Claims
- 1. A multifunctional member adapted for structural deformation, the multifunctional member comprising:
a first active member, said first active member adapted to contract if exposed to a temperature above a first transition temperature range; a second active member, said second active member adapted to contract if exposed to a temperature above a second transition temperature range; at least one core member, wherein said first and second active members are connected to opposite sides of said core member; at least one heat source operatively connected to said first and second active members to expose said first and second active members to said first and second transition temperatures, respectively; wherein said first and second active members are operable to alter the shape of the multifunctional member, wherein:
said first active member contracts while above said first transition temperature range causing said second active member to expand wherein said second active member is below said second transition temperature range; and said second active member contracts while above said second transition temperature range causing said first active member to expand wherein said first active member is below said first transition temperature.
- 2. The multifunctional member of claim 1, wherein said first and second active members are alternatively exposed to first and second temperature transition ranges, respectively, the multifunctional member is adapted to perform fully reversible cyclic shape changes.
- 3. The multifunctional member of claim 1, wherein said first and second transition temperature ranges are between about 0C to about 170C.
- 4. The multifunctional member of claim 1, wherein said first and second transition temperature ranges are between about 20C to about 120C.
- 5. The multifunctional member of claim 1, wherein said first and second transition temperature ranges are about 50C to about 70C.
- 6. The multifunctional member of claim 1, wherein said core is made from a material selected from the group consisting of polymers, metals, and ceramics.
- 7. The multifunctional member of claim 1, wherein said core is made from composites formed of one or more of a material selected from the group consisting of polymers, metals, and ceramics.
- 8. The multifunctional member of claim 1, wherein said core is comprised of at least two corrugated layers with a center sheet disposed between adjacent said corrugated layers.
- 9. The multifunctional member of claim 1, wherein said core is bonded to adjacent said corrugated layers, wherein said bond is at least one of brazing bonded, UV welding bonded, laser welding bonded, or diffusion welding bonded.
- 10. The multifunctional member of claim 1, wherein said core is comprised of textile layers with a face sheet disposed between adjacent said textile layers.
- 11. The multifunctional member of claim 10, wherein said textile layers are a structure made from the group consisting of braided, multi-ply, triaxial, multi-axial, H-beam, I-beam, and honeycomb.
- 12. The multifunctional member of claim 1, wherein said core is comprised of three-dimensional space filling layers comprised of an array of out-of-plane truss units.
- 13. The multifunctional member of claim 712, wherein said out-of-plane truss units have a geometrical shape selected from the group consisting of: tetrahedral, pyramidal, Kagome, combinations thereof and other non-limiting arrangements.
- 14. The multifunctional member of claim 7, wherein said out-of-plane truss units have a hollow or solid leg members.
- 15. The multifunctional member of claim 912, unit trusses have a geometrical shape selected from the group consisting of: tetrahedral, pyramidal, Kagome, combinations thereof and other non-limiting arrangements.
- 16. The multifunctional member of claim 1, wherein said first and second active members are made from a material selected from the group consisting of Ni—Ti, Ni—Ti—V, Ni—Ti—Fe, Ni—Ti—Cu, Ni—Ti—C—, Ni—Ti—Cr, Ni—Ti—Nb, Ni—Ti—Pd, Ni—Ti—Fe, Cu—Zn—Al, Cu—Al—Ni and Fe—Mn—Si.
- 17. The multifunctional member of claim 1, wherein said first and second active members are made from composites formed of one or more of a material selected from the group consisting of Ni—Ti, Ni—Ti—V, Ni—Ti—Fe, Ni—Ti—Cu, Ni—Ti—C—, Ni—Ti—Cr, Ni—Ti—Nb, Ni—Ti—Pd, Ni—Ti—Fe, Cu—Zn—Al, Cu—Al—Ni and Fe—Mn—Si.
- 18. The multifunctional member of claim 1, wherein said first and second active members are made of substantially planar surfaces that can be contracted or expanded.
- 19. The multifunctional member of claim 1, wherein said first and second active members are made from a shape comprised from a group consisting of rods, strips, and panels.
- 20. A method of manufacturing a multifunctional member adapted for structural deformation, the method comprising:
providing a core member adaptive for deformation; providing a first active member and a second active member, said first active member and second active member adapted to contract if exposed to a first transition temperature range and second transition temperature range, respectively; heating said first and second active members above said first and second active transition temperature ranges, respectively cooling said first and second active members below said first and second active transition temperature ranges, respectively pre-stretching said first active member and second active member while said first active member and second active member are below said first and second active temperature ranges, respectively; attaching said first and second active members on opposite sides of said core member; heating said first active member above said first active temperature range causing said first active member to contract, wherein;
said first member contraction causes said second active member to expand, wherein said second member is below said second transition temperature range; cooling said first active member, wherein said first active member remains in contracted position; and heating said second active member above said second active temperature range causing said second active member to contract, wherein
said second member contraction causes said first active member to expand, wherein said first active member is below said first transition temperature range.
- 21. The method of claim 20, further comprising:
cooling said second active member, wherein said second active member remains in contracted position.
- 22. The method of claim 20, wherein: said core can be attached before or after the pre-stretching at least one of said first and second active members.
- 23. A method of manufacturing a multifunctional member adapted for structural deformation, the method comprising:
providing a first active member and a second active member, said first active member and second active member adapted to contract if exposed to a first transition temperature range and second temperature range, respectively; heating said first active member above said first active temperature range causing said first active member to contract, cooling said first active member, wherein said first active member remains in contracted position; deforming a core to be adaptable for attachment to said contracted first active member; attaching said deformed core onto said contracted first active member; heating said second active member above said second active temperature range causing said second active member to contract; cooling said second active member, wherein said second active member remains in contracted position; additionally deforming said contracted first active member and deformed core into a shape substantially similar to said contracted second active member so as to be adaptable for attachment to said contracted second active member; and attaching said additionally deformed core onto said contracted second active member opposite side of said first active member.
- 24. A method of transforming a multifunctional member comprising the steps:
a) providing a first active member and a second active member, said first active member and second active member adapted to contract if exposed to a temperature above a first transition temperature range and second temperature range, respectively; b) providing a core attached between said first and second active members, said core member adaptive for deformation; c) heating at least a portion of said first active member above said first active temperature range causing at least a portion of said first active member to contract, wherein;
said at least portion of said first member contraction causes said at least a portion of said second active member to expand wherein said portion of said second active member is below said second transition temperature range; d) cooling said heated portion of said first active member; e) heating at least a portion of said second active member above said second active temperature range causing at least a portion of said second active member to contract, wherein;
said at least portion of said second member contraction causes said at least a portion of said first active member to expand wherein said portion of said first active member is below said first transition temperature range; and f) cooling said heated portion of said second active member.
- 25. The method of claim 24, further comprising:
repeating steps (c) through (f) at least one of a plurality of times.
- 26. The method of claim 24, further comprising:
alternatively exposing at least a portion of each of said first and second active members to first and second temperature transition ranges, respectively, wherein the multifunctional member performs fully reversible cyclic shape changes.
- 27. A multifunctional member adapted for structural deformation, the multifunctional member comprising:
a first active member, said first active member adapted to contract if exposed to a first stimulant that shortens said first active member into a shortened state; a second active member, said second active member adapted to contract if exposed to a second stimulant that shortens said second active member into a shortened state; at least one core member, wherein said first and second active members are connected to substantially opposite sides of said core member; said first and second stimulants operatively connected to said first and second active members to expose said first and second active members to said first and second stimulants, respectively; wherein said first and second active members are operable to alter the shape of the multifunctional member, wherein:
said first active member contracts if stimulated by said first stimulant causing said second active member to expand while second active member is in non-stimulated state; and said second active member contracts if stimulated by said second stimulant causing said first active member to expand while said first active member is in non-stimulated state.
- 28. A method of manufacturing a multifunctional member adapted for structural deformation, the method comprising:
providing a core member adaptive for deformation; providing a first active member and a second active member, said first active member and second active member adapted to contract if exposed to a first stimulant and second stimulant, respectively, that shortens said first and second active members; stimulating said first and second active members into first and second stimulating states, respectively; allow first and second active members to return to non-stimulated states; pre-stretching said first active member and second active member while said first active member and second active member are not in stimulated states; attaching said first and second active members on opposite sides of said core member; stimulating said first active member causing said first active member to contract, wherein:
said first member contraction causes said second active member to expand while said second member is in non-stimulated state, and then allow said first active member to return to non-stimulated state, wherein said first active member remains in contracted position; and stimulating said second active member causing said second active member to contract, wherein:
said second member contraction causes said first active member to expand while said first member is in non-stimulated state.
- 29. A method of manufacturing a multifunctional member adapted for structural deformation, the method comprising:
providing a first active member and a second active member, said first active member and second active member adapted to contract if exposed to a first stimulant temperature range and second stimulant, respectively; stimulating said first active member causing said first active member to contract; allowing said first active member to return to non-stimulated state, wherein said first active member remains in contracted position; deforming a core to be adaptable for attachment to said contracted first active member; attaching said deformed core onto said contracted first active member; stimulating said second active member causing said second active member to contract; allowing said second active member, to return to non-stimulated state, wherein said second active member remains in contracted position; additionally deforming said contracted first active member and deformed core into a shape substantially similar to said contracted second active member so as to be adaptable for attachment to said contracted second active member; and attaching said additionally deformed core onto said contracted second active member opposite side of said first active member.
- 30. A method of transforming a multifunctional member comprising the steps:
a) providing a first active member and a second active member, said first active member and second active member adapted to contract if exposed to a first stimulant and second stimulant, respectively; b) providing a core attached between said first and second active members, said core member adaptive for deformation; c) stimulating at least a portion of said first active member causing at least a portion of said first active member to contract, wherein;
said at least portion of said first member contraction causes said at least a portion of said second active member to expand wherein said portion of said second active member is in non-stimulated state; d) allowing said stimulated portion of said first active member to return to non-stimulated state; e) stimulating at least a portion of said second active member causing at least a portion of said second active member to contract, wherein;
said at least portion of said second member contraction causes said at least a portion of said first active member to expand wherein said portion of said first active member is in non-stimulated state; and f) allowing said stimulated portion of said second active member to return to non-stimulated state.
- 31. The method of claim 30, further comprising:
repeating steps (c) through (f) at least one of a plurality of times.
- 32. The method of claim 30, further comprising:
alternatively stimulating at least a portion of each of said first and second active members to first and second stimulants, respectively, wherein the multifunctional member performs fully reversible cyclic shape changes.
- 33. An air craft comprising:
at least one wing; and wherein said multifunctional member of claim 1 or 27 is adapted to actuate said at least one wing of the aircraft.
- 34. A watercraft comprising:
at least one propulsion system; and wherein said multifunctional member of claim 1 or 27 is adapted to actuate said at least one propulsion system of the watercraft.
RELATED APPLICATIONS
[0001] This application claims priority from U.S. Provisional Application Serial. No. 60/314,619 filed on Aug. 24, 2001, entitled “Reversible Shape Memory Actuator Panels and Method of Manufacturing the Same,” the entire disclosure of which is hereby incorporated by reference herein.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US02/27116 |
8/26/2002 |
WO |
|
Provisional Applications (1)
|
Number |
Date |
Country |
|
60314619 |
Aug 2001 |
US |