The present invention relates to a clinch bolt of which the screw shaft portion thereof is inserted into a aperture previously formed in a metal plate and be locked by caulking to the metal plate.
When a bolt is studded in a predetermined position of a metal plate of a jointing material such as a car component and building fixture, a weld bolt or a stud bolt is conventionally employed in many cases. However, this type of bolt accompanied by welding operation involves difficulty in welding on a paint-coated or metal-plated steel plate, and also, it requires time and labor before and after welding operation. Further, there is a problem such that gas generated during the welding operation gives bad influence to human body, and therefore, it is required to work out a proper bolt studding operation without welding from the viewpoint of working environment.
In order to solve such a problem, various clinch bolts of which the screw shaft portion thereof is inserted into a aperture previously formed in a metal plate and then studded and fastened by caulking to the metal plate are developed and employed. Such a clinch bolt is usually required to have a resistance to twist-out and a resistance to pull-out with respect to the metal plate to be locked by caulking.
For example, a clinch bolt having a locking function with a caulking protrusion disposed on a seat surface of the bolt head and a non-slip-off function provided at a neck shaft portion directly below the bolt head is disclosed in Patent document 1. The clinch bolt increases in outer diameter of the head portion as against the shaft diameter of the screw shaft portion, and is accompanied by problems such as limited places for installation, weight increase, and high costs.
Also, a clinch bolt with a serration disposed on the outer periphery of the neck shaft portion directly below the head portion is disclosed in Patent document 2 and Patent document 3. The clinch bolt has a locking function provided by such a method that the screw shaft portion thereof is inserted into a aperture formed in a metal plate so that the serration bites into the metal plate at the periphery of the aperture. Simultaneously, it has a non-slip-off function provided by such a method that an end portion of the screw shaft portion of the serration is compressed and deformed toward the head portion. And, as the serration disposed at the neck shaft portion is axially compressed and deformed, there is provided an actually unnecessary shaft portion between the serration and the screw shaft portion so as to avoid bad influences given to the size and shape of the screw shaft portion. Also, compressing and deforming the serration gives rise to the appearance of a shaft portion that is not needed for similar fastening. As a result, the overall length of the shaft portion including the screw shaft portion as a whole becomes unnecessarily longer.
The present invention is intended to solve the problem of the conventional clinch bolt, and the object of the invention is to provide a clinch bolt comprising a locking function and a non-slip-off function, reducing the outer diameter of the head portion and also suppressing unnecessary increase in size of the shaft portion.
In order to solve the problem described above, the present invention is a clinch bolt of which the shaft portion thereof is inserted into a aperture previously formed in a metal plate and fastened by caulking to the metal plate, wherein a plurality of protrusions and depressions are alternately peripherally disposed at a neck shaft portion directly below the head portion disposed at one end of the screw shaft portion, and the protrusion is configured in that the end of the screw shaft portion side is formed larger in diameter than the end of the head portion side, and the aperture formed in the metal plate is configured in that the hole diameter is a little larger than the maximum diameter of the protrusion. And only the metal plate at the aperture periphery is partially deformed by caulking (plastic deformation) so as to bite into the protrusion and the depression, thereby providing the clinch bolt with both of a locking function and a non-slip-off function.
The maximum diameter of the protrusion is preferable to be equal to or larger than the outer diameter of the screw shaft portion.
The protrusion is specifically configured in that the outer surface thereof is tapered, outwardly widening toward the end of the screw shaft portion from the end of the head portion, and the end of the screw shaft portion is larger in diameter than the end of the head portion side.
The clinch bolt of the present invention has a simple structure such that a plurality of protrusions and depressions are alternately peripherally disposed at a neck shaft portion directly below the head portion thereof, and as to the protrusion, the end of the screw shaft portion is larger in diameter than the end of the head portion side. The screw shaft portion is inserted into a aperture formed in a metal plate, and only the metal plate at the aperture periphery is partially deformed by caulking (plastic deformation) so as to bite into the protrusion and depression, thereby providing the clinch bolt with both of a resistance to twist-out and a resistance to pull-out. Accordingly, it is possible to obtain a clinch bolt having both of a resistance to twist-out and a resistance to pull-out, reducing the outer diameter of the head portion and suppressing unnecessary increase in size of the shaft portion.
Also, only the peripheral portion of the aperture in the metal plate is deformed by caulking (plastic deformation), while the protrusion and depression of the neck shaft portion are not deformed by caulking. Therefore, the caulking work can be easily performed and it is possible to sufficiently ensure the strength of the neck shaft portion.
The preferred embodiment of the present invention will be described in detail in the following with reference to the drawings.
Aperture 11 is previously formed by punching in metal plate 10. Aperture 11 is formed a little larger in diameter than outer diameter B of end 4b of screw shaft portion 2 of protrusion 4 of clinch bolt 1, that is, it is formed a little larger in diameter than the maximum diameter of protrusion 4, and screw shaft portion 2 is inserted into aperture 11, which is set in caulking die 15 in such a state that protrusion 4 and depression 5 of the neck shaft portion are in engagement with aperture 11.
Caulking die 15 has support hole 16 for supporting screw shaft portion 2 inserted therein, and in the vicinity of upper end opening of support hole 16 is formed large-diameter opening 16a that is nearly equal in diameter to outer diameter B of protrusion 4, and annular projection 17 for caulking is integrally disposed along the upper end opening periphery of large-diameter opening 16a.
As shown in
In this condition, when head portion 3 is depressed by a pressing punch not shown to press the metal plate 10 onto caulking die 15, as shown in
1 Clinch bolt
2 Screw shaft portion
3 Head portion
4 Protrusion
4
a End of head portion 3 side of protrusion 4
4
b End of screw shaft portion 2 side of protrusion 4
5 Depression
6 Outer surface
10 Metal plate
11 Aperture
12 Deformed portion
15 Caulking die
16 Support hole
16
a Large diameter opening
17 Annular projection
[Patent document 1] Japanese Patent Unexamined Publication 2010-71401
[Patent document 2] Japanese Patent Examined Publication H5-85767
[Patent document 3] Japanese Patent Unexamined Publication S60-11710
Number | Date | Country | Kind |
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JP2010-148542 | Jun 2010 | JP | national |