The present invention relates to a technical field of a seatbelt retractor which retracts a seatbelt so as to be capable of retracting and withdrawing and, more specifically, to a seatbelt retractor having an energy absorbing mechanism (hereinafter, referred to as EA mechanism) which absorbs and alleviates energy of an occupant by limiting a load applied to a seatbelt by an action of an energy absorbing member when preventing withdrawal of the seatbelt in case of emergency where, for example, a large deceleration acts on the vehicle at the time of collision when the seatbelt is fastened, and a seatbelt apparatus having the same.
A seatbelt apparatus installed in a vehicle such as an automobile in the related art constrains an occupant by the seatbelt in case of emergency.
In the related art, in the seatbelt retractor 3 used in the seatbelt apparatus 1, a torsion bar as the EA mechanism is provided to absorb and alleviate an inertia energy of the occupant by limiting a load applied to a seatbelt in case of emergency with the seatbelt fastened. In addition, in order to obtain a limit load effectively, various types of the seatbelt retractor 3 having an additional EA mechanism in addition to the torsion bar and being configured to perform an EA operation by organically combining the energy absorption by the torsion bar and the energy absorption of the additional EA mechanism have been developed.
As the seatbelt retractor 3 as described above, the seatbelt retractor 3 which performs the EA operation by fitting an elongated energy absorbing pin (or an energy absorbing wire) into an axial hole of a spool of the additional EA mechanism and pulling the energy absorbing pin while causing the same to assume bending deformation in case of emergency is known (for example, Japanese Unexamined Patent Application Publications No. JP-A-2001-301569 (Patent Document 1), and No. JP-A-2006-205821 (Patent Document 2)).
a) is a drawing schematically showing an example of a conventional-type seatbelt retractor having the energy absorbing pin, and
The locking mechanism 11 includes a pawl 15, a locking base 16 (corresponding to a locking member in the present invention) configured to rotatably support the pawl 1, and a lock gear 17. The locking base 16 is connected to one end side (right end side in
The other end side (left end side portion with respect to the axial center in
Then, by the spring force of the spring mechanism 13, the spool 9 is urged in the direction of belt retraction constantly via the torsion bar 12.
Provided between the spool 9 and the locking base 16 is an elongated energy absorbing pin 19. As shown in
In the seatbelt retractor 3 in the related art configured in this manner, the seatbelt 4 is completely retracted by an urging force of the spring mechanism 13 when the seatbelt is not fastened. Then, when the seatbelt 4 is withdrawn at a normal speed for fastening, the spool 9 rotates in the direction of withdrawal of the belt, and the seatbelt 4 is smoothly withdrawn. After the tongue 6 provided on the seatbelt 4 slidably is inserted in and engaged with the buckle 7 fixed to the vehicle body, the seatbelt 4 which is withdrawn excessively is retracted by the spool 9 by the urging force of the spring mechanism 13, and the seatbelt 4 is fitted to the extent that the occupant does not feel too much oppression.
When a vehicle deceleration significantly larger than that in the normal state is generated in the vehicle in case of emergency, the deceleration sensing mechanism 10 is activated by the large vehicle deceleration, and the rotation of the lock gear 17 in the direction of withdrawal of the belt is prevented. Then, the rotation of the pawl 15 is controlled by a cam control hole of the lock gear 17, engages the internal tooth 18 of the side wall 8a of the frame 8. Accordingly, while the rotation of the locking base 16 in the direction of withdrawal of the belt is prevented, the spool 9 continuously tries to rotate in the direction of withdrawal of the belt, so that the torsion bar 12 is twisted. Subsequently, the spool 9 relatively rotates with respect to the locking base 16 in the direction of withdrawal of the belt while the spool 9 twists the torsion bar 12. A load applied to the seatbelt 4 at this time is limited by the torsional load of the torsion bar 12, and an impact applied to the occupant is absorbed and alleviated.
By the relative rotation of the spool 9 with respect to the locking base 16, a portion 19a1 of the shaft portion 19a of the energy absorbing pin 19 fitted into the axial hole 9a of the spool 9 is pulled out from the axial hole 9a. At this time, the portion 19a1 of the shaft portion 19a is pulled out while being bent and deformed in a circumferential direction between the spool 9 and the locking base 16. In addition, when the energy absorbing pin 19 receives a bending load, the locking base 16 applies a force to the engaging surface 19b1 of the head portion 19b of the energy absorbing pin 19 so that the head portion 19b is bent in the circumferential direction about an axial line. Then, the load applied to the seatbelt 4 is limited also by a pull-out and bending load of the energy absorbing pin 19 including a bending deformation force of the portion 19a1 of the shaft portion 19a, a frictional force between the spool 9 and the portion 19a1 of the shaft portion 19a, and a bending force at the head portion 19b.
The limit load at this moment is equal to a total load of the torsional load of the torsion bar 12 and the pull-out and bending load including a bending load and the friction load of the energy absorbing pin 19 as shown in
Incidentally, in the seatbelt retractor 3 using the energy absorbing pin 19, relatively light aluminum material is generally used for the spool 9 for smoothening the retracting and withdrawal of the seatbelt 4 and reducing the weight, and hard material such as stainless steel which is harder than the spool 9 is used for the energy absorbing pin 19 for achieving a desired energy absorption.
Therefore, when the energy absorbing pin 19 is gradually pulled out from the axial hole 9a of the spool 9 in case of emergency, it is possible that burning occurs between the spool 9 and the energy absorbing pin 19, and aluminum of the spool 9 is ground by the energy absorbing pin 19. In this case, when aluminum is ground, a limit load rising portion Fp is generated as shown in
Considering a mechanism of occurrence of burning between the spool 9 and the energy absorbing pin 19, as shown in
As a consequence, the burning occurs easily between the spool 9 and the energy absorbing pin 19 and the spool 9 is ground, so that the limit load applied by the energy absorbing pin 19 rises in the vicinity of the termination of the pulling-out of the energy absorbing pin 19. Then, as shown in
Then, the limit load rising portion Fp generated by the energy absorbing pin 19 makes it difficult to obtain a stable limit load.
In view of such circumstances, it is an object of the present invention to provide a seatbelt retractor which effectively obtains a further stable limit load by the energy absorbing pin, and a seatbelt apparatus having the same.
Further objects and advantages of the invention will be apparent from the following description of the invention.
In order to solve the above-described problem, a seatbelt retractor according to a first aspect of the present invention comprises a spool configured to retract a seatbelt; a locking mechanism having a locking member configured to rotate together with the spool in a normal state, and to be prevented from rotating in the direction of withdrawal of the seatbelt, thereby causing a relative rotation with respect to the spool in case of emergency; and an energy absorbing pin provided on the spool and the locking member for limiting a load applied on the seatbelt at the time of relative rotation between the spool and the locking member, wherein a lubricating coating agent is applied on surfaces of the energy absorbing pin.
Also, the seatbelt retractor according to a second aspect of the present invention is such that the energy absorbing pin includes a shaft portion to be fitted into a hole of the spool and a head portion to be engaged with the locking member, and that at least part of an outer peripheral surface of the shaft portion to be fitted into the hole of the spool is applied with the lubricating coating agent.
Furthermore, a seatbelt retractor according to a third aspect of the present invention comprises a spool configured to retract a seatbelt; a locking mechanism having a locking member configured to rotate together with the spool in a normal state, and to be prevented from rotating in the direction of withdrawal of the seatbelt, thereby causing a relative rotation with respect to the spool in case of emergency; and an energy absorbing pin provided on the spool and the locking member and configured to limit a load applied on the seatbelt at the time of relative rotation between the spool and the locking member, wherein the energy absorbing pin includes a shaft portion to be fitted into a hole of the spool and a head portion to be engaged with the locking member, and a lubricant coating layer is formed on at least one of an inner peripheral surface of the hole of the spool and part of an outer peripheral surface of the shaft portion fitted into the hole of the spool.
Furthermore, in the seatbelt retractor according to a fourth aspect of the present invention, an engaging surface of the head portion of the energy absorbing pin which engages with the locking member has a curved surface.
Furthermore, the seatbelt retractor according to the present invention is such that a rotation of the spool is transmitted to the locking member via a torsion bar.
In contrast, a seatbelt apparatus according to the present invention comprises a seatbelt retractor configured to retract a seatbelt, a tongue supported by the seatbelt withdrawn from the seatbelt retractor so as to be capable of sliding thereon, and a buckle configured to allow the tongue to be detachably engaged with. The seatbelt apparatus is configured to constrain an occupant by preventing withdrawal of the seatbelt by the seatbelt retractor in case of emergency, and is a seatbelt retractor according to any one of the first to fourth aspects.
According to the seatbelt retractor in the present invention configured as described above, by forming the lubricant coating layer on at least one of the surface of the energy absorbing pin or the inner peripheral surface of the hole of the spool which allows insertion of the energy absorbing pin, the burning between the spool and the energy absorbing pin is suppressed when the energy absorbing pin is pulled out in case of emergency, so that the spool is prevented from being ground. Therefore, generation of the limit load rising portion by the energy absorbing pin is substantially prevented, and the limit load by the energy absorbing pin is kept substantially constant. Accordingly, a further stable limit load can be obtained effectively and easily. In addition, since it requires only the lubricating coating agent on the surface of the energy absorbing pin, upsizing of the spool can be prevented. In this manner, the seatbelt retractor which can be formed compactly while obtaining the stable limit load can be obtained.
Also, since the lubricating coating agent is applied to only the necessary part of the energy absorbing pin, the lubricating coating agent can be saved.
Furthermore, since an engaging surface between the head portion of the energy absorbing pin and the spool is formed into a curved surface, the head portion is allowed to incline (rotate) easily. Accordingly, the limit load rising portion is barely generated in the early stage of the pulling-out of the energy absorbing pin, so that overshooting of the limit load in the early stage of the EA operation is suppressed. Consequently, a substantially constant limit load is obtained from the early stage of the EA operation.
Therefore, according to the seatbelt retractor in the present invention, the limit load generated by the energy absorbing pin can be kept substantially constant from the early stage of the pulling-out until the termination of the pulling-out of the energy absorbing pin when the EA is in operation. In this manner, the limit load generated by the energy absorbing pin can be made further stable in a simple structure.
Furthermore, by combining the energy absorption by the energy absorbing pin, the energy absorption by the torsion bar, and the energy absorption by the EA mechanism organically, a larger number of types of EA features can be obtained.
Furthermore, according to the seatbelt apparatus in the present invention, the seatbelt retractor can be formed more compactly, so that a larger space is secured in a cabin. Therefore, according to the seatbelt retractor in the present invention, a demand for the space in the cabin to be maximized without upsizing the vehicle as a whole, which has been demanded in recent years, can be satisfied sufficiently and flexibly.
a) is a drawing partly and schematically showing an example of an embodiment of a seatbelt retractor according to the present invention,
a) is a drawing showing a test apparatus for confirming the effect of the seatbelt retractor according to the present invention, and
a) and 5(b) show a behavior of the energy absorbing pin in the example shown in
a) is a cross-sectional view schematically showing an example of a conventional-type seatbelt retractor having the energy absorbing pin,
a) to 9(c) are drawings for explaining a mechanism of occurrence of burning between a spool and the energy absorbing pin in the conventional-type seatbelt apparatus.
Referring now to the drawings, preferred embodiments for carrying out the present invention will be described.
a) is a drawing partly and schematically showing an example of an embodiment of a seatbelt retractor according to the present invention,
A seatbelt retractor 3 in this example is employed in a seatbelt apparatus shown in
The energy absorbing pin 19 in this example is formed into the substantially same shape as the one shown in
In this manner, according to the seatbelt retractor 3 in this example, by forming the lubricant coating layer 19e on the surface of the energy absorbing pin 19, burning between the spool 9 and the energy absorbing pin 19 is restrained when the energy absorbing pin 19 is pulled out in case of emergency, so that the spool 9 is restrained from being ground. Therefore, as shown in
Furthermore, by combining energy absorption by the energy absorbing pin 19, energy absorption by the torsion bar 12, and energy absorption by the EA mechanism organically, a larger number of types of EA features can be obtained.
Other configurations of the seatbelt retractor 3 and other advantages in this example are the same as those in the example in the related art as described above.
A test for confirming the fact that the limit load rising portion Fp generated by the energy absorbing pin 19 can be prevented is conducted using the seatbelt retractor 3 in this example.
A test apparatus shown in
The test was conducted by pulling the seatbelt at an elastic stress rate V of 10 m/sec by the high-speed tension tester in a state in which the seatbelt withdrawn from the seatbelt retractor is barely sagged. A load applied to the seatbelt at that time was measured by the tension gauge.
The result of test is shown in
Incidentally, in the EA mechanism using the energy absorbing pin 19, there is a case in which the overshooting occurs by the generation of a rising portion Fp′ in the limit load in the early stage of the pulling-out as shown in
However, in the seatbelt retractor descried in Patent Document 2, the energy absorbing pin 19 must be formed into a special shape such as a crank shape, and also the energy absorbing pin 19 must be assembled with the spool 9 and the locking base 16 while securing the space or the like between the head portion 19b and the locking base 16 with high degree of accuracy. Therefore, the assembly work of the energy absorbing pin 19 is troublesome, and also obtaining the stable limit load is difficult.
Accordingly, in another example of the embodiment of the seatbelt retractor according to the present invention, not only restraining of generation of the limit load rising portion Fp due to the burning between the spool 9 and the energy absorbing pin 19, but also restraining of generation of the limit load rising portion Fp′ in the early stage of the pulling-out of the energy absorbing pin 19 are achieved in a simple configuration.
The energy absorbing pin 19 in this example is also formed with the lubricant coating layer 19e by applying the lubricating coating agent (wax) in the same manner as described above on the surface of the core material 19d. Also, as shown in
Also, in the state in which the energy absorbing pin 19 is assembled with the locking base 16 and the spool 9, as shown in
In the EA mechanism using the energy absorbing pin 19 in the seatbelt retractor 3 in this example configured in this manner, when the spool 9 is relatively rotated from the normal state shown in
Accordingly, the limit load rising portion Fp′ indicated by a double dashed chain line in
Other configurations of the seatbelt retractor 3 and other advantages in this example are the same as those in the example shown in
Furthermore, according to the seatbelt apparatus in the present invention, by using the seatbelt retractor 3 according to the present invention which can be formed further compactly; the larger space is obtained in the cabin correspondingly. Therefore, according to the seatbelt retractor 3 in the present invention, a demand such that the space in the cabin is maximized without upsizing the vehicle as a whole, which is requested more and more in recent years, can be satisfied sufficiently and flexibly.
The seatbelt retractor according to the present invention is not limited to examples in the embodiment described above and, for example, the lubricating coating agent (wax) may be applied on an inner peripheral surface of the axial hole 9a, or the lubricating coating agent (wax) may be applied both on the surface of the energy absorbing pin 19 and the inner peripheral surface of the axial hole 9a. As described above, since the material used for the energy absorbing pin 19 is harder than that for the spool 9 in general, it is preferable to apply the lubricating coating agent (wax) on at least the energy absorbing pin 19. Importantly, the present invention may be modified variously in design within the range described in the present invention.
The seatbelt retractor according to the present invention may be applied to various seatbelt retractors within the range described in the present invention as long as the seatbelt retractor comprises the energy absorbing pin 19 which is provided between the spool 9 and the locking base 16 for alleviating and absorbing an inertia energy of the occupant in case of emergency.
The seatbelt retractor in the present invention is desirably utilized in the seatbelt retractor used in the seatbelt apparatus provided on the vehicle such as the automobile for limiting the load applied to the seatbelt by the energy absorbing member in case of emergency such as a collision to absorb and alleviate the inertia energy of the occupant and prevent the withdrawal of the seatbelt.
The disclosure of Japanese Patent Application No. 2008-271642 filed on Oct. 22, 2008 is incorporated as a reference.
While the invention has been explained with reference to the specific embodiments of the invention, the explanation is illustrative and the invention is limited only by the appended claims.
Number | Date | Country | Kind |
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2008-271642 | Oct 2008 | JP | national |