Vehicle seat frame

The vehicle seat frame design with tension wires and bump rubbers addresses excessive downward displacement, enhancing comfort and protecting underlying devices by restricting seat frame movement.

JP7838648B2Active Publication Date: 2026-04-01NISSAN MOTOR CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-07-11
Publication Date
2026-04-01

AI Technical Summary

Technical Problem

Existing vehicle seat frames with S-springs experience excessive downward displacement when an occupant kneels on the seat, leading to difficulty in reaching luggage and potential damage to underlying devices due to concentrated weight.

Method used

A vehicle seat frame design incorporating a pair of side arms, cross members, S-springs, and tension wires between retaining members and cross members to restrict excessive downward displacement, with bump rubbers to mitigate impact.

Benefits of technology

The design improves ride comfort by allowing S-springs to deflect freely while preventing excessive downward displacement, protecting underlying devices from contact and damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

This seat frame for a vehicle comprises: a pair of side arms (2) of a bottom frame (1) that supports buttocks and thighs of an occupant from below; and a pair of cross members (3, 4) that connect front portions and rear portions of the side arms (2) respectively. At least two zigzag springs (7) are stretched between the two cross members (3, 4) [or the two side arms (2)]. A retaining member (8) is attached between the zigzag springs (7). A pull wire (10) is attached between one of the two cross members (3, 4) [or one of the two side arms (2)] to which the zigzag springs (7) are attached, and the retaining member (8).
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Description

Technical Field

[0001] The present invention relates to a seat frame for a vehicle.

Background Art

[0002] A vehicle seat is generally configured by covering a cushioning material made of foamed resin on a metal seat frame. A seat skin is further covered on the cushioning material. The seat frame mainly includes a bottom frame that supports the occupant's buttocks and thighs from below, and a back frame that supports the occupant's upper body from behind. The present invention particularly relates to the structure of the bottom frame.

[0003] The following Patent Document 1 discloses the structure of a typical bottom frame. The bottom frame disclosed in Patent Document 1 includes a pair of side arms that form both sides, a front member that connects the front portions of the pair of side arms, and a rear member that connects the rear portions of the pair of side arms. A plurality of S springs (serpentine springs) are stretched between the pair of side arms (FIG. 2 of Patent Document 1). A front pan may be provided above the front member (FIG. 11A of Patent Document 1). The plurality of S springs may be bridged between the front member and the rear member (FIG. 11A of Patent Document 1). The bottom frame is often slidably attached to a pair of seat rails (FIG. 11A of Patent Document 1).

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] The occupant's buttocks and thighs are supported from below by S-springs and cushioning material. Generally, ride comfort improves by lowering the stiffness of the S-springs and cushioning material. The seat bottom unit supports the occupant's buttocks and thighs from below over a wide area when seated. However, occupants may kneel on the bottom unit to reach for luggage on the other side of the seat. In this case, the occupant's weight acts on a narrow area, and the downward displacement of the seat surface becomes greater than the downward displacement when seated. That is, the downward displacement of the S-spring becomes excessively large, making it difficult to reach luggage.

[0006] The object of the present invention is to provide a vehicle seat frame that can improve ride comfort while preventing excessive downward displacement of the S-spring. [Means for solving the problem]

[0007] A vehicle seat frame according to the features of the present invention comprises a pair of side arms of a bottom frame and a pair of cross members connecting the front and rear portions of the side arms, respectively. At least two S-springs are stretched between the two cross members (or the two side arms), and a retaining member is attached between the S-springs. A tension wire is suspended between the retaining member and one of the two cross members (or one of the two side arms) to which the S-springs are attached. [Effects of the Invention]

[0008] Based on the above features, it is possible to improve ride comfort while restricting excessive downward displacement of the S-spring by using tension wires. [Brief explanation of the drawing]

[0009] [Figure 1] Figure 1 is a perspective view of a vehicle seat frame according to an embodiment. [Figure 2] Figure 2 is an exploded perspective view of the mechanism for restricting excessive downward displacement of the S-spring of the bottom frame in the frame structure described above. [Figure 3]Figure 3 is a (partial cross-sectional) side view of the excessive downward displacement regulating mechanism described above. [Modes for carrying out the invention]

[0010] The following describes a vehicle seat frame according to an embodiment, with reference to the drawings. The seat frame of this embodiment is a seat frame for the front seat of an electrified vehicle such as a battery electric vehicle (BEV) or a hybrid electric vehicle (HEV). The seat frame comprises a bottom frame 1 shown in Figure 1, which supports the occupant's buttocks and thighs from below, and a back frame, which supports the occupant's upper body from behind. The feature of this embodiment lies in the bottom frame 1, so the back frame is not shown in Figure 1. The bottom frame 1 is covered with a foamed resin cushioning material, and the cushioning material is further covered with seat fabric. However, the cushioning material and seat fabric are also not shown in Figure 1.

[0011] As shown in Figure 1, the bottom frame 1 is equipped with a pair of steel side arms 2. The side arms 2 extend forward from the reclining pivot point between the bottom frame 1 and the back frame. A rear member 3 is provided at the reclining pivot point, connecting the rear ends of the side arms 2. A front member 4 (see Figure 3) is also provided, connecting the front ends of the side arms 2. Although not shown, another front member similar to the front member 4 is provided in front of the front member 4 shown in Figure 3. The rear member 3 and front member 4 in this embodiment are round steel pipes.

[0012] The front member 4 and rear member 3 are cross members that connect the front and rear ends of the two side arms 2, respectively. Above the two front members 4, a front pan 5 is provided to support the occupant's thighs from below. The front pan 5 is attached to the bottom frame 1 so as to connect the front ends of the side arms 2, and the front pan 5 is also a type of "cross member that connects the front ends of the side arms 2". Below the front pan 5, motors (not shown) for adjusting the seat slide position, the angle of the bottom frame 1, and the reclining angle of the seat back are located.

[0013] Four S-springs (serpentine springs) 7 are stretched between the rear member 3 and the front pan 5 (i.e., between the two cross members). In this embodiment, the S-springs 7 are made of spring steel and are stretched in the longitudinal direction of the vehicle. The S-springs 7 support the buttocks of a seated occupant from below. The S-springs 7 are made convex downwardly according to the mass of the occupant, improving seating comfort. The S-springs 7 also reduce vibrations transmitted from the vehicle to the occupant through the seat.

[0014] The S-spring 7 is equipped with a T-shaped hook 7a at its rear end and a J-shaped hook 7b at its front end. The T-shaped hook 7a is formed at the tip of the spring steel, which is curved to match the round cross-sectional shape of the rear member 3. By hooking this T-shaped hook 7a onto the rear member 3 from above, the rear end of the S-spring 7 is mounted so as to be able to swing vertically relative to the rear member 3. The J-shaped hook 7b is loosely hooked into a hole formed in the rear edge of the front pan 5. Therefore, the front end of the S-spring 7 is also mounted so as to be able to swing vertically relative to the front pan 5 (a type of cross member). When a load is applied to the S-spring 7 from above, the central part of the S-spring 7 deflects downward, but because both ends of the S-spring 7 are able to swing, the deflection [flexure] of the S-spring 7 is not hindered, and no unnecessary stress is applied to the ends of the S-spring 7.

[0015] A retention member 8 is attached between two adjacent S-springs 7. Each retention member 8 has a cylindrical portion at both ends, and both ends are attached to the S-springs 7 so that the S-springs 7 pass through these cylindrical portions. The retention member 8 prevents deformation that would cause adjacent S-springs 7 to separate from each other in the lateral direction of the vehicle when a load is applied from above. Such separation would prevent the S-springs 7 from properly supporting the load, so the retention member 8 prevents this separation. In this embodiment, the retention member 8 is made of resin and can flex appropriately, thereby improving seating comfort. In this embodiment, the two rear retention members 8 are also connected to each other (molded integrally). Note that the retention member 8 may also be made of a metal such as spring steel, similar to the S-springs 7. In this case, the metal retention member 8 is attached to the S-springs 7 with a metal clip or the like.

[0016] As mentioned above, (if the stiffness of the S-spring 7 is too low, it cannot properly support the occupant,) but lowering the stiffness of the S-spring 7 can improve ride comfort. However, we want to restrict the excessive downward displacement of the S-spring 7 in the case of load concentration with one knee on the ground as described above. For this reason, an excessive downward displacement restriction mechanism is provided in this embodiment. The excessive downward displacement restriction mechanism is realized by suspended tensile wires 10 suspended between the retaining member 8 and the rear member 3 or the front pan 5 (cross member).

[0017] The tension wire 10 may also be called a tension string. In this embodiment, four tension wires 10 are provided. The first is attached between the first retaining member 8, which is attached between the rear ends of two adjacent S-springs 7 on the right side, and the rear member 3. The second is attached between the second retaining member 8, which is attached between the rear ends of two adjacent S-springs 7 on the left side, and the rear member 3. The third is attached between the third retaining member 8, which is attached between the central parts of two adjacent S-springs 7 on the right side, and the front pan 5. The fourth is attached between the fourth retaining member 8, which is attached between the central parts of two adjacent S-springs 7 on the left side, and the front pan 5.

[0018] Each retaining member 8 is equipped with a metal holder 9 to which the end of the tension wire 10 is pivotably attached. Both ends of the holder 9 are curled into a bifurcated shape. The holder 9 is inserted into the retaining member 8 during the molding of the resin retaining member 8. Alternatively, the end of the tension wire 10 may be attached directly to the retaining member 8 without the provision of a member such as the holder 9.

[0019] As shown in Figure 2, the tension wire 10 of this embodiment is constructed by fixing mounting hooks 10b to both ends of an intermediate wire 10a by crimping. The mounting hooks 10b are T-shaped hooks. The head of the T-shaped hook is formed in a cylindrical shape. One end of the tension wire 10 (one of the mounting hooks 10b) is loosely fitted into a circular mounting hole formed in the rear member 3 or front pan 5. The head of the T-shaped hook prevents the mounting hook 10b from falling out of the mounting hole. Since the mounting hook 10b is loosely fitted into the mounting position (mounting hole) of the cross member such as the rear member 3 or front pan 5, one end of the tension wire 10 can swing perpendicularly with respect to the cross member.

[0020] The other end (the other mounting hook 10b) of the tension wire 10 is attached to the bifurcated and rounded end of the holder 9. The cylindrical head of the T-shaped hook is rotatable within the rounded end of the holder 9. Therefore, at the attachment position (holder 9) of the other end (the other mounting hook 10b) of the tension wire 10 to the holding member 8, the other end (the other mounting hook 10b) of the tension wire 10 can also swing vertically with respect to the holding member 8 (holder 9).

[0021] When an excessive vertical load as described above acts on the S-spring 7, the tension wire 10 is taut and a tension force acts. Until the tension wire 10 is taut, no tension force acts on the tension wire 10. That is, the tension wire 10 is a surplus length wire having a length longer than the distance between the attachment position (holder 9) to the holding member 8 at one end thereof and the attachment position (attachment hole) to one of the cross members (rear member 3 or front pan 5) at the other end thereof.

[0022] The tension wire 10 (surplus length wire) of the present embodiment is a flexible wire that easily curves due to its own weight or the like, and more specifically, is a metal stranded wire. That is, the intermediate wire 10a is formed of a metal stranded wire. Note that as the surplus length wire, it is also possible to use a solid wire such as a piano wire for the intermediate wire 10a. In this case, in a state where no downward load acts on the S-spring 7, the solid wire is not straight but flexural. Thus, a solid wire that is not a flexible wire can function as a surplus length wire. Also, a wire formed by connecting a number of elements such as a chain can function as a flexible wire. That is, although a chain is not a metal stranded wire, it can function as a flexible wire.

[0023] As described above, the vehicle of this embodiment is an electrified vehicle. As shown in FIG. 3, a battery pack 12 is mounted below a bottom frame 1. Inside the battery pack 12, a plurality of battery modules in which battery cells are housed, a battery control device, and the like are housed. Since the battery pack 12 is heavy, it is often arranged near the floor of the passenger compartment in order to lower the vehicle's center of gravity. Also, when increasing the mounting amount of the battery pack to obtain a sufficient cruising range, the height of the battery pack 12 reaches a position higher than the height of the floor panel of the occupant's foot space.

[0024] In this case, when the excessive vertical load described above acts on the S spring 7, there is a concern about contact between the S spring 7 and the battery pack 12. If such contact is repeated, damage to the battery pack 12 is a concern. Other types of device units that reach a position higher than the floor panel of the foot space may be mounted below the bottom frame 1 instead of the battery pack 12. The amplifier of the car audio and the air-conditioning duct may be such device units. When arranging a fuel tank below the floor panel under the seat by effectively using the space under the seat, the fuel tank can be such a device unit. However, since the fuel tank is mounted below the floor panel, a bulge that protrudes above the floor panel of the foot space is formed in the floor panel according to the fuel tank.

[0025] When a device unit such as the battery pack 12 is mounted below the bottom frame 1, the clearance between the bottom frame 1 and the device unit becomes small. Therefore, if the vertical load is too large, there is a risk that the S spring 7 and the device unit will come into contact even if the excessive downward displacement restricting mechanism described above is provided. Therefore, in this embodiment, as shown in FIG. 3, a bumper rubber 11A is attached to the lower surface of the holding member 8 in case contact occurs between the S spring 7 and the device unit.

[0026] The bump rubber 11A is attached to the holder 9 in the position where the holder 9 is insert-molded into the retaining member 8. Therefore, as shown in Figure 2, the bump rubber 11A is also attached to the holder 9. In this embodiment, the bump rubber 11A is attached to the retaining member 8 and the holder 9 with adhesive. The bump rubber 11A has a semi-cylindrical shape, and its curved surface is directed toward the device unit. This way, even if the bump rubber 11A and the device unit come into contact, the impact can be mitigated.

[0027] The bottom frame 1 is slidable on the seat rail 6 fixed to the floor panel, as described above. Therefore, depending on the sliding position of the bottom frame 1, the bump rubber 11A may be positioned in a location where it does not come into contact with the device unit. For this reason, in this embodiment, a bump rubber 11B is also attached to the upper surface of the battery pack 12, which is the device unit. The bump rubber 11B has a semi-cylindrical (or hemispherical) shape, similar to the bump rubber 11A described above, and is attached to the upper surface of the battery pack 12 with adhesive. The bump rubber 11B on the upper surface of the battery pack 12 prevents contact between the battery pack 12 and the S spring 7.

[0028] According to the vehicle seat frame of the above embodiment, the tension wire 10 suspended between the retaining member 8 and the cross member (rear member 3 or front pan 5) can suppress excessive downward displacement of the S-spring 7. Therefore, it is possible to lower the stiffness of the S-spring 7 to improve ride comfort when the occupant is seated, while also restricting excessive downward displacement of the S-spring 7 due to excessive vertical load. As a result, as described above, when an occupant kneels on the bottom unit to reach luggage on the seat on the other side, the downward displacement of the seat surface will not become excessively large, and it will not become difficult to reach the luggage.

[0029] Furthermore, even if the device unit described above is not mounted below the bottom frame 1, the clearance below the bottom frame 1 may be very small in sedans and sporty cars. In such cases, there is a concern that the S-spring 7 may come into contact with the floor panel. If such contact occurs repeatedly, there is a concern that the floor panel or the S-spring 7 may be damaged. According to the vehicle seat frame of the above embodiment, when the clearance is small and no device unit such as the battery pack 12 is mounted, contact between the floor panel and the S-spring 7 can be restricted.

[0030] In the seat frame of the above embodiment, the tension wire 10 is an excess wire having a length longer than the distance between the attachment position of one end to the retaining member 8 and the attachment position of the other end to one of the cross members (rear member 3 or front pan 5). That is, when no vertical load is acting on the bottom frame 1, the excess wire is sagging or hanging down, and substantially no tension acts on the excess wire. Tension acts on the excess wire only when the downward displacement of the S spring 7 becomes excessive. Therefore, it is possible to suitably achieve both improved ride comfort and restriction of excessive downward displacement.

[0031] In the above embodiment, specifically, the excess wire (tension wire 10) is a flexible wire. If the flexible wire bends easily due to its own weight, it will not sag when no tension is applied and will not exert stress on the attachment points at both ends. In addition, the installation of the flexible wire as the tension wire 10 is easy when assembling the bottom frame 1.

[0032] In the above embodiment, more specifically, the flexible wire (tensile wire 10, excess wire) is a stranded metal wire. The stranded metal wire, as a flexible wire, does not lose its function even if one of the many strands constituting the strand breaks. Furthermore, because the stranded metal wire is made up of many strands twisted together, even if tension is applied shock-likely, the stranded metal wire can absorb the shock tension while mitigating it through its own minute elongation.

[0033] In the seat frame of the above embodiment, a device unit (such as a battery pack 12) having a height greater than the height of the floor panel in the occupant's foot space is mounted below the bottom frame, and the bump rubber 11A is attached to the lower surface of the retaining member 8. Therefore, even if the tension wire 10 restricts the excessive downward displacement described above, there is a risk of contact between the S spring 7 and the device unit. However, even if the S spring 7 and the device unit come into contact, the bump rubber 11A can prevent damage to the device unit.

[0034] In the seat frame of the above embodiment, the tension wire 10 is pivotably mounted at the mounting position (holder 9) of one end of the tension wire 10 to the holding member 8. Similarly, the tension wire 10 is pivotably mounted at the mounting position (mounting hole) of the other end of the tension wire 10 to one of the cross members (rear member 3 or front pan 5). Therefore, even if tension is applied to the tension wire 10, which was previously sagging or hanging down, and it becomes taut, the end of the tension wire 10 pivots, so stress concentration does not occur at the mounting position of the tension wire 10. As a result, the breakage of the tension wire 10 (intermediate wire 10a) is prevented.

[0035] The sheet frame of the present invention is not limited to the sheet frame of the above embodiment. As stated above, the tension wire (excess wire) 10 may be a non-flexible solid wire (piano wire) or a non-flexible metal stranded wire, which is attached in a slack state between the holding member and the cross member. As stated above, the end of the tension wire (excess wire, flexible wire, metal stranded wire) 10 may be attached directly to the holding member 8 without going through the holder 9.

[0036] In the above embodiment, the metal holder 9 is insert-molded into the resin retaining member 8, but the metal holder 9 may be attached to the metal retaining member by rivets. Furthermore, as mentioned above, the holder 9 may not be provided at all.

[0037] In the above embodiment, tension wires (excess wire, flexible wire, metal stranded wire) 10 are positioned between the two S-springs 7 on the right and left sides, respectively. However, additional tension wires (excess wire, flexible wire, metal stranded wire) 10 may be provided between the retaining member 8 connecting the two adjacent S-springs 7 in the center and the cross member (rear member 3 or front pan 5).

[0038] A resin coating may be formed on the surface of the tensile wire (excess wire, flexible wire, metal stranded wire) 10 described above. The resin coating prevents noise generation due to contact with surrounding parts or the inner edge of the mounting hole.

[0039] Furthermore, in the above embodiment, the tension wire (excess wire, flexible wire, metal stranded wire) 10 is positioned between the two holding members 8 (holder 9) on the right (or left) side. No A tension wire (excess wire, flexible wire, metal stranded wire) 10 may also be provided between these two holding members 8 (holder 9).

[0040] In this embodiment, the S-spring 7 is stretched in the front-rear direction between the rear member 3 and the front member 4 (i.e., between the two cross members), but it may also be stretched between the pair of side arms 2, i.e., in the left-right direction. In this case, one end of the tension wire (excess wire, flexible wire, metal stranded wire) 10 is attached to the holding member 8, and the other end is attached to one of the two side arms 2.

[0041] Furthermore, the seat frame in the above embodiment was a seat frame for a single, slidable seat. However, the seat frame of the present invention can also be applied to seat frames for non-slidable multi-seat seats, such as rear seats. [Explanation of symbols]

[0042] 1. Bottom frame 2 Sidearms 3. Rear Member (Cross Member) 4. Front Member (Cross Member) 5. Front pan (cross member) 7 S-spring (serpentine spring) 8 Retaining member 10. Tensile wire (excess wire, flexible wire, metal stranded wire) 11A Bump Stop 12. Battery pack (device unit)

Claims

1. A seat frame for a vehicle, A pair of side arms of the bottom frame that support the occupant's buttocks and thighs from below, A pair of cross members connecting the front and rear portions of the side arm, At least two S-springs stretched between the cross members or between the side arms, Between the S-springs, a retaining member attached to the S-spring, A vehicle seat frame comprising a tension wire suspended between the retaining member and one of the cross members, or between the retaining member and one of the side arms.

2. A vehicle seat frame according to claim 1, A seat frame for a vehicle, wherein the tension wire is an excess wire having a length longer than the distance between the attachment position of one end of the tension wire to the holding member and the attachment position of the other end of the tension wire to one of the cross members or one of the side arms.

3. A vehicle seat frame according to claim 2, A seat frame for a vehicle, wherein the excess wire is a flexible wire.

4. A vehicle seat frame according to claim 3, A vehicle seat frame in which the aforementioned flexible wire is a stranded metal wire.

5. A vehicle seat frame according to any one of claims 1 to 4, A device unit mounted below the bottom frame, having a height greater than the height of the floor panel of the occupant's foot space, A vehicle seat frame further comprising a bump rubber attached to the lower surface of the aforementioned retaining member.

6. A vehicle seat frame according to any one of claims 1 to 4, At the attachment point of one end of the tension wire to the holding member, the tension wire is swingably mounted. A vehicle seat frame in which the tension wire is pivotably mounted at the attachment point of the other end of the tension wire to one of the cross members or one of the side arms.