Claims
- 1. An actuator comprising:
an actuator element having a first part, a second part, and a neutral axis therebetween along a cross-section of said actuator element; wherein said actuator element capable of retaining a strain gradient defined relative to said neutral axis; wherein said strain gradient is higher in a first phase, before activation of phase transformation, than in a second phase, after said activation; wherein said actuator element has a first shape corresponding to said first phase and a second shape corresponding to said second phase; and wherein once activated, said actuator element transitions from said first shape to said second shape in a direction to minimize said strain gradient.
- 2. The actuator as set forth in claim 1, wherein said actuator element is capable of achieving movement or angular deflection of about 60° or more.
- 3. The actuator as set forth in claim 1, wherein said first shape is characterized as non-linear, curvy, or irregular and wherein said second shape is characterized as linear or substantially linear.
- 4. The actuator as set forth in claim 1, wherein said first shape and said second shape are characterized as non-linear and wherein said second shape differs from said first shape.
- 5. A method of making the actuator of claim 1, comprising:
utilizing a shape memory alloy for said actuator element; establishing said strain gradient by applying a torque to said actuator element such that said first part is under compression and said second part is under tension; and activating said actuator element such that said actuator element transitions from said first phase to said second phase.
- 6. An actuator device, comprising:
a first body; and an actuator element with a first end attached to said first body, said actuator element having a first part, a second part, and a neutral axis therebetween along a cross-section of said actuator element; wherein said actuator element capable of retaining a strain gradient defined relative to said neutral axis; wherein said strain gradient is higher in a first phase, before activation of phase transformation, than in a second phase, after said activation; wherein said actuator element has a first shape corresponding to said first phase and a second shape corresponding to said second phase; and wherein once activated, said actuator element transitions from said first shape to said second shape in a direction to minimize said strain gradient.
- 7. The device as set forth in claim 6, further comprising:
a second body attached to a second end of said actuator element.
- 8. The device as set forth in claim 7, wherein said first body is movably attached to said second body by a connecting means.
- 9. The device as set forth in claim 8, further comprising:
a second body attached to a point in between said first end and a second end of said actuator element, wherein said second end is attached to said first body.
- 10. The device as set forth in claim 9, wherein said actuator element is embedded in said actuator device.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of a pending U.S. patent application Ser. No. 10/029,402, filed Dec. 19, 2001, which claims priority from U.S. Provisional Patent Applications No. 60/260,169, filed Jan. 05, 2001, and No. 60/257,214, filed Dec. 20, 2000.
STATEMENT REGARDING FEDERALLY SPONDORED RESEARCH OR DEVELOPMENT
[0002] This invention was supported in part by grant number F49620-99-1-0129 from the Air Force Office of Science Research. The U.S. government may have certain rights in the invention.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60260169 |
Jan 2001 |
US |
|
60257214 |
Dec 2000 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10029402 |
Dec 2001 |
US |
Child |
10754472 |
Jan 2004 |
US |