The present invention relates to a door handle device for a vehicle.
FIG. 4 of Patent Document 1 discloses a door handle device which prevents an impact noise in a stroke end position of an operating member connected to a handle base. According to the structure of Patent Document 1, in the handle device, a locking/unlocking operation knob (operating member) is rotatably connected to a main body (handle base) and an operation of the operating member is transmitted to a door lock device via a rod.
To a holder member attached to the operating member in order to connect the rod to the operating member, a buffering part is integrally formed. The buffering part abuts against a stopper part provided in the handle base when the operating member is moved to the stroke end position. Accordingly, an impact noise is prevented from occurring when the operating member is moved to the stroke end position.
However, in the structure disclosed in Patent Document 1, the holder member is formed from a soft material in order to give a buffering effect and a large impact load is repeatedly applied to the holder member. Further, the holder member is normally subjected to a static load in the stroke end position. Accordingly, there is a problem that the elasticity ability of the holder member is lost over time and thus the buffering effect of the holder member is disappeared.
Embodiments of the present invention provide a vehicle door handle device which is capable of preventing an occurrence of buffering noise over a long period of time with a simple structure.
According to an embodiment of the present invention, a vehicle door handle device may include: a handle base 1; an operating member 2 which is pivotally supported to the handle base 1, a door lock device 4 being operated via an operating force transmitting part 3 by a rotation of the operating member 2 from an initial position to an operating position; a connection-retaining member 6 which is formed from a synthetic resin material softer than the operating member 2, is attached to the is operating member 2, and in its attached state, retains a connection of one end of the operating force transmitting part 3 to the operating member 2 and abuts against a stopper wall surface 5 of the handle base 1 so as to define an operating stroke end position of the operating member 2; and a second stopper 7 which is provided on the operating member 2 and abuts against the handle base 1 in an over-stroke position beyond the operating stroke end position defined by the connection-retaining member 6 so as to restrict a deformation of the connection-retaining member 6 by an over-stroke.
Hereinafter, an exemplary embodiment will be described with reference to the drawings. The exemplary embodiment is illustrative and not intended to limit the present invention. It should be noted that all features and combinations of the features described in the exemplary embodiment are not necessarily essential to the invention.
A cable device (an operating force transmitting part 3) in which an inner cable 10 is slidably inserted into an outer case is connected to the operating handle 14 and the locking lever 2. As will be described later, when the operating handle 14 is operated to rotate from an initial position to an operating position, locking of a door lock device 4 is released and thus an opening operation of a door body can be performed. As the locking lever 2 is operated to rotate from an unlocked position to a locked position, a cancellation part 4a is operated to cancel the operation form the operating handle 14. Accordingly, the opening operation of the door body by the operating handle 14 becomes impossible.
The operating handle 14 includes a hand-grip part 14a at one end and a wire connection hole 14b at the other end with the center of rotation being therebetween. The operating handle is operated to rotate around the pivot shaft 16 between an initial position indicated by a solid line in
Mounting of the cable device 3 corresponding to the operating handle 14 is carried out by locking a case end 9a formed on an end of the outer case 9 with a cable locking part 1a formed on the handle base 1 and fitting a spherical cable end 10a fixed to a leading end of the inner cable 10 into the wire connection hole 14b of the operating handle 14.
Meanwhile, the locking lever 2 is formed by injection molding a synthetic resin material. The locking lever 2 includes an operation protruding part 2a at an external exposed surface when being mounted on the handle base 1 and a cable insertion hole 12 at an opposite end with the pivot shaft 16 being therebetween.
As shown in
In order to prevent detachment of the inner cable 10 from the cable insertion hole 12, the connection-retaining member 6 is connected to the locking lever 2. The connection-retaining member 6 is formed from a synthetic resin material softer than the locking lever 2. The connection-retaining member 6 is mounted to idle freely around the pivot shaft 16 by inserting the pivot shaft 16 to pivotally support the locking lever 2 into a shaft insertion hole 6a.
As shown in
Further, as shown in
Further, the connection-retaining member 6 is provided with two stopper ridges 8 in corresponding to the locked position and the unlocked position. As shown in
As the locking lever 2 is operated to rotate toward the unlocked position from this state, an unlock-side stopper ridge 8B abuts against an unlock-side stopper wall surface 5B of the handle base 1 to define an unlock-side stroke end, as shown in
Further, the locking lever 2 is provided with a second stopper 7. In the exemplary embodiment, a lock-side second stopper 7A abuts against the stopper protrusion 1b protruding from the handle base 1, as shown in
When load in an over-stroke direction is further applied after the locking lever 2 reaches the stroke end position by abutting against the stopper ridge 8 of the connection-retaining member 6, that is, an operating force in a direction of the locked position is further applied after an operation toward the locked position is ended, or when an operating force in a direction of the unlocked position is further applied after an operation toward the unlocked position is ended and thus the stopper ridge 8 is deflected by the load in a pushing direction and a protruding state thereof is released, these second stoppers 7 are operated to prevent further deflection of the connection-retaining member 6.
Accordingly, in the exemplary embodiment, the stopper ridge 8 of the connection-retaining member 6 first abuts against the stopper wall surface 5 of the handle base 1 when the locking lever 2 is electrically or manually operated from one position to the other position, that is, from the locked position to the unlocked position or from the unlocked position to the locked position. Even when the movement from one position to the other position is carried out by a large driving force as in an electric operation, an impact noise is prevented from occurring since a soft stopper ridge 8 is first collided with and brought into contact with the stopper wall surface of the handle base.
In this state, when an operating force in the same direction as the movement is further applied to the locking lever 2 as shown in
As described above, according to the exemplary embodiment, the door handle device may include the operating member 2 (the locking lever 2) pivotally supported to the handle base 1, the second stopper 7 formed on the operating member 2 and the connection-retaining member 6 formed from a synthetic resin material softer than the operating member 2.
The operating member 2 is able to rotate between the initial position and the operating position. When the operating member is operated to rotate from the initial position to the operating position, the door lock device 4 is operated via the operating force transmitting part 3 connected to the operating member 2. The operating member 2 may be driven by a manual operation or an electric drive means such as a motor. Further, either the manual operation or the electric drive means can be selectively used depending on the situation. Further, as the operating force transmitting part 3, the cable device 3 in which the inner cable 10 is slidably inserted into the outer case 9, or a rod or the like may be used.
The connection-retaining member 6 may be a so-called known rod holder or the like which is intended to retain the connected state of the operating member 2 and the operating force transmitting part 3 in a state where the rod holder is mounted to the operating member 2 and used in a state of being connected to one end of the operating force transmitting part 3 by a suitable connecting means. Alternatively, the connection-retaining member 6 may indirectly restrict the movement direction and the movement amount of the operating force transmitting part 3 to prevent the detachment of the operating force transmitting part from the operating member 2, instead of being directly connected to the operating force transmitting part 3.
In addition, the connection-retaining member 6 also serves as a stroke restricting member. The stroke end position of the operating member 2 is defined by abutting the connection-retaining member 6 against the stopper wall surface 5 formed on the handle base 1. Since the soft connection-retaining member 6 is used to define the stroke end, an impact noise is prevented from occurring in the stroke end position.
The second stopper 7 abuts against the handle base 1 in an over-stroke position from the stroke end position defined by the connection-retaining member 6 to restrict the deformation amount of the connection-retaining member 6 due to the over-stroke. As a result, it is possible to prevent performance degradation of the connection-retaining member 6 due to decrease in elasticity ability.
Further, the connection-retaining member 6 may be mounted to the rotation shaft of the operating member 2. With this configuration, it is possible to reliably prevent the connection-retaining member 6 from being detached from the operating member 2.
Furthermore, the door handle device may be configured as a door-inside-handle device and the operating handle 14 may be connected to the handle base 14.
According to the structure of the exemplary embodiment, since the deflection of the connection-retaining member is limited by the second stopper, it is possible to prevent the occurrence of buffering noise over a long period of time.
Number | Date | Country | Kind |
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2010-232703 | Oct 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2011/073728 | 10/14/2011 | WO | 00 | 3/8/2013 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2012/050212 | 4/19/2012 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3606428 | Erck et al. | Sep 1971 | A |
4374597 | Mochida | Feb 1983 | A |
4580822 | Fukumoto | Apr 1986 | A |
4778207 | Gergoe | Oct 1988 | A |
4838590 | Isomura | Jun 1989 | A |
4993763 | Tanimoto et al. | Feb 1991 | A |
5011202 | Kato et al. | Apr 1991 | A |
5129694 | Tanimoto et al. | Jul 1992 | A |
5794994 | Miyagawa et al. | Aug 1998 | A |
5895081 | Tanimoto et al. | Apr 1999 | A |
6363577 | Spitzley | Apr 2002 | B1 |
6964438 | Koike et al. | Nov 2005 | B2 |
6976717 | Barr et al. | Dec 2005 | B2 |
6988752 | Belchine et al. | Jan 2006 | B2 |
8408611 | Takagai et al. | Apr 2013 | B2 |
8727401 | Tanaka et al. | May 2014 | B2 |
20080073919 | Soda | Mar 2008 | A1 |
20080105011 | Machida et al. | May 2008 | A1 |
20090267359 | Takayanagi et al. | Oct 2009 | A1 |
Number | Date | Country |
---|---|---|
Y-201401069 | Feb 2010 | CN |
6-79975 | Nov 1994 | JP |
A-H11-107606 | Apr 1999 | JP |
A-2003-193706 | Jul 2003 | JP |
2007009479 | Jan 2007 | JP |
2009-133136 | Jun 2009 | JP |
Number | Date | Country | |
---|---|---|---|
20130168979 A1 | Jul 2013 | US |