Ultrasonically Assisted Self-Piercing Riveting
20200101519 ยท 2020-04-02
Inventors
- Xin Sun (Knoxville, TN, US)
- Zhili FENG (Knoxville, TN, US)
- Jian Chen (Knoxville, TN, US)
- Hui Huang (Knoxville, TN, US)
- Xiaohua Hu (Knoxville, TN, US)
- Richard W. Davies (Knoxville, TN, US)
Cpc classification
B21J15/28
PERFORMING OPERATIONS; TRANSPORTING
B21J15/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A method for installing a self-piercing rivet by introducing acoustic (ultrasonic) vibrational energy is provided. The method includes positioning multiple workpieces between a blank holder and a die, applying ultrasonic vibrations to locally soften the workpieces and driving, using a press tool, the self-piercing rivet into the workpieces, causing the self-piercing rivet to deform in a radially outward direction, thereby joining the workpieces together without thermal processing and without permanent alterations to the microstructure of the workpiece materials.
Claims
1. A method for installing a self-piercing rivet, the method comprising: providing a self-piercing rivet tool including a punch and a die; positioning a plurality of workpieces between the punch and the die; applying ultrasonic vibrations to the plurality of workpieces between the punch and the die to locally soften a region of the plurality of workpieces; and driving, using the punch, a self-piercing rivet into the softened region of the plurality of workpieces, and causing the self-piercing rivet to deform in a radial-outward direction to join the plurality of workpieces together substantially at ambient temperature.
2. The method of claim 1 wherein the ultrasonic vibrations are indirectly applied to the plurality of workpieces through vibration of a portion of the self-piercing rivet tool.
3. The method of claim 1 further including clamping the plurality of workpieces between a blank holder and the die.
4. The method of claim 1 further including providing an ultrasonic transducer to apply the ultrasonic vibrations to at least one of the plurality of workpieces.
5. The method of claim 1 wherein applying ultrasonic vibrations imparts vibrations in a direction perpendicular to a surface of the plurality of workpieces.
6. The method of claim 1 wherein applying ultrasonic vibrations imparts vibrations in a direction parallel to a surface of the plurality of workpieces.
7. The method of claim 1 wherein applying ultrasonic vibrations imparts rotational vibrations about an axis that is normal to a surface of the plurality of workpieces.
8. The method of claim 1 wherein applying ultrasonic vibrations is performed prior to the step of driving the self-piercing rivet.
9. The method of claim 1 wherein applying ultrasonic vibrations is performed concurrently with the step of driving the self-piercing rivet.
10. The method of claim 1 wherein applying ultrasonic vibrations is performed prior to and concurrently with the step of driving the self-piercing rivet.
11. A self-piercing rivet tool comprising: a punch and a die which are operable to drive a self-piercing rivet into a plurality of workpieces positioned between the punch and the die, the self-piercing rivet having a hollow leg extending from a head, the die having a cavity; and an ultrasonic transducer operable to locally soften a region of the plurality of workpieces positioned between the punch and the die, wherein the hollow leg of the self-piercing rivet is deformed in a radial outward direction when driven into the plurality of workpieces in an axial direction to join the plurality of workpieces together.
12. The self-piercing rivet tool of claim 11 wherein the ultrasonic transducer is coupled to the plurality of workpieces through an ultrasonic horn.
13. The self-piercing rivet tool of claim 11 wherein the ultrasonic transducer causes the plurality of workpieces to oscillate in a direction perpendicular to the axial direction.
14. The self-piercing rivet tool of claim 11 wherein the ultrasonic transducer causes the plurality of workpieces to oscillate in a direction parallel to the axial direction.
15. The self-piercing rivet tool of claim 11 wherein the ultrasonic transducer imparts rotational oscillations in the plurality of workpieces about the axial direction.
16. A method for installing a self-piercing rivet, the method comprising: providing a self-piercing rivet tool including a punch, a blank holder, and a die; clamping a plurality of workpieces between the blank holder and the die, the plurality of workpieces including an upper sheet and a lower sheet; applying ultrasonic vibrations to the plurality of workpieces in the region between the blank holder and the die to locally soften the plurality of workpieces; and driving, using the punch, a self-piercing rivet into the softened region of the plurality of workpieces in an axial direction and causing the self-piercing rivet to deform outwardly in a radial direction to join the plurality of workpieces together.
17. The method of claim 16 wherein the ultrasonic vibrations are indirectly applied to the plurality of workpieces through vibration of a portion of the self-piercing rivet tool.
18. The method of claim 16 wherein applying ultrasonic vibrations imparts vibrations in a direction perpendicular to the axial direction.
19. The method of claim 16 wherein applying ultrasonic vibrations imparts vibrations in a direction parallel to the axial direction.
20. The method of claim 16 wherein applying ultrasonic vibrations imparts rotational vibrations about the axial direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
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[0016]
[0017]
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DETAILED DESCRIPTION OF THE CURRENT EMBODIMENTS
[0022] As discussed herein, the current embodiments generally relate to a method for installing a self-piercing rivet by introducing ultrasonic vibrational energy. The method generally includes positioning multiple workpieces between a blank holder and a die, applying ultrasonic vibrations to locally soften the workpieces and driving, using a press tool, the self-piercing rivet into the workpieces, causing the self-piercing rivet to deform in a radially outward direction, thereby joining the workpieces together without thermal processing and without permanent alterations to the microstructure of the workpiece materials. Each step is separately discussed below.
[0023] Referring to
[0024] Once positioned between portions of a self-piercing rivet tool, a transducer 40 (shown in
[0025] As shown in
[0026] As shown in
[0027] Referring now to
[0028] To reiterate, embodiments of the present invention include the application of ultrasonic energy to soften workpieces to facilitate self-pierce riveting, either by a transducer imposing ultrasonic vibration to the rivet tool (e.g., die, blank holder, punch) or directly to the workpiece(s). In some embodiments, high frequency ultrasonic vibration is introduced during the riveting process until the two workpieces are clinched. Different transducers and/or coupling devices are possible to apply different modes of vibration in which the direction of the ultrasonic vibration is in principle parallel to the surface of the workpieces, perpendicular to the surface of the workpieces, or cyclic with rotation about an axis that is perpendicular to the surface of the workpieces. The various modes of vibration can be combined for a given application to maximize the benefits of acoustic softening in self-piercing riveting operations.
[0029] The above description is that of current embodiments of the invention. Various alterations and changes can be made without departing from the spirit and broader aspects of the invention as defined in the appended claims, which are to be interpreted in accordance with the principles of patent law including the doctrine of equivalents. This disclosure is presented for illustrative purposes and should not be interpreted as an exhaustive description of all embodiments of the invention or to limit the scope of the claims to the specific elements illustrated or described in connection with these embodiments. For example, and without limitation, any individual element(s) of the described invention may be replaced by alternative elements that provide substantially similar functionality or otherwise provide adequate operation. This includes, for example, presently known alternative elements, such as those that might be currently known to one skilled in the art, and alternative elements that may be developed in the future, such as those that one skilled in the art might, upon development, recognize as an alternative. Further, the disclosed embodiments include a plurality of features that are described in concert and that might cooperatively provide a collection of benefits. The present invention is not limited to only those embodiments that include all of these features or that provide all of the stated benefits, except to the extent otherwise expressly set forth in the issued claims. Any reference to claim elements in the singular, for example, using the articles a, an, the or said, is not to be construed as limiting the element to the singular.