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EP0187452A1 - A method of processing a nickel/titanium-based shape memory alloy and article produced therefrom - Google Patents

A method of processing a nickel/titanium-based shape memory alloy and article produced therefrom
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Publication number
EP0187452A1
EP0187452A1EP85308080AEP85308080AEP0187452A1EP 0187452 A1EP0187452 A1EP 0187452A1EP 85308080 AEP85308080 AEP 85308080AEP 85308080 AEP85308080 AEP 85308080AEP 0187452 A1EP0187452 A1EP 0187452A1
Authority
EP
European Patent Office
Prior art keywords
alloy
temperature
nickel
titanium
hysteresis
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
EP85308080A
Other languages
German (de)
French (fr)
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EP0187452B1 (en
Inventor
John A. Simpson
Tom Duerig
Keith Melton
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Raychem Corp
Original Assignee
Raychem Corp
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Filing date
Publication date
Priority claimed from US06/668,771external-prioritypatent/US4631094A/en
Priority claimed from US06/783,371external-prioritypatent/US4740253A/en
Application filed by Raychem CorpfiledCriticalRaychem Corp
Priority to AT85308080TpriorityCriticalpatent/ATE60811T1/en
Publication of EP0187452A1publicationCriticalpatent/EP0187452A1/en
Application grantedgrantedCritical
Publication of EP0187452B1publicationCriticalpatent/EP0187452B1/en
Anticipated expirationlegal-statusCritical
Expired - Lifetimelegal-statusCriticalCurrent

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Abstract

There is disclosed a method of processing a nickel/ titanium-based shape memory alloy. The method comprises overdeforming the alloy so as to cause at least some amount of nonrecoverable strain, temporarily expanding the transformation hysteresis by raising the austenite transformation temperature, removing the applied stress and then storing the alloy at a temperature less than the new austenite transition temperature. There is also disclosed a method of preassembling a composite coupling which includes the steps of overdeforming a driver member, removing the stress, engaging the driver member and an insert and them warming the driver and insert to a temperature less than A,'. Finally, there are disclosed couplings produced by these methods.

Description

Claims (14)

1. A method of processing a nickel/titanium-based shape memory alloy having a transformation hysteresis defined by Ms, Mf, As, and Af temperatures, the method comprising:
temporarily expanding the transformation hysteresis by elevating the As and Af temperatures to As' and Af', respectively, so that the temperature difference between As' and Ms is greater than the temperature difference between As and Ms; and
storing the alloy at a temperature between As and As'.
2. A method according to Claim 1 wherein the step of expanding the transformation hysteresis comprises overdeforming the alloy by applying a stress sufficient to cause nonrecoverable strain in the alloy.
3. A method of processing a nickel/titanium-based shape memory alloy having a transformation hysteresis defined byMs,Mf, As, and Af temperatures, the method comprising:
overdeforming the alloy by applying a stress sufficient to cause nonrecoverable strain in the alloy wherein the transformation hysteresis is temporarily expanded by elevating the As and Af temperatures to As' and Af', respectively, so that the temperature difference between As' and Ms is greater than the temperature difference between As and Ms.
4. A method of Claim 3 further comprising the step of storing the alloy at a temperature less than about As'.
5. A method according to Claim 2, 3 or 4, further comprising the step of removing the stress.
6. A method of preassembling a composite coupling having at least one heat-recoverable driver member and at least one metallic insert, the driver member made from nickel/titanium-based shape memory alloy having a transformation hysteresis defined by Ms, Mf, As, and Af temperatures, the method comprising:
overdeforming the driver member by applying stress sufficient to cause nonrecoverable strain in the driver member so that the As and Af temperatures are temporarily raised to As' and Af', respectively; removing the stress; engaging the driver member and insert; and warming the driver member and insert to a temperature less than As'.
7. A method according to any preceding Claim wherein in overdeforming the alloy or the driver member, a stress is applied sufficient to cause at least one percent of nonrecoverable strain in the alloy.
8. A method according to any preceding Claim wherein the overdeforming takes place (a) at a temperature that is less than about the maximum temperature at which martensite can be stress induced, and/or (b) at a temperature that is greater than Ms, and is preferably at a temperature between Ms and As.
9. A method according to any preceding Claim wherein the overdeforming takes place at a first temperature, the method further comprising the step of raising the temperature of the alloy or driver member to a second temperature, which is preferably room temperature, while maintaining the applied strain.
10. A method according to Claim 5, or any Claim dependant theron, wherein the overdeforming takes place at a first temperature and further comprising the step of overdeforming the alloy a second time by applying a stress sufficient to cause nonrecoverable strain in the alloy wherein the second overdeforming takes place at a second temperature which is different from the first temperature, and is preferably room temperature.
11. A method according to any preceding Claim, further comprising the step of heating the alloy to a temperature greater than about As' preferably greater than about Af', so as to effect at least partial recovery of the alloy.
12. A method according to any preceding Claim, wherein the nickel/titanium-based shape memory alloy has an Ms less than about 0°C.
13. A method according to any preceding Claim, wherein the nickel/titanium-based shape memory alloy is stable, does not contain an R phase.
14. A method according to any preceding Claim, wherein the nickel/titanium-based shape memory alloy is (a) a binary alloy, or (b) at least a ternary alloy, preferably a ternary nickel/titanium-based shape memory alloy which consists essentially of nickel, titanium at at least one other element selected from the group consisting of iron, cobalt, vanadium, aluminum, and niobium.
EP85308080A1984-11-061985-11-06A method of processing a nickel/titanium-based shape memory alloy and article produced therefromExpired - LifetimeEP0187452B1 (en)

Priority Applications (1)

Application NumberPriority DateFiling DateTitle
AT85308080TATE60811T1 (en)1984-11-061985-11-06 METHOD OF TREATMENT OF NICKEL-TITANIUM BASED SHAPE MEMORY ALLOY AND ARTICLE MADE THEREOF.

Applications Claiming Priority (4)

Application NumberPriority DateFiling DateTitle
US06/668,771US4631094A (en)1984-11-061984-11-06Method of processing a nickel/titanium-based shape memory alloy and article produced therefrom
US7833711985-10-07
US06/783,371US4740253A (en)1985-10-071985-10-07Method for preassembling a composite coupling
US6687712007-01-30

Publications (2)

Publication NumberPublication Date
EP0187452A1true EP0187452A1 (en)1986-07-16
EP0187452B1 EP0187452B1 (en)1991-02-06

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Family Applications (1)

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EP85308080AExpired - LifetimeEP0187452B1 (en)1984-11-061985-11-06A method of processing a nickel/titanium-based shape memory alloy and article produced therefrom

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EP (1)EP0187452B1 (en)
CA (1)CA1269915A (en)
DE (1)DE3581721D1 (en)

Cited By (9)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
DE3821066A1 (en)*1988-06-221989-12-28Bayerische Motoren Werke AgSafety-belt buckle in a motor vehicle
EP0353816A1 (en)*1988-08-011990-02-07Matsushita Electric Works, Ltd.Shape memory alloy and electric path protective device utilizing the alloy
EP0313070A3 (en)*1987-10-231990-03-14The Furukawa Electric Co., Ltd.Ornament and method of manufacturing the same
EP0419789A1 (en)*1989-08-121991-04-03Krupp Industrietechnik GmbhShape memory alloy
EP0648856A1 (en)*1993-09-221995-04-19The Furukawa Electric Co., Ltd.Eyeglass frame and fabrication method
GB2287955A (en)*1994-03-111995-10-04Nat Res Inst MetalsHigh specific strength, heat resistant Ni-Ti base alloy
ES2089958A2 (en)*1993-02-101996-10-01Gen ElectricShape memory lock fastener
EP1629134A4 (en)*2003-03-252007-12-12Questek Innovations Llc COHERENT NANOD SPERSION RESISTANT FORM MEMORY ALLOYS
CN113481443A (en)*2021-06-182021-10-08武汉大学Method for preparing metal material with adjustable deformation and checking device

Citations (4)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3748197A (en)*1969-05-271973-07-24Robertshaw Controls CoMethod for stabilizing and employing temperature sensitive material exhibiting martensitic transistions
FR2255389A1 (en)*1973-12-211975-07-18Texas Instruments Inc
US3948688A (en)*1975-02-281976-04-06Texas Instruments IncorporatedMartensitic alloy conditioning
US4283233A (en)*1980-03-071981-08-11The United States Of America As Represented By The Secretary Of The NavyMethod of modifying the transition temperature range of TiNi base shape memory alloys

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3748197A (en)*1969-05-271973-07-24Robertshaw Controls CoMethod for stabilizing and employing temperature sensitive material exhibiting martensitic transistions
FR2255389A1 (en)*1973-12-211975-07-18Texas Instruments Inc
US3948688A (en)*1975-02-281976-04-06Texas Instruments IncorporatedMartensitic alloy conditioning
US4283233A (en)*1980-03-071981-08-11The United States Of America As Represented By The Secretary Of The NavyMethod of modifying the transition temperature range of TiNi base shape memory alloys

Cited By (11)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
EP0313070A3 (en)*1987-10-231990-03-14The Furukawa Electric Co., Ltd.Ornament and method of manufacturing the same
DE3821066A1 (en)*1988-06-221989-12-28Bayerische Motoren Werke AgSafety-belt buckle in a motor vehicle
EP0353816A1 (en)*1988-08-011990-02-07Matsushita Electric Works, Ltd.Shape memory alloy and electric path protective device utilizing the alloy
EP0419789A1 (en)*1989-08-121991-04-03Krupp Industrietechnik GmbhShape memory alloy
US5108523A (en)*1989-08-121992-04-28Fried. Krupp GmbhShape memory alloy
ES2089958A2 (en)*1993-02-101996-10-01Gen ElectricShape memory lock fastener
EP0648856A1 (en)*1993-09-221995-04-19The Furukawa Electric Co., Ltd.Eyeglass frame and fabrication method
GB2287955A (en)*1994-03-111995-10-04Nat Res Inst MetalsHigh specific strength, heat resistant Ni-Ti base alloy
GB2287955B (en)*1994-03-111998-02-11Nat Res Inst MetalsHigh specific strength, heat resistant NiTi-base alloys
EP1629134A4 (en)*2003-03-252007-12-12Questek Innovations Llc COHERENT NANOD SPERSION RESISTANT FORM MEMORY ALLOYS
CN113481443A (en)*2021-06-182021-10-08武汉大学Method for preparing metal material with adjustable deformation and checking device

Also Published As

Publication numberPublication date
EP0187452B1 (en)1991-02-06
DE3581721D1 (en)1991-03-14
CA1269915A (en)1990-06-05

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