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PMID: 26241890 Published · ppublish English

A statistical approach to understand the role of inclusions on the fatigue resistance of superelastic Nitinol wire and tubing.

Robertson Scott W, Launey Maximilien, Shelley Oren, Ong Ich, Vien Lot, Senthilnathan Karthike, Saffari Payman, Schlegel Scott, Pelton Alan R

Abstract

Superelastic wires and diamond-shaped stent surrogates were manufactured from Nitinol rods and tubing, respectively, from five different mill product suppliers - Standard VAR, Standard VIM, Standard VIM+VAR, Process-Optimized VIM+VAR, and High-Purity VAR. High-cycle fatigue tests up to 10(7) cycles were conducted under tension-tension conditions for wires and bending conditions for diamonds. These materials were compared under both testing methods at 37°C with 6% prestrain and 3% mean strain (unloading plateau) with a range of alternating strains. The High-Purity VAR material outperformed all alloys tested with a measured 10(7)-fatigue alternating strain limit of 0.32% for wire and 1.75% for diamonds. Process-Optimized VIM+VAR material was only slightly inferior to the High Purity VAR with a diamond alternating bending strain limit of 1.5%. These two "second generation" Nitinol alloys demonstrated approximately a 2× increase in 10(7)-cycle fatigue strain limit compared to all of the Standard-grade Nitinol alloys (VAR, VIM, and VIM+VAR) that demonstrated virtually indistinguishable fatigue performance. This statistically-significant increase in fatigue resistance in the contemporary alloys is ascribed to smaller inclusions in the Process-Optimized VIM+VAR material, and both smaller and fewer inclusions in the High-Purity VAR Nitinol.

Keywords
Fatigue Inclusions Microstructure NMIs Nitinol
MeSH 主题词
Alloys Elasticity Materials Testing Stents Stress, Mechanical
Article Info
Journal
Journal of the mechanical behavior of biomedical materials
Abbr.
J Mech Behav Biomed Mater
Published
2016-06-24
Indexed
2015-09-24
Updated
2016-11-25
Language
English
Country/Region
Netherlands
NLM ID
101322406
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