This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2019-012732 filed on Jan. 29, 2019, the contents of which are incorporated herein by reference.
The present invention relates to a sliding door structure and a vehicle.
Japanese Patent No. 5238266 has suggested a vehicle with a sliding door structure.
In the conventional technique, the space for providing the sliding door structure has not necessarily been small sufficiently.
It is an object of the present invention to provide a sliding door structure and a vehicle that can achieve space saving.
A sliding door structure according to one aspect of the present invention includes: a door configured to cover an opening formed at a side part of a vehicle body; a lower rail disposed below the opening, including a first guide rail and a second guide rail formed along the first guide rail, and configured to support the door slidably in a front-rear direction of the vehicle body; a rotary part disposed at a lower part of the door and configured to rotate with respect to the door; a pair of first rollers holding the first guide rail therebetween; a pair of second rollers holding the second guide rail therebetween; a first roller support part provided to the rotary part and configured to rotatably support the pair of first rollers and rotate with respect to the rotary part; and a second roller support part provided to the rotary part and configured to rotatably support the pair of second rollers and rotate with respect to the rotary part.
A vehicle according to another aspect of the present invention includes the sliding door structure as described above.
According to the present invention, the sliding door structure and the vehicle that can achieve space saving can be provided.
The above and other objects, features, and advantages of the present invention will become more apparent from the following description when taken in conjunction with the accompanying drawings in which a preferred embodiment of the present invention is shown by way of illustrative example.
A preferred embodiment of a sliding door structure and a vehicle according to the present invention is hereinafter described in detail with reference to the attached drawings.
[Embodiment]
The sliding door structure and the vehicle according to the embodiment are described with reference to the drawings.
As illustrated in
At the side part of the vehicle body 13, a sliding door structure 10 is provided. Although the sliding door structure 10 is provided on the left side of the vehicle body 13 here, the present invention is not limited to this example. The sliding door structure 10 includes the sliding door (door) 16 that can cover the opening 14. The sliding door 16 is formed to have a rectangular shape as a whole.
As illustrated in
The upper support part 18 includes an upper guide part (guide part) 22 provided at the upper part of the sliding door 16, and an upper rail (upper sliding rail) 24 that can guide the upper guide part 22. The upper rail 24 is provided above the opening 14. The upper rail 24 slidably supports the sliding door 16 in a front-rear direction of the vehicle body 13.
The center support part includes a center guide part (not illustrated) provided at the center part of the sliding door 16, and a center rail (center sliding rail) 25 (see
The lower support part 20 includes a lower guide part (guide part) 26 provided at the lower part of the sliding door 16, and a lower rail (lower sliding rail) 28 (see
As illustrated in
As illustrated in
The upright part 28B is formed along the upright part 28A. An upper part of the upright part 28A and an upper part of the upright part 28B are connected to each other by the top part 28C. The flange part 28D is connected to a lower part of the upright part 28A. The flange part 28E is connected to a lower part of the upright part 28B. The flange part 28D protrudes in a direction away from the upright part 28B. The flange part 28E protrudes in a direction of being separated from the upright part 28A. A normal direction of a main plane of the top part 28C, a normal direction of a main plane of the flange part 28D, and a normal direction of a main plane of the flange part 28E correspond to a vertical direction. A normal direction of the upright part 28A and a normal direction of the upright part 28B correspond to a horizontal direction. The lower rail 28 as described above is formed by, for example, press molding. On the top part 28C, a member 31 is attached. The member 31 is coupled to a front end part of the sliding door 16 when the sliding door 16 is closed.
The upright part 28A forms a first guide rail 29A. The upright part 28B forms a second guide rail 29B. The second guide rail 29B is formed along the first guide rail 29A. The distance between the first guide rail 29A and the second guide rail 29B in the vehicle width direction (left-right direction of vehicle body 13) is different depending on the position in a longitudinal direction of the lower rail 28 (front-rear direction of vehicle body 13).
As illustrated in
As illustrated in
On an upper surface side of the rotary part 32, a first roller support part 38 is provided. The first roller support part 38 is coupled to the rotary part 32 through a coupling member 38A. The rotary part 32 rotatably supports the first roller support part 38. The first roller support part 38 rotatably supports the pair of first rollers 34A and 34B.
On the upper surface side of the rotary part 32, a second roller support part 40 is further provided. The second roller support part 40 is coupled to the rotary part 32 through a coupling member 40A. The rotary part 32 rotatably supports the second roller support part 40. The second roller support part 40 rotatably supports the pair of second rollers 36A and 36B.
On a lower surface side of the rotary part 32, a rolling roller (ball roller) 37 is provided. At a lower part of the rolling roller 37, a rolling body 39 (see
As described above, the distance between the first guide rail 29A and the second guide rail 29B in the vehicle width direction is different depending on the position in the longitudinal direction of the lower rail 28 (front-rear direction of vehicle body 13). Therefore, the rotary part 32 rotates as the sliding door 16 is opened. That is to say, the rotary part 32 rotates as the position of the sliding door 16 is changed in the front-rear direction of the vehicle body 13. When the rotary part 32 rotates as the sliding door 16 is opened, the distance between the rotation shaft 32A and the center line of the vehicle body 13 in the longitudinal direction is increased. That is to say, when the rotary part 32 rotates as the sliding door 16 is opened, the distance between the sliding door 16 and the center line of the vehicle body 13 in the longitudinal direction is increased.
As illustrated in
As illustrated in
The rotary part 32 further includes the lock mechanism 46 for locking the stopper pin 42 positioned in the concave part 44. As illustrated in
Before the lock member 47 is brought into contact with the stopper pin 42, the second arm 47B is housed in the rotary part 32 and the first arm 47A protrudes out of the rotary part 32 as illustrated in
As the sliding door 16 is opened, the first arm 47A is brought into contact with the stopper pin 42, and thus, the lock member 47 rotates with respect to the rotary part 32 as illustrated in
When the rotation of the lock member 47 has reached a predetermined level, the lock mechanism 46 starts to operate. As illustrated in
As illustrated in
16B is a perspective view illustrating a part of the vehicle according to the comparative example.
As illustrated in
Thus, in the present embodiment, the rotary part 32 includes the pair of first rollers 34A and 34B holding the first guide rail 29A therebetween and the pair of second rollers 36A and 36B holding the second guide rail 29B therebetween. The first rollers 34A and 34B are supported by the first roller support part 38 that is rotatable with respect to the rotary part 32. The second rollers 36A and 36B are supported by the second roller support part 40 that is rotatable with respect to the rotary part 32. The distance between the first guide rail 29A and the second guide rail 29B in the vehicle width direction is different depending on the position in the front-rear direction of the vehicle body 13. By this structure, in the present embodiment, as the sliding door 16 is opened, the rotary part 32 rotates and the distance from the center line of the vehicle body 13 in the longitudinal direction to the sliding door 16 changes. According to the present embodiment, the lower rail 28 does not need to be curved largely in the vehicle width direction; therefore, the space can be saved. Since the sliding door structure 10 can achieve space saving, the space for housing the battery case 48 can be secured sufficiently and the cruising distance can be improved according to the present embodiment.
The preferred embodiment of the present invention has been described above; however, the present invention is not limited to the above embodiment and various modifications are possible without departing from the concept of the present invention.
The summary of the aforementioned embodiment is described below.
The sliding door structure (10) includes: the door (16) configured to cover the opening (14) formed at the side part of the vehicle body (13); the lower rail (28) disposed below the opening, including the first guide rail (29A) and the second guide rail (29B) formed along the first guide rail, and configured to support the door slidably in the front-rear direction of the vehicle body; the rotary part (32) disposed at the lower part of the door and configured to rotate with respect to the door; the pair of first rollers (34A, 34B) holding the first guide rail therebetween; the pair of second rollers (36A, 36B) holding the second guide rail therebetween; the first roller support part (38) provided to the rotary part and configured to rotatably support the pair of first rollers and rotate with respect to the rotary part; and the second roller support part (40) provided to the rotary part and configured to rotatably support the pair of second rollers and rotate with respect to the rotary part. By this structure, as the door is opened, the rotary part rotates and the distance from the center line of the vehicle body in the longitudinal direction to the sliding door changes. By this structure, the lower rail does not need to be curved largely in the vehicle width direction; therefore, the space can be saved. Since the sliding door structure can achieve space saving, the space for housing the battery case can be secured sufficiently and the cruising distance can be improved by this structure.
The rotary part may include the concave part (44) that the stopper pin (42) provided to the vehicle body enters when the door is fully opened, and the lock mechanism (46) configured to lock the stopper pin having entered the concave part. By this structure, the relative positional relation between the rotary part and the stopper pin can be reliably restricted, and thus, the vibration of the door when the door is fully opened can be reliably suppressed.
The distance between the first guide rail and the second guide rail in the vehicle width direction may be different depending on the position in the longitudinal direction of the lower rail. By this structure, the rotary part can be rotated sufficiently without curving the lower rail largely in the vehicle width direction; therefore, the space can be saved.
The lower rail may be disposed outside the side sill (30) provided to the vehicle body. By this structure, since the space for housing the battery case can be secured sufficiently, the battery capacity can be improved.
The sliding door structure may further include the upper rail (24) disposed above the opening and configured to support the door slidably in the front-rear direction of the vehicle body.
The vehicle (12) includes the sliding door structure as described above.
Number | Date | Country | Kind |
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2019-012732 | Jan 2019 | JP | national |