40
X. Sun et al.
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Yearbook (2004–2011)
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Health Statistics Yearbook (2019). China Union Medical University Press.
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memory alloy for fabrication of miniature devices. Opt. Lasers Eng. 44(10), 1078–1087 (2006)
7. Li, C., Johnson, D., Kovacevic, R.: Modeling of waterjet guided laser grooving of silicon. Int.
J. Mach. Tools Manuf 43(9), 925–936 (2003)
8. Mai, T., Richerzhagen. B., Snowdon, P.C., Wood, D., Maropoulos, P.G.: The laser MicroJet
(LMJ): A multi-solution technology for high quality micro-machining. Proc. SPIE 6459(1),
64590P-64590P-7 (2007)
9. Manley, J., Housh, R., Wagner, F., Richerzhagen, B.: Water-guided lasers create clean cuts.
Laser Focus World 40(5), S15–S18 (2004)
10. Richerzhagen, B., Housh, R., Wagner, F., Manley, J.: Water jet guided laser cutting: a powerful
hybrid technology for fine cutting and grooving. In: Progress in Theoretical Chemistry and
Physics (2004)
11. Richerzhagen, B., Kutsuna, M., Okada, H., Ikeda, T.: Waterjet-guided laser processing. Proc.
SPIE 4830(1), 91–94 (2003)
12. Hock, K., Adelmann, B., Hellmann, R.: Comparative study of remote fiber laser and water-jet
guided laser cutting of thin metal sheets. Phys. Procedia 39, 225–231 (2012)
13. Meng, H.Y., Liao, J.H., Guan, B.G., et al.: Fiber Laser Cutting Technology on Coronary Artery
Stent. Chin. J. Lasers 34(5), 733–736 (2007)
14. Lv, S., Wang, Y.: An investigation of pulsed laser cutting of titanium alloy sheet. Opt. Lasers
Eng. 44(10), 1067–1077 (2006)
15. Raval, A., Choubey, A., Engineer, C., Kothwala, D.: Development and assessment of 316LVM
cardiovascular stents. Mater. Sci. Eng. A 386(1–2), 331–343 (2004)
16. Wever, D.J., Veldhuizen, A.G., de Vries, J., Busscher, H.J., Uges, D.R.A., van Horn, J.R.:
Electrochemical and surface characterization of a nickel-titanium alloy. Biomaterials 19(7–9),
761–769 (1998)
X. Sun et al.
References
1. Garg, S., Serruys, W.P.: Coronary stents current status. J. Am. Coll. Cardiol. 56, 1–42 (2010)
2. Issued by the Ministry of Health of the People’s Republic of China. China Health Statistics
Yearbook (2004–2011)
3. Prepared by the state health and Health Commission of the People’s Republic of China. China
Health Statistics Yearbook (2019). China Union Medical University Press.
4. Duerig, T., Pelton, A., Stöckel, D.: An overview of nitinol medical applications. Mater. Sci.
Eng. A 273–275, 149–160 (1999)
5. Wu, M.H.: Fabrication of nitinol materials and components. In: Proceeding of the International Conference on Shape Memory and Superelastic Technologies, pp. 285–292. Trans Tech
Publications. Kunming, China (2001).
6. Li, C., Nikumb, S., Wong, F.: An optimal process of femtosecond laser cutting of NiTi shape
memory alloy for fabrication of miniature devices. Opt. Lasers Eng. 44(10), 1078–1087 (2006)
7. Li, C., Johnson, D., Kovacevic, R.: Modeling of waterjet guided laser grooving of silicon. Int.
J. Mach. Tools Manuf 43(9), 925–936 (2003)
8. Mai, T., Richerzhagen. B., Snowdon, P.C., Wood, D., Maropoulos, P.G.: The laser MicroJet
(LMJ): A multi-solution technology for high quality micro-machining. Proc. SPIE 6459(1),
64590P-64590P-7 (2007)
9. Manley, J., Housh, R., Wagner, F., Richerzhagen, B.: Water-guided lasers create clean cuts.
Laser Focus World 40(5), S15–S18 (2004)
10. Richerzhagen, B., Housh, R., Wagner, F., Manley, J.: Water jet guided laser cutting: a powerful
hybrid technology for fine cutting and grooving. In: Progress in Theoretical Chemistry and
Physics (2004)
11. Richerzhagen, B., Kutsuna, M., Okada, H., Ikeda, T.: Waterjet-guided laser processing. Proc.
SPIE 4830(1), 91–94 (2003)
12. Hock, K., Adelmann, B., Hellmann, R.: Comparative study of remote fiber laser and water-jet
guided laser cutting of thin metal sheets. Phys. Procedia 39, 225–231 (2012)
13. Meng, H.Y., Liao, J.H., Guan, B.G., et al.: Fiber Laser Cutting Technology on Coronary Artery
Stent. Chin. J. Lasers 34(5), 733–736 (2007)
14. Lv, S., Wang, Y.: An investigation of pulsed laser cutting of titanium alloy sheet. Opt. Lasers
Eng. 44(10), 1067–1077 (2006)
15. Raval, A., Choubey, A., Engineer, C., Kothwala, D.: Development and assessment of 316LVM
cardiovascular stents. Mater. Sci. Eng. A 386(1–2), 331–343 (2004)
16. Wever, D.J., Veldhuizen, A.G., de Vries, J., Busscher, H.J., Uges, D.R.A., van Horn, J.R.:
Electrochemical and surface characterization of a nickel-titanium alloy. Biomaterials 19(7–9),
761–769 (1998)
