Fatigue of highly strengthened Cu-Ag alloys

[1]  L. Schultz,et al.  Effect of Zr additions on the microstructure, and the mechanical and electrical properties of Cu–7 wt.%Ag alloys , 2006 .

[2]  H. Maier,et al.  Cyclic stress–strain response and low-cycle fatigue damage in ultrafine grained copper , 2005 .

[3]  Tao Peng,et al.  Advanced numerical simulation of pulsed magnets with a finite element method , 2005 .

[4]  C.A. Swenson,et al.  Materials for 100 T monocoil magnets , 2004, IEEE Transactions on Applied Superconductivity.

[5]  H. Schneider-Muntau,et al.  Pulse magnet development program at NHMFL , 2004, IEEE Transactions on Applied Superconductivity.

[6]  L. Schultz,et al.  Microstructural evolution and its effect on the mechanical properties of Cu-Ag microcomposites , 2004 .

[7]  L. Thilly,et al.  Established and Emerging Materials for use as High‐Field Magnet Conductors , 2004 .

[8]  J. Billette,et al.  Experimental analysis of mechanical and electrical aging in pulsed magnets , 2004 .

[9]  H. Schneider-Muntau,et al.  Progress of the insert coil for the US-NHMFL 100 T multi-shot pulse magnet , 2004 .

[10]  J. Embury,et al.  Perspectives for Cu/SS macrocomposite and Cu/X nanofilamentary conductors used in non-destructive high-field pulsed magnets under cryogenic conditions , 2004 .

[11]  F. Herlach,et al.  First experiments in fields above 75 T in the European “coilin–coilex” magnet , 2004 .

[12]  Fritz Herlach,et al.  Development of reliable 70 T pulsed magnets , 2003 .

[13]  Frank Pobell,et al.  The High Field Project at Dresden/Rossendorf: A Pulsed 100 T/10 ms Laboratory at an Infrared Free-Electron-Laser Facility , 2003 .

[14]  J. Freudenberger,et al.  Mechanical behaviour of high nitrogen stainless steel reinforced conductor for use in pulsed high field magnets at cryogenic temperature , 2003 .

[15]  L. Schultz,et al.  Mechanical properties of Cu‐based Micro‐ and Macrocomposites , 2002 .

[16]  E. Snoeck,et al.  Optimization of high strength materials : Design of the engineering parameters through the nanostructure characterization , 2001 .

[17]  G. W. Ellis,et al.  The U.S. NHMFL 100 Tesla multi-shot magnet , 2001 .

[18]  Meimei Li,et al.  Fracture behavior of high-strength, high-conductivity copper alloys , 2000 .

[19]  G. Coffe,et al.  Ultra high strength nanocomposite conductors for pulsed magnet windings , 2000, IEEE Transactions on Applied Superconductivity.

[20]  F. Herlach Magnets for the 21st century , 1998 .

[21]  H. Jones,et al.  Progress in high-field pulsed magnets and conductor development in Oxford , 1998 .

[22]  Y. Eyssa,et al.  Comparative analysis of micro-composite and macro-composite conductors for pulse magnets , 1996 .

[23]  Fritz Herlach,et al.  Approaching 100 T with wire wound coils , 1996 .

[24]  K. R. Anderson,et al.  Low-Cycle fatigue of dispersion-strengthened copper , 1994 .

[25]  J. Polák,et al.  Fatigue damage in polycrystalline copper below the fatigue limit , 1994 .

[26]  H. Maeda,et al.  Development of Cu-Ag alloys conductor for high field magnet , 1994 .

[27]  M. Oshikiri,et al.  Cu-Ag wire pulsed magnets with and without internal reinforcements , 1994 .

[28]  E. Macherauch,et al.  Microstructure and cyclic deformation behaviour of plain carbon and low-alloyed steels , 1990 .

[29]  L. Kunz,et al.  Effect of low temperatures on the cyclic stress-strain response and high cycle fatigue life of polycrystalline copper , 1988 .

[30]  F. Herlach,et al.  50 tesla pulsed magnets using a copper conductor externally reinforced with stainless steel , 1988 .

[31]  N. M. Grinberg,et al.  The fatigue life and plastic deformation character of copper at low temperatures , 1983 .

[32]  C. Laird,et al.  High strain fatigue fracture mechanisms in two phase alloys , 1974 .

[33]  L. Schultz,et al.  Microstructure and Mechanical Properties of Cu-Ag Microcomposites for Conductor Wires in Pulsed High-Field Magnets , 2002 .

[34]  F. Herlach,et al.  Multi-composite wires for pulsed field coils , 2001 .

[35]  F. Herlach,et al.  Zylon-reinforced high magnetic field coils for the K.U. Leuven pulsed field laboratory , 2001 .