Spring guide and method for manufacturing the same
The spring guide's fiber-reinforced resin design with circumferential fiber orientation and molded ribs addresses the weakness of resin seats, enhancing structural integrity and reducing weld size for improved durability.
Patent Information
- Application Number
- JP2021205041
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-17
- Publication Date
- 2025-12-04
- Estimated Expiration
- 2041-12-17
AI Technical Summary
Resin spring seats used in vehicle suspension systems are prone to damage due to low strength and brittleness when a cylinder is inserted, leading to potential structural failure.
A spring guide made of fiber-reinforced resin with reinforcing fibers oriented in the circumferential direction, featuring ribs protruding from welds to enhance strength, and a method of injection molding using a submarine gate to align fiber flow for optimal reinforcement.
The spring guide's strength is significantly improved by perpendicular alignment of load direction with fiber orientation, reducing weld size and enhancing structural integrity, particularly in areas prone to stress.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a spring guide and a method for manufacturing the spring guide. [Background technology]
[0002] Patent Document 1 discloses a resin spring seat that is attached to a cylinder that incorporates a damping mechanism and supports the wheel-side end of a spring that is arranged between the vehicle body and the wheel. The resin spring seat described in Patent Document 1 has a cylindrical portion through which the cylinder is inserted. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2018-105492 Summary of the Invention [Problem to be solved by the invention]
[0004] In a resin spring seat such as that described in Patent Document 1, when a cylinder is inserted into the cylindrical portion, a radial load acts on the cylindrical portion. Because resin spring seats have low strength and are brittle, there is a risk that the cylindrical portion of the resin spring seat may be damaged when the cylinder is inserted into it.
[0005] The present invention has been made in consideration of the above problems, and has as its object to improve the strength of a spring guide. [Means for solving the problem]
[0006] The present invention provides a spring guide made of fiber-reinforced resin, comprising: a disk-shaped base portion supporting a coil spring that elastically supports a vehicle body; a cylindrical portion through which a cylinder of a shock absorber is inserted; a first rib formed to protrude from a first weld portion formed on the inner periphery of the cylindrical portion toward the outer periphery of the spring guide; The cylindrical portion is characterized in that the fiber reinforced resin is oriented in the circumferential direction.
[0007] In this invention, the reinforcing fibers of the fiber-reinforced resin are oriented in the circumferential direction in the cylindrical portion. Therefore, when the cylinder is inserted into the cylindrical portion, the direction of the load acting on the cylindrical portion and the orientation direction of the reinforcing fibers are perpendicular to each other. This improves the strength of the cylindrical portion. Furthermore, the first rib is formed to protrude from the first weld toward the outer periphery of the spring guide. That is, the first rib is formed by guiding the fiber-reinforced resin that flows together when the cylindrical portion is formed. This reduces the weld formed in the cylindrical portion during injection molding, thereby improving the strength of the cylindrical portion.
[0008] The present invention provides A spring guide made of fiber-reinforced resin, comprising: a disk-shaped base portion supporting a coil spring that elastically supports a vehicle body; a cylindrical portion through which a shock absorber cylinder is inserted; a drain hole formed in the base portion for draining liquid accumulated in the base portion; and a second rib formed by protruding from a second weld portion formed on the inner periphery of the drain hole toward the outer periphery of the spring guide, wherein the fiber-reinforced resin is oriented in the circumferential direction in the cylindrical portion. It is characterized by:
[0009] In this invention, In the cylindrical portion, the reinforcing fibers of the fiber-reinforced resin are oriented in the circumferential direction. Therefore, when the cylinder is inserted into the cylindrical portion, the direction of the load acting on the cylindrical portion and the orientation direction of the reinforcing fibers are perpendicular to each other. This improves the strength of the cylindrical portion. Furthermore, the second rib is formed protruding from the second weld portion toward the outer periphery of the spring guide. In other words, the second rib is formed by guiding the fiber-reinforced resin whose flows join when the drainage holes are formed. Therefore, even in a spring guide whose base portion has a drainage hole, the weld formed in the base portion during injection molding can be made smaller, thereby improving the strength of the base portion.
[0010] The present invention is characterized in that the spring guide further comprises a guide portion formed to protrude from the surface of the base portion and whose outer surface faces the inner circumference of the coil spring to determine the position of the coil spring, and the guide portion is formed continuous with a first weld portion formed on the inner circumference of the cylindrical portion.
[0011] In this invention, the guide portion that determines the position of the coil spring is formed continuously with the first weld portion. Although the strength of the first weld portion tends to be low in the cylindrical portion, the strength of the cylindrical portion can be improved by reinforcing the first weld portion with the guide portion.
[0012] The present invention provides A method for manufacturing a spring guide made of fiber-reinforced resin, the method comprising: a disk-shaped base portion supporting a coil spring that elastically supports the vehicle body; and a cylindrical portion through which a shock absorber cylinder is inserted; a molding process in which fiber-reinforced resin is injected into an injection molding mold so that it flows circumferentially around the cylindrical portion; the spring guide further comprises a first rib formed by projecting from a first weld portion formed by the joining of the fiber-reinforced resin when the cylindrical portion is formed, toward the outer periphery of the spring guide; and the molding process is characterized in that the fiber-reinforced resin is guided from a gate that is the only gate provided in the mold to form the first rib.
[0013] In this invention, the reinforcing fibers of the fiber-reinforced resin are oriented in the circumferential direction in the cylindrical portion. Therefore, when the cylinder is inserted into the cylindrical portion, the direction of the load acting on the cylindrical portion and the orientation direction of the reinforcing fibers are perpendicular to each other. This improves the strength of the cylindrical portion. Furthermore, the first rib is formed to protrude from the first weld portion toward the outer periphery of the spring guide. In other words, the first rib is molded by guiding the fiber-reinforced resin whose flows join when the cylindrical portion is formed. This makes it possible to reduce the size of the weld formed in the cylindrical portion during injection molding, thereby improving the strength of the cylindrical portion.
[0014] The present invention provides The molding step is characterized in that the first rib is molded so that the first rib, the gate, and the central axis of the cylindrical portion are positioned on a straight line. [Effects of the Invention]
[0019] According to the present invention, the strength of the spring guide can be improved. [Brief explanation of the drawings]
[0020] [Figure 1] 1 is a partial cross-sectional view of a suspension device according to an embodiment of the present invention. [Figure 2] FIG. 2 is a perspective view of a spring guide according to an embodiment of the present invention. [Figure 3A] FIG. 3 is a side cross-sectional view taken along line II in FIG. 2. [Figure 3B] FIG. 3 is a side cross-sectional view taken along line II-II in FIG. 2. [Figure 4A] FIG. 3B is a cross-sectional view of a mold, corresponding to FIG. 3A. [Figure 4B] FIG. 3B is a cross-sectional view of a mold, corresponding to FIG. 3B. [Figure 5A] FIG. 4B is a cross-sectional schematic view of a mold into which a fiber-reinforced resin has been injected, and corresponds to FIG. 4A. [Figure 5B] FIG. 4B is a cross-sectional view of a mold into which a fiber-reinforced resin has been injected, corresponding to FIG. 4B. [Figure 6] FIG. 2 is a plan view schematically illustrating the flow of fiber-reinforced resin in a molding process. [Figure 7] FIG. 7 is a schematic plan view showing the position of a submarine gate in a modified example of the embodiment of the present invention, and corresponds to FIG. 6. DETAILED DESCRIPTION OF THE INVENTION
[0021] A spring guide 100 according to an embodiment of the present invention will be described with reference to the drawings. The spring guide 100 is provided in a suspension device 10. The suspension device 10 is attached to an automobile (not shown) and generates a damping force to absorb shocks and vibrations received from the road surface while the vehicle is traveling, thereby stably suspending the vehicle body.
[0022] Fig. 1 is a partial cross-sectional view of a suspension device 10. As shown in Fig. 1, the suspension device 10 includes a shock absorber 1 provided between a vehicle body and a wheel, an upper mount 2 attached to the tip of a piston rod (hereinafter referred to as "rod") 1a of the shock absorber 1, a spring guide 100 attached to the outer periphery of a cylinder 1b of the shock absorber 1, a coil spring 4 provided between the spring guide 100 and the upper mount 2 and providing elastic support to the vehicle body, a bump cushion 5 fitted onto the rod 1a and restricting the compression stroke of the shock absorber 1, a bump stopper 6 fitted onto the end of the cylinder 1b on the rod 1a side, and a cylindrical dust boot 7 that protects the rod 1a.
[0023] The shock absorber 1 has a cylinder 1b and a cylindrical rod 1a that protrudes from an opening of the cylinder 1b. A piston (not shown) that divides the interior of the cylinder 1b into an extension-side chamber and a compression-side chamber is connected to the lower end of the rod 1a.
[0024] A knuckle bracket 1c is provided on the end of the cylinder 1b opposite the rod 1a side for connecting a knuckle (not shown) that holds the wheel to the shock absorber 1. For ease of explanation, the up-down direction will be defined by defining the upper mount 2 side as the upper side of the suspension device 10 and the knuckle bracket 1c side as the lower side of the suspension device 10. The up-down direction of the suspension device 10 is the axial direction (central axis direction) of the suspension device 10, which is the direction in which the shock absorber 1 expands and contracts. The radial direction of the suspension device 10 (the radial direction of the shock absorber 1) is a direction perpendicular to the axial direction of the suspension device 10. Hereinafter, the axial direction of the suspension device 10 (specifically, the axial direction of the cylinder 1b) will be simply referred to as the "axial direction," and the radial direction of the suspension device 10 (specifically, the radial direction of the cylinder 1b) will be simply referred to as the "radial direction." The axial upper side of the suspension device 10 will be simply referred to as the "upper side," and the axial lower side of the suspension device 10 will be simply referred to as the "lower side."
[0025] Shock absorber 1 is connected to the vehicle body via upper mount 2 and to the knuckle via knuckle bracket 1c, and is then assembled to the vehicle. Shock absorber 1 configured in this manner is configured to generate a damping force when rod 1a moves axially relative to cylinder 1b. Suspension device 10 uses the damping force of shock absorber 1 to quickly damp vibrations of the vehicle body.
[0026] The coil spring 4 is provided between the spring guide 100 and the upper mount 2. The coil spring 4 is sandwiched between the spring guide 100 and the upper mount 2 in a compressed state, and urges the shock absorber 1 in the extension direction. A rubber sheet 8 is provided between the upper mount 2 and the upper end of the coil spring 4. This prevents the upper mount 2 and the coil spring 4 from coming into direct contact with each other.
[0027] Fig. 2 is a perspective view of the spring guide 100. Fig. 3A is a side cross-sectional view taken along line II in Fig. 2, and is a cross-sectional view including a first rib 130, a drainage hole 114, and a second rib 140, which will be described later. Fig. 3B is a side cross-sectional view taken along line II-II in Fig. 2, and is a cross-sectional view excluding a first rib 130, a drainage hole 114, and a second rib 140, which will be described later.
[0028] As shown in Figures 1 and 2, the spring guide 100 is attached to the outer periphery of the cylinder 1b and is a member that supports the coil spring 4 from below. The spring guide 100 is made of fiber-reinforced resin. Fiber-reinforced resin is a resin that is blended with reinforcing fibers such as glass fiber or carbon fiber. As shown in Figures 1 to 3B, the spring guide 100 includes a disk-shaped base portion 110 that supports the coil spring 4, a cylindrical portion 112 through which the cylinder 1b of the shock absorber 1 is inserted, a first rib 130 that protrudes from the outer periphery of the cylindrical portion 112, and a hub 113 that protrudes from the surface of the base portion 110 and serves as a guide portion whose outer periphery faces the inner periphery of the coil spring 4 to determine the position of the coil spring 4.
[0029] The base portion 110 is formed so as to be inclined with respect to a plane perpendicular to the axial direction when the cylinder 1b of the shock absorber 1 is inserted into the cylindrical portion 112. FIG. 1 shows the base portion 110 attached to the suspension device 10 so that the wheel side is positioned at the top and the vehicle body side is positioned at the bottom. The base portion 110 supports the lower end of the coil spring 4 in an area 110c that is set around the hub 113 of the base portion 110. The base portion 110 has a sidewall 111 that extends obliquely upward from the radially outer end of the base portion 110. The sidewall 111 is annular and inclined so that the inner diameter increases as it extends upward from the base portion 110.
[0030] An elastic portion 103A is provided on the surface of the base portion 110. This prevents the base portion 110 of the spring guide 100 from directly contacting the coil spring 4. In other words, the coil spring 4 is supported by the base portion 110 via the elastic portion 103A. The elastic portion 103A is made of a material with a lower elastic modulus than the fiber-reinforced resin of the base portion 110, and for example, a thermoplastic elastomer such as polyester elastomer, polyurethane elastomer, polyolefin elastomer, or silicone elastomer is used. Note that the material of the elastic portion 103A may be a thermosetting elastomer such as urethane rubber, silicone rubber, or fluororubber, or another resin material. The elastic portion 103A does not necessarily have to be provided on the surface of the base portion 110.
[0031] The cylindrical portion 112 is formed on the base portion 110 and protrudes upward and downward from the base portion 110. The cylindrical portion 112 has an insertion hole 120 that passes through the base portion 110 in the axial direction and through which the cylinder 1b of the shock absorber 1 is inserted. As shown in FIG. 1, the cylindrical portion 112 is formed at a position eccentric to the center of the base portion 110 (in this embodiment, at a position eccentric to the vehicle body side).
[0032] As shown in FIG. 2, the cylindrical portion 112 is provided with protrusions 122 that protrude radially inward from its inner peripheral surface 121. The protrusions 122 support the outer peripheral surface of the cylinder 1b of the shock absorber 1. A plurality of the protrusions 122 are arranged at equal intervals around the circumferential direction of the cylindrical portion 112 and are arranged linearly along the axial direction of the cylindrical portion 112. The protrusions 122 are formed, for example, so that their cross-sectional shapes are rounded trapezoidal or semicircular, and are in line contact with the outer peripheral surface of the cylinder 1b. Therefore, the spring guide 100 is positioned so that the central axis of the cylindrical portion 112 coincides with the central axis of the cylinder 1b. Note that the fit between the cylinder 1b and the cylindrical portion 112, specifically the fit between the cylinder 1b and the protrusions 122 formed on the cylindrical portion 112, may be a "loose fit" or an "interference fit." When an "interference fit" is employed, there is no play between the cylindrical portion 112 and the cylinder 1b, making it possible to prevent the generation of abnormal noise due to play. In addition, the operational responsiveness of the suspension device 10 can be improved.
[0033] As shown in Fig. 1, a metal support ring 3 that supports a spring guide 100 is fixed by welding to the outer circumferential surface of cylinder 1b. The spring guide 100 is attached to the outer periphery of cylinder 1b by supporting the lower end of cylindrical portion 112 of spring guide 100 by support ring 3. In other words, the spring guide 100 is attached to cylinder 1b by fitting into cylinder 1b from above and abutting against support ring 3. Note that support ring 3 may also be fixed to the outer circumferential surface of cylinder 1b by a method other than welding; for example, cylinder 1b may be press-fitted into support ring 3 to fix support ring 3 to the outer circumferential surface of cylinder 1b.
[0034] As shown in FIGS. 2 to 3B, the first ribs 130 are rectangular and protrude downward from the rear surface of the hub 113. The first ribs 130 extend radially from the outer circumferential surface of the cylindrical portion 112 and are formed at intervals in the circumferential direction of the cylindrical portion 112. An extension line of the first ribs 130 intersects with the central axis of the cylindrical portion 112. The first ribs 130 improve the strength of the hub 113 and also improve the strength of the cylindrical portion 112 as described below.
[0035] The hub 113 is continuous with a portion of the cylindrical portion 112 in the circumferential direction and protrudes upward from the base portion 110 inside the coil spring 4. Specifically, the hub 113 is continuous with the central side of the base portion 110 on the cylindrical portion 112 and is formed in a crescent shape extending between the base portion 110 and the cylindrical portion 112. The hub 113 may be formed continuous with the entire cylindrical portion 112 in the circumferential direction. The hub 113 has an opening on the lower side, and a cavity 113a is formed therein. A first rib 130 is formed protruding from the back surface of the hub 113 within the cavity 113a of the hub 113. The outer periphery of the hub 113 abuts against the inner periphery of the lower end of the coil spring 4 and determines the radial position of the coil spring 4. The lower end of the coil spring 4 is supported by the hub 113, preventing the coil spring 4 from tilting (falling over).
[0036] As shown in Figures 1, 2, and 3A, the spring guide 100 further includes a drain hole 114 formed in the base portion 110 for draining liquid accumulated in the base portion 110, and a second rib 140 formed in the base portion 110 continuous with the drain hole 114.
[0037] In this embodiment, the drainage holes 114 are formed on the vehicle body side of the base portion 110. As a result, the drainage holes 114 are formed on the lower side of the base portion 110, so that liquid that has accumulated in the base portion 110 is efficiently drained through the drainage holes 114. The second rib 140 is rectangular and formed to protrude from the back surface of the base portion 110. The second rib 140 is formed to extend in the radial direction of the drainage holes 114. Furthermore, the second rib 140 is formed so that the central axis of the drainage holes 114 is positioned between the second rib 140 and the central axis of the cylindrical portion 112. The second rib 140 improves the strength of the base portion 110, as will be described later. Note that the second rib 140 may be formed to protrude from the surface of the base portion 110.
[0038] Next, a method for manufacturing the spring guide 100 will be described with reference to FIGS. 4A to 5B.
[0039] In this embodiment, the spring guide 100 is integrally molded by injection molding using a submarine gate 151c as the gate. Figures 4A and 4B are cross-sectional schematic views showing a mold 150 as an injection molding die used in injection molding, showing the mold 150 positioned for molding the spring guide 100. Figure 4A corresponds to the cross-sectional view shown in Figure 3A, and Figure 4B corresponds to the cross-sectional view shown in Figure 3B.
[0040] The mold 150 has a first mold 160 for molding the front side of the base portion 110 of the spring guide 100, a second mold 170 for molding the back side of the base portion 110 of the spring guide 100, and a third mold 180 that is inserted into the second mold 170 to mold the cylindrical portion 112. A cylindrical hole 177 is formed in the second mold 170. The third mold 180 is also cylindrical and is inserted into the hole 177 of the second mold 170. As shown in FIGS. 4A and 4B , the mold 150 is positioned so that the first mold 160 faces the second mold 170 and the third mold 180. With the mold 150 positioned in this manner, the spring guide 100 is molded by injecting fiber-reinforced resin into the mold 150 through a submarine gate 151c.
[0041] The first mold 160 is formed with a molding surface 161 for molding the front side of the base portion 110 of the spring guide 100. The molding surface 161 is formed to correspond to the shape of the front side of the base portion 110 of the spring guide 100. The second mold 170 is formed with a molding surface 171 for molding the back side of the base portion 110 of the spring guide 100. The molding surface 171 is formed to mold the back side of the base portion 110 of the spring guide 100, and the area outward from the cylindrical portion 112. The molding surface 171 is formed to correspond to the shape of the back side of the spring guide 100, and a cylindrical protrusion 171a (see FIG. 4A) corresponding to the drainage hole 114 is formed on the molding surface 171. The third mold 180 is formed with an annular molding surface 181 for molding the cylindrical portion 112. The molding surface 181 is formed to correspond to the shape of the inner circumferential surface 121 of the cylindrical portion 112 and the lower end of the cylindrical portion 112.
[0042] 4A and 4B, when the mold 150 is positioned, a molding region 190 for molding the spring guide 100 is formed between the molding surface 161 of the first mold 160, the molding surface 171 of the second mold 170, and the molding surface 181 of the third mold 180. The molding region 190 has the following regions. Between the molding surface 161 of the first mold 160 and the molding surface 171 of the second mold 170, a base portion molding region 192 corresponding to the base portion 110 and the side wall 111, and a hub molding region 191 corresponding to the hub 113 are formed. On the molding surface 171 of the second mold 170, a first rib molding region 193 (see FIG. 4A) corresponding to the first rib 130 and a second rib molding region 194 (see FIG. 4A) corresponding to the second rib 140 are formed. A cylindrical portion molding region 195 corresponding to the cylindrical portion 112 is formed between the molding surface 181 of the third mold 180, the molding surface 161 of the first mold 160, and the molding surface 171 of the second mold 170.
[0043] The mold 150 also has an injection channel 151 for injecting fiber-reinforced resin into the molding region 190. The injection channel 151 includes a sprue 151a formed in the first mold 160 and extending linearly along the central axis O of the cylindrical portion molding region 195, a runner 151b formed in the first mold 160 and the third mold 180, which bends 90 degrees from the end of the sprue 151a and extends linearly radially outward, and a submarine gate 151c formed in the third mold 180 and connects the runner 151b to the cylindrical portion molding region 195. In this embodiment, there is only one submarine gate 151c. The submarine gate 151c is formed so that the central axis O of the cylindrical portion molding region 195 is located between the submarine gate 151c and one of the multiple first rib molding regions 193 when the mold 150 is positioned. Furthermore, the submarine gate 151c is formed so that the central axis of the convex portion 171a of the molding surface 171 of the second mold 170 is positioned between the submarine gate 151c and the second rib molding region 194.
[0044] The manufacturing method of the spring guide 100 includes a mold positioning step, a molding step, and a mold separation step. As shown in Figures 4A and 4B, in the mold positioning step, a first mold 160, a second mold 170, and a third mold 180 are positioned to form a molding region 190 to be filled with fiber reinforced resin. After the mold positioning step is completed, the molding step is performed.
[0045] Fig. 6 is a schematic plan view showing the flow of fiber-reinforced resin within the molding region 190 during the molding process. Note that Fig. 6 shows only one representative first rib molding region 193 formed so that the central axis O of the cylindrical portion molding region 195 is positioned between the region and the submarine gate 151c. Furthermore, in the following explanation of the molding process, the first rib molding region 193 will be explained as a representative one formed so that the central axis O of the cylindrical portion molding region 195 is positioned between the region and the submarine gate 151c.
[0046] 5A to 6, in the molding process, molten fiber reinforced resin is injected into molding region 190 of mold 150 through sprue 151a, runner 151b, and submarine gate 151c, filling molding region 190 with fiber reinforced resin. Because submarine gate 151c communicates with cylindrical portion molding region 195, in the molding process, fiber reinforced resin is injected from submarine gate 151c into cylindrical portion molding region 195 in the circumferential direction of cylindrical portion 112.
[0047] The flow of fiber-reinforced resin injected from the submarine gate 151c into the cylindrical portion molding region 195 during the molding process will be described in detail. The fiber-reinforced resin injected from the submarine gate 151c into the cylindrical portion molding region 195 flows in two circumferential directions within the cylindrical portion molding region 195, as indicated by arrows A in FIG. 6 . The fiber-reinforced resin flowing in two directions within the cylindrical portion molding region 195 merges at a first merging position 196 within the cylindrical portion molding region 195. Specifically, the first merging position 196 is a location within the cylindrical portion molding region 195 where the central axis O of the cylindrical portion molding region 195 is located between the first merging position 196 and the submarine gate 151c. At the first merging position 196, the flows of fiber-reinforced resin flowing in two directions merge when the cylindrical portion 112 is formed, forming a first weld 145 (see FIG. 6 ) at the boundary surface. The first weld 145 is formed on the inner periphery of the cylindrical portion 112. In this way, the cylindrical portion 112 is formed by the fiber reinforced resin that flows in two separate directions in the circumferential direction within the cylindrical portion molding region 195. Therefore, in the cylindrical portion 112, the fiber reinforced resin is oriented in the circumferential direction.
[0048] The first rib molding region 193 is formed so that the central axis O of the cylindrical portion molding region 195 is located between the first rib molding region 193 and the submarine gate 151c. In other words, the first rib molding region 193 communicates with the first junction position 196. Therefore, as shown by arrow B in FIG. 6 , two streams of fiber-reinforced resin that merge at the first junction position 196 flow into the first rib molding region 193. The fiber-reinforced resin that has flowed into the first rib molding region 193 fills the first rib molding region 193. In this manner, the first rib 130 is molded from the two streams of fiber-reinforced resin. In other words, in the molding process, the first rib 130 is molded so that the first rib 130, the only submarine gate 151c provided in the mold, and the central axis O of the cylindrical portion 112 are aligned on a straight line. The first rib 130 is formed to protrude from the first weld portion 145 toward the outer periphery of the spring guide 100.
[0049] The cylindrical portion molding region 195 also communicates with the hub molding region 191. Therefore, the fiber reinforced resin in the cylindrical portion molding region 195 also flows into the hub molding region 191, as shown by arrow C in FIG. 6 . The fiber reinforced resin that has flowed into the hub molding region 191 flows mainly along the circumferential direction of the hub molding region 191, filling the hub molding region 191. The fiber reinforced resin also flows into the hub molding region 191 from a first junction 196 in the cylindrical portion molding region 195. Specifically, the fiber reinforced resin flows into the hub molding region 191 from the upper end of the first junction 196 and fills the hub molding region 191. The fiber reinforced resin also flows into the hub molding region 191 from the first rib molding region 193 and fills the hub molding region 191. In this manner, the hub 113 is molded. The hub 113 is formed continuously with the first weld portion 145.
[0050] The cylindrical portion molding region 195 also communicates with the base portion molding region 192. Therefore, the fiber reinforced resin in the cylindrical portion molding region 195 flows into the base portion molding region 192. Furthermore, the base portion molding region 192 also communicates with the hub molding region 191. Therefore, the fiber reinforced resin in the hub molding region 191 also flows into the base portion molding region 192. Of the fiber reinforced resin that has flowed into the base portion molding region 192, some flows along the circumferential direction of the base portion molding region 192 as shown by arrow D in FIG. 6, and the other flows along the circumferential direction of the convex portion 171 a of the molding surface 171 of the second mold 170 as shown by arrow E in FIG. 6.
[0051] The fiber-reinforced resin flowing in the circumferential direction of the base portion molding region 192 fills the base portion molding region 192. The fiber-reinforced resin flowing in the circumferential direction of the protrusion 171a splits into two circumferential directions around the protrusion 171a as shown by arrows E in FIG. 6 and fills the base portion molding region 192. This results in the molding of the base portion 110 and the side wall 111. The fiber-reinforced resin flowing in the two circumferential directions around the protrusion 171a merges at a second merging position 197 in the base portion molding region 192. Specifically, the second merging position 197 is a position on the outer periphery of the protrusion 171a where the central axis of the protrusion 171a is located between the submarine gate 151c. At the second merging position 197, the two flows of fiber-reinforced resin flowing in the two directions merge when the drainage hole 114 is formed, forming a second weld 146 (see FIG. 6) as a boundary surface. The second weld 146 is formed on the inner periphery of the drain hole 114 .
[0052] Here, the second rib molding region 194 is formed so that the central axis of the protrusion 171a is positioned between it and the submarine gate 151c. In other words, the second rib molding region 194 is formed extending from the second junction position 197. Therefore, the two flows of fiber reinforced resin indicated by arrows E in FIG. 6 join together and flow into the second rib molding region 194, respectively, filling the second rib molding region 194. In this way, the second rib 140 is formed by the two flows of fiber reinforced resin. The second rib 140 is formed to protrude from the second weld portion 146 toward the outer periphery of the spring guide 100.
[0053] In this manner, the fiber-reinforced resin is filled into the molding region 190. Note that the flow direction of the fiber-reinforced resin described above does not necessarily mean that all of the fiber-reinforced resin flows in the direction described above within each region. Furthermore, the term "circumferential direction" does not strictly refer to the direction of the fiber-reinforced resin flow; the fiber-reinforced resin may flow locally in a direction other than the circumferential direction. For example, within the cylindrical portion molding region 195, the fiber-reinforced resin does not strictly flow in the circumferential direction around the submarine gate 151c or the first weld 145, but the reinforced resin flows in the circumferential direction throughout the cylindrical portion molding region 195. Once the fiber-reinforced resin has been filled into the molding region 190, the heat from the mold 150 is removed, and the fiber-reinforced resin is cooled and hardened. This completes the molding process. After the molding process is completed, the mold separation process is performed.
[0054] In the mold separation process, the first mold 160, or the second mold 170 and the third mold 180, are moved so as to separate the first mold 160 from the second mold 170 and the third mold 180. As a result, the submarine gate 151c, which has a smaller cross-sectional area than the runner 151b, is cut. By cutting the submarine gate 151c, a gate cut mark, which is a remaining portion of the submarine gate 151c, is formed on the inner circumferential surface 121 of the cylindrical portion 112. Note that instead of cutting the submarine gate 151c by separating the mold 150, the submarine gate 151c may be cut with a tool such as nippers. In this case, the gate cut mark is also formed on the inner circumferential surface 121 of the cylindrical portion 112. Then, the third mold 180 is removed from the hole 177 of the second mold 170, and the spring guide 100 is separated from the mold 150 by an injector pin (not shown). This completes the mold separation process, and the spring guide 100 is completed.
[0055] Here, in the completed spring guide 100, when the cylinder 1b of the shock absorber 1 is inserted into the cylindrical portion 112, a radial load acts on the cylindrical portion 112. In the spring guide 100 of this embodiment, the reinforcing fibers of the fiber-reinforced resin are oriented in the circumferential direction in the cylindrical portion 112. Specifically, in the manufacturing method of the spring guide 100 of this embodiment, in the molding process, the fiber-reinforced resin is injected from the submarine gate 151c into the cylindrical portion molding region 195 in the circumferential direction of the cylindrical portion 112. Therefore, the direction of the load acting on the cylindrical portion 112 when the cylinder 1b is inserted into the cylindrical portion 112 is perpendicular to the orientation direction of the reinforcing fibers. Therefore, the load acting on the cylindrical portion 112 when the cylinder 1b is inserted into the cylindrical portion 112 can be supported by both the resin and the reinforcing fibers contained in the fiber-reinforced resin. This improves the strength of the cylindrical portion 112.
[0056] Generally, in injection molding, when multiple flows of material within a mold join together and a weld is formed at the boundary, the portion where the weld is formed has lower strength than other portions. In this embodiment, first weld 145 and second weld 146 are formed at first joining position 196 and second joining position 197, respectively, during the molding process.
[0057] In the molding process, the first rib 130 is formed by guiding the fiber-reinforced resin from the first joining position 196. In other words, the first rib 130 is formed so as to protrude from the first weld 145 toward the outer periphery of the spring guide 100. That is, the first rib 130 is formed by guiding the fiber-reinforced resin whose flows join when the cylindrical portion 112 is formed. As a result, the portion of the fiber-reinforced resin where the weld is formed at the first joining position 196 flows into the first rib molding region 193 without remaining in the cylindrical portion molding region 195. The fiber-reinforced resin that has flowed into the first rib molding region 193 flows toward the corner 193a of the first rib molding region 193 (more precisely, toward a location adjacent to the corner 193a in the hub molding region 191). That is, the portion of the fiber-reinforced resin where the weld is formed at the first joining position 196 is guided toward the corner 193a. This allows the weld (first weld 145) formed in the cylindrical portion 112 during injection molding to be small. Therefore, the strength of the cylindrical portion 112 can be improved.
[0058] Furthermore, in this embodiment, as described above, the portion of the fiber-reinforced resin where the weld is formed is guided to the corner 193a in the first rib molding region 193, so the first weld 145 formed in the cylindrical portion 112 is small. However, the strength of the first weld 145 is likely to be low in the cylindrical portion 112. However, in the molding process, the hub 113 is molded by guiding the fiber-reinforced resin from the first joining position 196 in the cylindrical portion molding region 195. In other words, the hub 113 is molded continuously with the first weld 145. Therefore, the cylindrical portion 112 is reinforced by the hub 113, and the strength of the cylindrical portion 112 can be improved.
[0059] Furthermore, the second rib molding region 194 is formed so that the central axis of the protruding portion 171a of the molding surface 171 of the second mold 170 is positioned between the second rib molding region 194 and the submarine gate 151c. During the molding process, the reinforced fiber resin flows in two directions circumferentially around the protruding portion 171a and join at the second joining position 197. The two flows then flow into the second rib molding region 194, filling it. That is, the second rib 140 is molded so that the central axis of the drainage hole 114 is positioned between the second rib 140 and the submarine gate 151c. In other words, the second rib 140 is formed to protrude from the second weld 146 toward the outer periphery of the spring guide 100. That is, the second rib 140 is formed by guiding the joined flows of fiber-reinforced resin when the drainage hole 114 is formed. This allows the weld (second weld 146) formed in the base portion 110 during injection molding to be small, even if the spring guide 100 has the drainage hole 114. Therefore, the strength of the base portion 110 can be improved.
[0060] Furthermore, the first rib 130 and the second rib 140 protrude in the axial direction from the base portion 110, and therefore have the effect of reinforcing the base portion 110 against axial forces. Therefore, by molding the first rib 130 and the second rib 140 as described above in the molding process, the strength of the cylindrical portion 112 and the base portion 110 can be improved.
[0061] Furthermore, during the molding process, a gate cut mark, which is a remnant of the submarine gate 151c, is formed. The gate cut mark of this embodiment has a smaller cross-sectional area than when other gates such as a disc gate are used, so absorption of water and the like through the gate cut mark into the fiber-reinforced resin is suppressed. This suppresses deterioration of the spring guide 100.
[0062] The spring guide 100 may have only the first rib 130 or the hub 113, or may not have both the first rib 130 and the hub 113. In other words, molding the first rib 130 and the hub 113 is not essential during the molding process; instead, the fiber-reinforced resin may be injected from the submarine gate 151c into the cylindrical portion molding region 195 in the circumferential direction of the cylindrical portion 112. However, in this case, the first weld 145 formed in the cylindrical portion 112 is likely to be large. Therefore, it is preferable to mold at least the first rib 130 during the molding process. By molding the first rib 130, the portion of the fiber-reinforced resin where the weld is formed at the first joining position 196 is guided to the corner 193a of the first rib molding region 193. Therefore, the first weld 145 formed in the cylindrical portion 112 during injection molding can be made smaller. Furthermore, when molding the first rib 130, the hub 113 is used to determine the position of the coil spring 4, and the first rib 130 can be easily molded by molding it so that it protrudes from the back surface of the hub 113.
[0063] Furthermore, the spring guide 100 does not necessarily have the drainage holes 114 and the second rib 140, or does not necessarily have both the drainage holes 114 and the second rib 140. In other words, it is not essential to form the drainage holes 114 and the second rib 140 in the molding process. However, when the drainage holes 114 are molded in the spring guide 100, it is preferable to also mold the second rib 140 in order to position the weld on the second rib 140.
[0064] Furthermore, first rib 130 does not have to be formed in a straight line with first weld 145, but may be formed to protrude from a part of first weld 145. Similarly, second rib 140 does not have to be formed in a straight line with second weld 146, but may be formed to protrude from a part of second weld 146.
[0065] Furthermore, the spring guide 100 may be injection molded not only using the submarine gate 151c but also using a tunnel gate, a pin gate, or the like.
[0066] According to the above-described embodiment, the following advantageous effects are achieved.
[0067] In the molding process, fiber reinforced resin is injected from the submarine gate 151c into the cylindrical portion molding region 195 in the circumferential direction of the cylindrical portion 112, so that the reinforcing fibers of the fiber reinforced resin are oriented in the circumferential direction in the cylindrical portion 112. Therefore, the direction of the load acting on the cylindrical portion 112 when the cylinder 1b is inserted into the cylindrical portion 112 is perpendicular to the orientation direction of the reinforcing fibers, so that the strength of the cylindrical portion 112 can be improved.
[0068] In the molding process, first rib 130 is molded by introducing fiber reinforced resin from first joining position 196. Therefore, first weld 145 formed in cylindrical portion 112 during injection molding can be made smaller, and the strength of cylindrical portion 112 can be improved.
[0069] In the molding process, the hub 113 is molded by introducing the fiber reinforced resin from the first merging position 196. In other words, the hub 113 is molded continuously with the portion of the cylindrical portion 112 that is likely to have low strength during injection molding. Therefore, by molding the hub 113, the strength of the cylindrical portion 112 can be improved.
[0070] In the molding process, the second rib 140 is molded so that the central axis of the drain hole 114 is positioned between the second rib 140 and the submarine gate 151c. This allows the weld formed during injection molding to be positioned within the second rib 140, even if the base portion 110 of the spring guide 100 has the drain hole 114. This improves the strength of the base portion 110.
[0071] Next, a modification of this embodiment will be described.
[0072] <Variation 1> In the above embodiment, the molding process has been described as injecting fiber-reinforced resin into the cylindrical portion molding region 195 through a single submarine gate 151c provided in the mold 150. However, the method of injecting fiber-reinforced resin in the molding process is not limited to this. For example, as shown in FIG. 7 , fiber-reinforced resin may be injected into the cylindrical portion molding region 195 through multiple submarine gates 151c provided in the mold 150. In other words, in the molding process, fiber-reinforced resin may be injected in the circumferential direction of the cylindrical portion 112 from at least one location in the cylindrical portion molding region 195. Note that FIG. 7 illustrates a case in which three submarine gates 151c are provided at 120-degree intervals. Even with this configuration, similar to the present embodiment, the reinforcing fibers of the fiber-reinforced resin are oriented in the circumferential direction in the cylindrical portion 112, thereby improving the strength of the cylindrical portion 112. When fiber reinforced resin is injected from multiple submarine gates 151c, as shown by the arrows in Figure 7, the fiber reinforced resin can be guided from the position where the flows from adjacent submarine gates 151c join together to the first rib molding region 193 to form the first rib 130. Specifically, multiple submarine gates 151c can be formed in the third mold 180 so that the first rib molding region 193 is located midway between the submarine gates 151c adjacent to each other in the circumferential direction.
[0073] Alternatively, a submarine gate 151c may be provided in the base portion molding region 192, and fiber reinforced resin may be injected from the submarine gate 151c into the base portion molding region 192. Even in this case, the fiber reinforced resin flows in two separate circumferential directions within the cylindrical portion molding region 195, and the fiber reinforced resin is oriented in the circumferential direction in the cylindrical portion 112. In other words, the manufacturing method for the spring guide 100 may include a molding step of injecting the fiber reinforced resin so that it flows in the circumferential direction of the cylindrical portion 112.
[0074] <Variation 2> In the above embodiment, the first rib 130 and the second rib 140 are rectangular. However, the first rib 130 and the second rib 140 may be triangular and protrude downward or horizontally in the cross section shown in FIG. 3A . Even with this configuration, as in the present embodiment, the welds formed during injection molding can be positioned within the first rib 130 and the second rib 140. Furthermore, the first rib 130 and the second rib 140 may be configured to protrude from the corresponding first welds 145 and second welds 146 toward the outer periphery of the spring guide 100. For example, the first rib 130 may be formed to extend in a direction different from the radial direction of the cylindrical portion 112, and the second rib 140 may be formed to extend in a direction different from the radial direction of the drainage holes 114.
[0075] The configuration, operation, and effects of the embodiment of the present invention configured as above will be described below.
[0076] The spring guide 100, made of fiber-reinforced resin, comprises a disk-shaped base portion 110 that supports the coil spring 4, which elastically supports the vehicle body, and a cylindrical portion 112 through which the cylinder 1b of the shock absorber 1 is inserted, and in the cylindrical portion 112, the fiber-reinforced resin is oriented circumferentially.
[0077] In this configuration, the reinforcing fibers of the fiber-reinforced resin are oriented in the circumferential direction in the cylindrical portion 112. Therefore, when the cylinder 1b is inserted into the cylindrical portion 112, the direction of the load acting on the cylindrical portion 112 and the orientation direction of the reinforcing fibers are perpendicular to each other. This allows the strength of the cylindrical portion 112 to be improved.
[0078] The spring guide 100 further includes a first rib 130 formed to protrude from a first weld portion 145 formed on the inner periphery of the cylindrical portion 112 toward the outer periphery of the spring guide 100 .
[0079] In this configuration, first rib 130 is formed to protrude from first weld 145 toward the outer periphery of spring guide 100. In other words, first rib 130 is formed by guiding the fiber-reinforced resin whose flows join together when cylindrical portion 112 is formed. Therefore, first weld 145 formed in cylindrical portion 112 during injection molding can be made smaller, thereby improving the strength of cylindrical portion 112.
[0080] The spring guide 100 further includes a hub 113 as a guide portion that protrudes from the surface of the base portion 110 and whose outer surface faces the inner circumference of the coil spring 4 to determine the position of the coil spring 4, and the hub 113 is formed continuously with a first weld portion 145 formed on the inner circumference of the cylindrical portion 112.
[0081] In this configuration, hub 113, which determines the position of coil spring 4, is formed continuously with first weld 145. Although first weld 145 tends to have low strength in cylindrical portion 112, first weld 145 is reinforced by hub 113, thereby improving the strength of cylindrical portion 112.
[0082] The spring guide 100 is characterized by further comprising a drain hole 114 formed in the base portion 110 for draining liquid accumulated in the base portion 110, and a second rib 140 formed protruding from a second weld portion 146 formed on the inner periphery of the drain hole 114 toward the outer periphery of the spring guide 100.
[0083] In this configuration, second rib 140 is formed to protrude from second weld 146 toward the outer periphery of spring guide 100. In other words, second rib 140 is formed by guiding the fiber-reinforced resin whose flows join when drainage hole 114 is formed. Therefore, even in spring guide 100 in which base portion 110 has drainage hole 114, second weld 146 formed in base portion 110 during injection molding can be made smaller, thereby improving the strength of base portion 110.
[0084] The spring guide 100 is made of fiber-reinforced resin and has a disk-shaped base portion 110 that supports a coil spring 4 that elastically supports the vehicle body, and a cylindrical portion 112 through which the cylinder 1b of the shock absorber 1 is inserted.The manufacturing method of the spring guide 100 includes a molding step of injecting fiber-reinforced resin into a mold 150 that serves as an injection molding mold so that the resin flows circumferentially around the cylindrical portion 112.
[0085] In this configuration, the reinforcing fibers of the fiber-reinforced resin are oriented in the circumferential direction in the cylindrical portion 112. Therefore, when the cylinder 1b is inserted into the cylindrical portion 112, the direction of the load acting on the cylindrical portion 112 and the orientation direction of the reinforcing fibers are perpendicular to each other. This allows the strength of the cylindrical portion 112 to be improved.
[0086] The spring guide 100 further includes a first rib 130 formed to protrude from the outer peripheral surface of the cylindrical portion 112, and in the molding process, fiber reinforced resin is injected through a submarine gate 151c, which is a gate provided in the cylindrical portion molding area 195, and the fiber reinforced resin is guided from a first junction position 196 where the flows of fiber reinforced resin join in the cylindrical portion molding area 195, to form the first rib 130.
[0087] A method for manufacturing a spring guide 100, wherein the spring guide 100 further comprises a first rib 130 formed to protrude toward the outer periphery of the spring guide 100 from a first weld portion 145 formed by the joining of fiber reinforced resin when the cylindrical portion 112 is formed, and in the molding process, the first rib 130 is molded by guiding the fiber reinforced resin from a submarine gate 151c, which is the only gate provided in a mold 150.
[0088] In the molding step of the manufacturing method of the spring guide 100, the first rib 130 is molded so that the first rib 130, the submarine gate 151c, and the central axis O of the cylindrical portion 112 are positioned on a straight line.
[0089] In these configurations, first rib 130 is formed to protrude from first weld 145 toward the outer periphery of spring guide 100. In other words, first rib 130 is formed by guiding the fiber-reinforced resin whose flows join together when cylindrical portion 112 is formed. Therefore, first weld 145 formed in cylindrical portion 112 during injection molding can be made smaller, thereby improving the strength of cylindrical portion 112.
[0090] The spring guide 100 further includes a hub 113 as a guide portion that protrudes from the base portion 110 and whose outer surface contacts the inner circumference of the coil spring to determine the position of the coil spring. In the molding process, the fiber-reinforced resin is guided from the first junction position 196 to mold the hub 113.
[0091] In this configuration, hub 113, which determines the position of the coil spring, is molded by guiding fiber-reinforced resin from first junction 196 where the flows of fiber-reinforced resin join in cylindrical portion molding region 195. In other words, hub 113 is molded continuously with the portion of cylindrical portion 112 that is likely to have low strength when molded in injection molding die 150. Therefore, molding hub 113 can improve the strength of cylindrical portion 112.
[0092] The spring guide 100 further includes a drain hole 114 formed in the base portion 110 for draining liquid accumulated in the base portion 110, and a second rib 140 formed in the base portion 110 continuous with the drain hole 114, and is characterized in that during the molding process, the second rib 140 is molded so that the central axis of the drain hole 114 is positioned between the submarine gate 151c.
[0093] In this configuration, even if the base portion 110 of the spring guide 100 has the drain hole 114, the second rib 140 is molded so that the center axis of the drain hole 114 is positioned between the second rib 140 and the submarine gate 151c, so that the weld formed during injection molding can be positioned inside the second rib 140. Therefore, the strength of the base portion 110 can be improved.
[0094] Although the embodiments of the present invention have been described above, the above embodiments merely illustrate some of the application examples of the present invention, and it is not intended that the technical scope of the present invention be limited to the specific configurations of the above embodiments. [Explanation of symbols]
[0095] 1···Shock absorber, 1b···Cylinder, 4···Coil spring, 100···Spring guide, 110···Base portion, 112···Cylindrical portion, 113···Hub (guide portion), 114···Drain hole, 130···First rib, 140···Second rib, 145···First weld portion, 146···Second weld portion, 150···Mold (mold for injection molding), 151c···Submarine gate (gate)
Claims
1. A spring guide formed of fiber reinforced resin, a disk-shaped base portion supporting a coil spring that elastically supports the vehicle body; a cylindrical portion through which a cylinder of a shock absorber is inserted; a first rib formed to protrude from a first weld portion formed on the inner periphery of the cylindrical portion toward an outer periphery of the spring guide, The spring guide is characterized in that the fiber reinforced resin is oriented in a circumferential direction in the cylindrical portion.
2. A spring guide formed of fiber reinforced resin, a disk-shaped base portion supporting a coil spring that elastically supports the vehicle body; a cylindrical portion through which a cylinder of a shock absorber is inserted; a drain hole formed in the base portion for draining liquid accumulated in the base portion; a second rib formed to protrude from a second weld portion formed on the inner periphery of the drain hole toward the outer periphery of the spring guide, The spring guide is characterized in that the fiber reinforced resin is oriented in a circumferential direction in the cylindrical portion.
3. 2. The spring guide according to claim 1, a guide portion formed to protrude from the surface of the base portion and having an outer circumferential surface facing an inner circumferential surface of the coil spring to define a position of the coil spring; The spring guide is characterized in that the guide portion is formed continuously with the first weld portion.
4. A method for manufacturing a spring guide made of fiber reinforced resin, the spring guide comprising: a disk-shaped base portion supporting a coil spring that elastically supports a vehicle body; and a cylindrical portion through which a cylinder of a shock absorber is inserted; a molding step of injecting the fiber reinforced resin into an injection molding die so that the resin flows in a circumferential direction of the cylindrical portion, The spring guide further includes a first rib formed protruding from a first weld portion formed by the fiber reinforced resin joining together when the cylindrical portion is formed toward the outer periphery of the spring guide, The method for manufacturing a spring guide, wherein in the molding step, the fiber reinforced resin is guided through a gate provided only one in the mold to mold the first rib.
5. A method for manufacturing a spring guide according to claim 4, comprising: A method for manufacturing a spring guide, characterized in that in the molding process, the first rib is molded so that the first rib, the gate, and the central axis of the cylindrical portion are positioned on a straight line.
Citation Information
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