Shape memory alloy particle toughening of cast or additive manufactured al-cu-mg-ag-tib2
US-2021121949-A1 · Apr 29, 2021 · US
US11912397B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11912397-B2 |
| Application number | US-202217975046-A |
| Country | US |
| Kind code | B2 |
| Filing date | Oct 27, 2022 |
| Priority date | Nov 26, 2018 |
| Publication date | Feb 27, 2024 |
| Grant date | Feb 27, 2024 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
Thermally configurable structural elements (e.g., aircraft components such as an aircraft winglet spar) capable of assuming at least first and second structural configurations are provided whereby the structural element includes an integral actuation mechanism may be formed of sintered shape memory alloy (SMA) particles and sintered non-SMA particles formed by an additive layer manufacturing (ALM) process, such as 3D printing. The ALM process thereby provides by at least one thermally configurable region, and at least one non-thermally configurable region which is unitarily contiguous with the at least one thermally configurable region. The at least one thermally configurable region is capable of assuming at least first and second positional orientations in response to the presence or absence of a thermal input to thereby cause the structural element to assume the at least first and second structural configurations, respectively.
Opening claim text (preview).
What is claimed is: 1. A method of making a thermally configurable aircraft structural component capable of assuming at least first and second structural configurations which include at least one thermally configurable region comprised of sintered shape memory alloy (SMA) particles, and at least one non-thermally configurable region comprised of sintered non-SMA particles which is unitarily contiguous with the at least one thermally configurable region, wherein the method comprises: (i) additively sintering layers of sinterable SMA particles to form the at least one thermally configurable region of the component comprised of the sintered SMA particles; and (ii) additively sintering layers of sinterable non-SMA particles to form the at least one non-thermally configurable region of the component comprised of the sintered non-SMA particles, wherein steps (i) and (ii) are practiced simultaneously or in any order. 2. The method according to claim 1 , wherein steps (i) and/or (ii) include additively sintering by 3D laser-sintering. 3. The method according to claim 1 , wherein the process comprises the steps of: (a) providing a sinterable powder layer comprised of unitarily contiguous adjacent powder regions which respectively include the SMA and non-SMA particles, (b) laser-sintering the sinterable powder layer to form a sintered powder layer which includes the unitarily contiguous thermally configurable and non-thermally configurable regions, respectively, and thereafter (c) repeating steps (a) and (b) for a plurality of successively adjacent sintered powder layers. 4. The method according to claim 1 , which further comprises thermally training the aircraft structural component. 5. The method according to claim 4 , wherein the step of thermally training the aircraft structural component includes annealing and/or isostatically pressing the aircraft structural component at elevated temperatures. 6. The method according to claim 1 , wherein step (i) comprises additively sintering sinterable powder layers comprised of the sinterable SMA particles and sinterable superelastic (SE) alloy particles. 7. The method according to claim 6 , which comprises forming the sinterable powder layers by admixing the sinterable SMA and sinterable SE alloy particles with one another. 8. The method according to claim 1 , wherein the sinterable SMA particles are comprised of Ni—Ti based alloys and/or Cu-based alloys. 9. The method according to claim 1 , wherein the sinterable SMA particles are shape memory alloys selected from the group consisting of Ni—Ti, Ni—Al, Cu—Zn, Cu—Zn—Al, Cu—Zn—Sn, Cu—Zn—Si, Cu—Zn—Ga, Au—Cd, Fe—Pt, Mg—Cu and Fe—Mn—Si—Cr—Ni. 10. The method according to claim 1 , wherein the sinterable non-SMA particles are non-shape memory alloys selected from the group consisting of aluminum alloys, magnesium alloys and titanium alloys. 11. The method according to claim 1 , wherein the sinterable SMA particles are formed of a shape memory Ni—Ti alloy, and wherein the sinterable non-SMA particles are formed of a non-shape memory aluminum alloy. 12. The method according to claim 1 , wherein the aircraft structural component is a winglet spar for an aircraft winglet. 13. The method according to claim 12 , wherein the at least one thermally configurable region of the winglet spar is capable of causing the winglet to assume at least two different aerodynamic configurations in response to presence or absence of a thermal input, respectively. 14. The method according to claim 13 , wherein the at least two different aerodynamic configurations comprise different angular orientations relative to lengthwise and/or chordwise extents of an aircraft wing. 15. A method of fabricating a one-piece aircraft winglet spar having unitarily contiguous thermally configurable and non-thermally configurable regions, wherein the method comprises the steps of: (a) providing a sinterable powder layer comprised of unitarily contiguous adjacent powder regions which respectively include shape memory alloy (SMA) particles and non-SMA particles, (b) laser-sintering the sinterable powder layer to form a sintered powder layer which includes the unitarily contiguous thermally configurable and non-thermally configurable regions, respectively, and thereafter (c) repeating steps (a) and (b) for a plurality of successively adjacent sintered powder layers to thereby form the one-piece winglet spar comprised of a thermally configurable region comprised of the SMA particles sintered according to step (b), and a non-thermally configurable region comprised of the non-SMA particles sintered according to step (b) which is unitarily contiguous with the thermally configurable region.
using shape memory elements · CPC title
characterised by the material or the manufacturing process, e.g. the assembly (magnetic shape memory alloys F03G7/06147) · CPC title
at the wing tips · CPC title
Materials specially adapted for additive manufacturing · CPC title
Products made by additive manufacturing · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.