PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Worldwide developments in the field of radiation processing of materials in the down of 21st century

Autorzy
Treść / Zawartość
Identyfikatory
Warianty tytułu
Konferencja
Proceedings of the 2nd Polish-Japanese Workshop on Materials Science "Materials for Sustainable Development in the 21st Century" 12-15 October 2005, Warsaw, Poland
Języki publikacji
EN
Abstrakty
EN
Developments regarding the radiation processing of materials are discussed in the paper. Radiation sources are briefly listed, showing recent achievements in the field. The main group of materials modified by radiation are synthetic polymers and rubber. Other applications are irradiation of semiconductors and gemstone colorization. New, growing fields of application are processing of natural polymers and nanomaterials.
Słowa kluczowe
Czasopismo
Rocznik
Strony
3--9
Opis fizyczny
Bibliogr. 33 poz. rys.
Twórcy
  • Department of Nuclear Methods in Process Engineering, Institute of Nuclear Chemistry and Technology, 16 Dorodna Str., 03-195 Warsaw, Poland, Tel.: +48 22 504 1058, Fax: +48 22 811 15 32, a.chmielewski@ichtj.waw.pl
Bibliografia
  • 1. Berejka AJ (2003) Advances in self-shielded accelerators.In: Emerging applications of radiation processing. IAEATECDOC-1386. IAEA, Vienna, pp 65−72
  • 2. Calvo WAP, Rela PR, Springer FE et al. (2004) A small size continuous run industrial gamma irradiator. Radiat Phys Chem 71:561−563
  • 3. Chapiro A (2002) Polymer irradiation: past, present and future. Radiat Phys Chem 63;3/6:207−209
  • 4. Chmielewski AG, Haji-Saeid M (2004) Radiation technologies, past, present and future. Radiat Phys Chem 71:17−21
  • 5. Chmielewski AG, Haji-Saeid M, Shamshad A (2005)Progress in radiation processing of polymers. Nucl Instrum Meth B 236:44−56
  • 6. Chmielewski AG, Michalik J, Buczkowski M, Chmielewska DK (2005) Ionizing radiation in nanotechnology. Nucl Instrum Meth B 236:329−332
  • 7. Cleland MR, Parks LA (2003a) Medium and high-energy electron beam radiation processing equipment for commercial applications. Nucl Instrum Meth B 208:74−89
  • 8. Cleland MR, Parks LA, Cheng S (2003b) Application of accelerators for radiation processing of materials. Nucl Instrum Meth B 208:66−73
  • 9. Drobny JG (2003) Radiation technology for polymers.CRC Press, New York
  • 10. Fei B, Wach RA, Mitomo H, Yoshii F, Kume T (2000)Hydrogel of biodegradable cellulose derivatives. I.Radiation-induced crosslinking of CMC. J Appl Polym Sci 78:278−283
  • 11. Fuochi PG (1994) Irradiation of power semiconductor devices by high energy electrons: the Italian experience.Radiat Phys Chem 44;4:431−440
  • 12. Hien NO, Nagasawa N, Tham LX et al. (2000) Growthpromotion of plants with depolymerised alginates by irradiation. Radiat Phys Chem 59:97−101
  • 13. Hirota Y (2003) LIGA process – micromachining technique using synchrotron radiation lithography – and some industrial applications. Nucl Instrum Meth B 208:21−26
  • 14. IAEA (2003) Directory of commercial radiation processing acilities in member states. Vienna
  • 15. IAEA (2004) Advances in radiation chemistry of polymers. IAEA-TECDOC-1420. Vienna
  • 16. IAEA (2004) Emerging applications of radiation processing. IAEA-TECDOC-1386. Vienna
  • 17. IAEA (2004) Radiation processing of polysaccharides.IAEA-TECDOC-1422. Vienna
  • 18. IAEA (2005) Emerging applications of radiation in nanotechnology.IAEA-TECDOC-1438. Vienna
  • 19. IAEA (2005) Industrial gamma irradiators. Vienna
  • 20. Ila D, Williams EK, Zimmerman RL et al. (2000)Radiation induced nucleation of nanoparticles in silica.Nucl Instrum Meth B 166/167:845−850
  • 21. Iller E, Kukiełka A, Stupińska H, Mikołajczyk W (2002)Electron beam stimulation of the reactivity of cellulose pulps for production of derivatives. Radiat Phys Chem 63;3/6:253−257
  • 22. Joshi SS, Patil SF, Iyer V, Mahumuni S (1998) Radiation induced synthesis and characterization of copper nanoparticle. Nanostruct Mater 10;7:1135−1144
  • 23. Kume T, Nagasawa N, Yoshii F (2002) Utilization of carbohydrates by radiation processing. Radiat Phys Chem 63:625−627
  • 24. Machi S (1995) Radiation technology for sustainable development. Radiat Phys Chem 46;4/6:399−410
  • 25. Makuchi K (2003) An introduction to radiation vulcanisation of natural rubber latex. TRI Global Co., Ltd,Bangkok
  • 26. Masefield J (2004) Reflections on the evolution and current status of the radiation industry. Radiat Phys Chem 71;1/2:9−16
  • 27. Migdał W, Malec-Czechowska K, Owczarczyk HB (1996)Study on application of e−/X convertor for radiation processing. Nukleonika 41;3:57−76
  • 28. Mittendorfer J, Zwanziger P (2000) Application of statistical methods (SPC) for an optimised control of the irradiation process of high-power semiconductors. Radiat Phys Chem 57;3/6:629−634
  • 29. NORDION (2003) Supplies of contract irradiation services. Ottawa
  • 30. Ying W, Yong-bao G (2002) Research on radiation induced color change of topaz. Radiat Phys Chem 63;3/6:223−225
  • 31. Zhao L, Mitomoto H, Nagasawa N, Yoshii F, Kume T (2003) Radiation synthesis and characteristic of the hydrogels based on carboxymethylated chitin derivatives.Carbohyd Polym 51:169−175
  • 32. Zimek Z, Chmielewski AG (1993a) Present tendencies in construction of industrial accelerators applied in radiation processing. Nukleonika 38;2:3−20
  • 33. Zimek Z, Rzewuski H, Migdał W (1995) Electron accelerators installed at the Institute of Nuclear Chemistry and Technology. Nukleonika 40;3:93−114
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUJ5-0003-0019
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.