) 12 Lining 14 Reinforcing rib 16 Inner sleeve 18 sleeve (Tubular member) 20 blades 20.1, 20.2 Connections (Transition section) 20.3 Middle section 20.A,20.B Side wall 21 Connection structure 22 Outer structure 24 Outer sleeve 26 Mounting surface 28 Mounting surface 30 through holes 32 Blade Set 34 Through hole 36 Vertical rib 38 Vertical grooves 40 Vertical ribs 42 Vertical grooves B Tilt angle C radial angle d Outside diameter of inner sleeve D Inner diameter of outer sleeve E Course G Distance between inner and outer sleeves l Axial length of the mounting surface L Overall axial length of bush Pitch S Path Length U circumferential angle x-axis

Claims

1. An anti-vibration bracket comprising a bracket body (4), the bracket body (4) comprising an opening (8) for a bushing (6; 6'; 6''; 6''') for the anti-vibration bracket (2; 2'; 2''; 2'''), the bushing (6; 6'; 6''; 6''') comprising an outer structure (20, 24) and an inner sleeve (16), the outer structure (20, 24) comprising a connecting structure (21) connected to the inner sleeve (16), the outer structure (22) comprising a connecting structure (22) for connecting the anti-vibration bracket (2; 2'; 2''; 2''') the bushing (6; 6'; 6"; 6'") is connected to the opening (8) via the outer structure (22), the inner sleeve (16) comprises a through hole (30) adapted to be connected at least partially to a tubular member (18), the connecting structure (20; 20, 32) is made from a thermoplastic elastomer (TPE), and the bushing (6; 6'; 6"; 6'") is manufactured by overmolding the bracket body (4).

2. 2. The anti-vibration bracket according to claim 1, wherein the outer structure (22) comprises an outer sleeve (24), and the connecting structure (21) is connected to the outer sleeve (24).

3. 3. An anti-vibration bracket according to claim 2, wherein the inner sleeve (16) and / or the outer sleeve (24) are made from a second plastic material.

4. 2. An anti-vibration bracket according to claim 1, wherein the bushing (6; 6'; 6''; 6''') is entirely made of TPE or the spring element (9) of the bushing (6; 6'; 6''; 6''') is made of TPE.

5. 2. The anti-vibration bracket according to claim 1, wherein the connecting structure (21) comprises at least two blades (20) connecting the outer structure (20, 24) and the inner sleeve (16).

6. 6. The vibration isolation bracket according to claim 5, wherein the at least two blades (20) have a structure (20, 24) that extends helically relative to the axis (x) of the through hole (30), and the blades (20) are evenly distributed around the circumference of the inner sleeve (16).

7. 6. An anti-vibration bracket according to claim 5, wherein said at least two blades (20) have a curved cross-sectional shape with essentially parallel side walls (20.A, 20.B) over at least 50% of their extension path.

8. The outer structure (22) comprises an outer sleeve (24), and the connecting structure (21) is connected to the outer sleeve (24); 6. An anti-vibration bracket according to claim 5, wherein the at least two blades (20) have a pitch (P) in the range of 30 mm to 300 mm, and / or cover an inclination angle (B) of 0° to 80°, in particular 1° to 80°, in particular 10° to 50°, and / or have a path length (S) of at least 1.1 times the distance (G) between the inner sleeve (16) and the outer sleeve (24) or between the inner sleeve and an opening in the anti-vibration bracket (2; 2'; 2''; 2''').

9. 6. The anti-vibration bracket of claim 5, wherein the number of blades (20) is between 2 and 12.

10. 6. The vibration isolation bracket of claim 5, wherein the at least two blades (20) are evenly distributed around the circumference of the inner sleeve (16), or the blades (20) are unevenly distributed around the circumference of the inner sleeve (16).

11. The outer structure (22) comprises an outer sleeve (24), and the connecting structure (21) is connected to the outer sleeve (24); 6. An anti-vibration bracket according to claim 5, wherein said at least two blades (20) have a smooth transition (20.1, 20.2) to said outer sleeve (24) and / or said inner sleeve (16).

12. 2. The anti-vibration bracket according to claim 1, wherein the bracket body (4) comprises a mounting structure (10) for mounting the anti-vibration bracket (2; 2'; 2''; 2''') to an object.

13. 2. A method for manufacturing an anti-vibration bracket (2; 2'; 2"; 2'") according to claim 1, comprising the steps of: placing the bracket body (4) in an injection mold; overmolding the bracket body (4) with a thermoplastic elastomer (TPE) to form the bushing (6; 6'; 6") or a spring element (9) of the bushing (6; 6'; 6"; 6'"); and demolding the anti-vibration bracket (2; 2'; 2"; 2'") after the thermoplastic material has sufficiently hardened.

14. 2. A method for manufacturing an anti-vibration bracket (2; 2'; 2"; 2'") according to claim 1, comprising: providing a two-component injection mold; injecting a first plastic material to form the bracket body (4); allowing the first plastic material to fully harden; overmolding the bracket body (4) with a thermoplastic elastomer (TPE) to form the bushing (6; 6'; 6"; 6'") or a spring element (9) of the bushing (6; 6'; 6"; 6'"); and demolding the anti-vibration bracket (2; 2'; 2"; 2'") after the thermoplastic material forming the bushing (6; 6'; 6"; 6'") or a spring element (9) of the bushing (6; 6'; 6"; 6'") has fully hardened.

15. 14. The method according to claim 13, wherein the inner form forming the blade (20) of the bush (6; 6'; 6"; 6'") is deformed using a spring and a spiral guide groove guiding the inner form.

Citation Information

Patent Citations

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