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Erschienen in: Journal of Materials Science 18/2019

10.06.2019 | Ceramics

Thermal behaviour of actinolite asbestos

verfasst von: Andrea Bloise

Erschienen in: Journal of Materials Science | Ausgabe 18/2019

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Abstract

Actinolite is one of the six minerals belonging to the group of asbestos minerals. There is increasing concern regarding the potential health risks from exposure to naturally occurring asbestos and asbestos-containing materials. The correct distinction of the fibrous asbestos minerals is very important not only from a scientific point of view, but also from a legislative perspective. Asbestos actinolite is currently the only asbestos mineral that has not been fully characterized from the thermal point of view. In order to compensate for this gap in scientific literature, this paper discusses the thermal behaviour of actinolite asbestos using thermogravimetric and differential scanning calorimetry. X-ray powder diffraction, Scanning and Transmission Electron Microscopy combined with energy-dispersive spectrometry were used for the characterization of actinolite fibres before and after heating at 1000 and 1200 °C in order to determine their resistance to high-temperature changes and the products of thermal recrystallization. Actinolite asbestos breaks down at approximately 1030 °C. The thermal decomposition process of actinolite asbestos consists of two distinct events followed by recrystallization into new stable crystalline phases which preserved the original fibrous morphology (known as pseudomorphosis). The thermal analysis may prove to be useful for actinolite identification and discrimination, particularly in the case of natural massive samples where asbestos tremolite–actinolite amphiboles are mutually intermixed. Furthermore, profound knowledge of the thermal behaviour of this asbestos mineral may provide us with the relevant data for understanding the crystal–chemical transformations of asbestos through thermal inertization treatment.

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Literatur
1.
Zurück zum Zitat Evans BW, Yang H (1998) Fe–Mg order-disorder in tremolite–actinolite–ferro-actinolite at ambient and high temperature. Am Miner 83:458–475CrossRef Evans BW, Yang H (1998) Fe–Mg order-disorder in tremolite–actinolite–ferro-actinolite at ambient and high temperature. Am Miner 83:458–475CrossRef
2.
Zurück zum Zitat Hawthorne FC, Oberti R (2007) Amphiboles: crystal chemistry. In: Hawthorne FC, Oberti R, Della Ventura G, Mottana A (eds) Amphiboles: crystal chemistry, occurrence, and health issues. Mineralogical Society of America and Geochemical Society, Chantilly, pp 1–54CrossRef Hawthorne FC, Oberti R (2007) Amphiboles: crystal chemistry. In: Hawthorne FC, Oberti R, Della Ventura G, Mottana A (eds) Amphiboles: crystal chemistry, occurrence, and health issues. Mineralogical Society of America and Geochemical Society, Chantilly, pp 1–54CrossRef
3.
Zurück zum Zitat Ballirano P, Bloise A, Gualtieri AF, Lezzerini M, Pacella A, Perchiazzi N, Dogan M, Dogan AU (2017) The crystal structure of mineral fibres. In: Gualtieri AF (ed) Mineral fibres: crystal chemistry, chemical-physical properties, biological interaction and toxicity. European Mineralogical Union, London, pp 17–53CrossRef Ballirano P, Bloise A, Gualtieri AF, Lezzerini M, Pacella A, Perchiazzi N, Dogan M, Dogan AU (2017) The crystal structure of mineral fibres. In: Gualtieri AF (ed) Mineral fibres: crystal chemistry, chemical-physical properties, biological interaction and toxicity. European Mineralogical Union, London, pp 17–53CrossRef
4.
Zurück zum Zitat WHO, World Health Organization (1986) Asbestos and other natural mineral fibres environmental health criteria. No. 53 World Health Organization, Geneva WHO, World Health Organization (1986) Asbestos and other natural mineral fibres environmental health criteria. No. 53 World Health Organization, Geneva
5.
Zurück zum Zitat NIOSH: National Institute for Occupational Safety and Health (2011) Asbestos fibers and other elongate mineral particles: state of the science and roadmap for research. Current Intelligence Bulletin. 62 Cincinnati, USA NIOSH: National Institute for Occupational Safety and Health (2011) Asbestos fibers and other elongate mineral particles: state of the science and roadmap for research. Current Intelligence Bulletin. 62 Cincinnati, USA
6.
Zurück zum Zitat IARC (1987) Overall evaluations of carcinogenicity: an updating of IARC monographs volumes 1 to 42. International Agency for Research on Cancer, Lyon IARC (1987) Overall evaluations of carcinogenicity: an updating of IARC monographs volumes 1 to 42. International Agency for Research on Cancer, Lyon
7.
Zurück zum Zitat Paglietti F, Malinconico S, Della Staffa BC, Bellagamba S, De Simone P (2016) Classification and management of asbestos-containing waste: European legislation and the Italian experience. Waste Manag 50:130–150CrossRef Paglietti F, Malinconico S, Della Staffa BC, Bellagamba S, De Simone P (2016) Classification and management of asbestos-containing waste: European legislation and the Italian experience. Waste Manag 50:130–150CrossRef
8.
Zurück zum Zitat Gualtieri AF (2012) Mineral fiber-based building materials and their health hazards. In: Pacheco-Torgal F, Jalali S, Fucic A (eds) Toxicity of building materials. Woodhead Publishing, Sawston, pp 166–195CrossRef Gualtieri AF (2012) Mineral fiber-based building materials and their health hazards. In: Pacheco-Torgal F, Jalali S, Fucic A (eds) Toxicity of building materials. Woodhead Publishing, Sawston, pp 166–195CrossRef
9.
Zurück zum Zitat Virta RL (2005) Mineral commodity profiles-asbestos. US Geological Survey Circular 1255–KK, Washington, pp 1–56 Virta RL (2005) Mineral commodity profiles-asbestos. US Geological Survey Circular 1255–KK, Washington, pp 1–56
10.
Zurück zum Zitat Sullivan JB, Krieger GR (2001) Clinical environmental health and toxic exposures. Lippincott, Williams, Wilkins, Philadelphia, pp 1–1344 Sullivan JB, Krieger GR (2001) Clinical environmental health and toxic exposures. Lippincott, Williams, Wilkins, Philadelphia, pp 1–1344
11.
Zurück zum Zitat Yano E, Wang ZM, Wang XR, Wang MZ, Lan YJ (2001) Cancer mortality among workers exposed to amphibole-free chrysotile asbestos. Am J Epidemiol 154:538–543CrossRef Yano E, Wang ZM, Wang XR, Wang MZ, Lan YJ (2001) Cancer mortality among workers exposed to amphibole-free chrysotile asbestos. Am J Epidemiol 154:538–543CrossRef
12.
Zurück zum Zitat Gunter ME, Sanchez MS, Williams TJ (2007) Characterization of chrysotile samples for the presence of amphiboles: the Carey Canadian Deposit, Southeastern Quebec, Canada. Can Miner 42(2):263–280CrossRef Gunter ME, Sanchez MS, Williams TJ (2007) Characterization of chrysotile samples for the presence of amphiboles: the Carey Canadian Deposit, Southeastern Quebec, Canada. Can Miner 42(2):263–280CrossRef
13.
Zurück zum Zitat Kakooei H, Marioryad H (2010) Evaluation of exposure to the airborne asbestos in an automobile brake and clutch manufacturing industry in Iran. Regul Toxicol Pharmacol 56(2):143–147CrossRef Kakooei H, Marioryad H (2010) Evaluation of exposure to the airborne asbestos in an automobile brake and clutch manufacturing industry in Iran. Regul Toxicol Pharmacol 56(2):143–147CrossRef
14.
Zurück zum Zitat Frank AL, Joshi TK (2014) The global spread of asbestos. Ann Glob Health 80(4):257–262CrossRef Frank AL, Joshi TK (2014) The global spread of asbestos. Ann Glob Health 80(4):257–262CrossRef
15.
Zurück zum Zitat Geological Survey US, January 2016 Mineral Commodity Summaries Geological Survey US, January 2016 Mineral Commodity Summaries
16.
Zurück zum Zitat Suzuki Y, Yuen SR (2002) Asbestos fibers contributing to the induction of human malignant mesothelioma. Ann N Y Acad Sci 982(1):160–176CrossRef Suzuki Y, Yuen SR (2002) Asbestos fibers contributing to the induction of human malignant mesothelioma. Ann N Y Acad Sci 982(1):160–176CrossRef
17.
Zurück zum Zitat Fujiwara H, Kamimori T, Morinaga K, Takeda Y, Kohyama N, Miki Y, Inai K, Yamamoto S (2005) An autopsy case of primary pericardial mesothelioma in arc cutter exposed to asbestos through talc pencils. Ind Health 43(2):346–350CrossRef Fujiwara H, Kamimori T, Morinaga K, Takeda Y, Kohyama N, Miki Y, Inai K, Yamamoto S (2005) An autopsy case of primary pericardial mesothelioma in arc cutter exposed to asbestos through talc pencils. Ind Health 43(2):346–350CrossRef
18.
Zurück zum Zitat Spasiano D, Pirozzi F (2017) Treatments of asbestos containing wastes. J Environ Manag 204:82–91CrossRef Spasiano D, Pirozzi F (2017) Treatments of asbestos containing wastes. J Environ Manag 204:82–91CrossRef
19.
Zurück zum Zitat Bloise A, Catalano M, Gualtieri AF (2018) Effect of grinding on chrysotile, amosite and crocidolite and implications for thermal treatment. Minerals 8:135CrossRef Bloise A, Catalano M, Gualtieri AF (2018) Effect of grinding on chrysotile, amosite and crocidolite and implications for thermal treatment. Minerals 8:135CrossRef
20.
Zurück zum Zitat Bloise A, Kusiorowski R, Gualtieri AF (2018) The effect of grinding on tremolite asbestos and anthophyllite asbestos. Minerals 8:274CrossRef Bloise A, Kusiorowski R, Gualtieri AF (2018) The effect of grinding on tremolite asbestos and anthophyllite asbestos. Minerals 8:274CrossRef
21.
Zurück zum Zitat Spasiano D, Luongo V, Petrella A, Alfè M, Pirozzi F, Fratino U, Piccinni AF (2017) Preliminary study on the adoption of dark fermentation as pretreatment for a sustainable hydrothermal denaturation of cement-asbestos composites. J Clean Prod 166:172–180CrossRef Spasiano D, Luongo V, Petrella A, Alfè M, Pirozzi F, Fratino U, Piccinni AF (2017) Preliminary study on the adoption of dark fermentation as pretreatment for a sustainable hydrothermal denaturation of cement-asbestos composites. J Clean Prod 166:172–180CrossRef
22.
Zurück zum Zitat Viani A, Gualtieri AF (2014) Preparation of magnesium phosphate cement by recycling the product of thermal transformation of asbestos containing wastes. Cem Concr Res 58:56–66CrossRef Viani A, Gualtieri AF (2014) Preparation of magnesium phosphate cement by recycling the product of thermal transformation of asbestos containing wastes. Cem Concr Res 58:56–66CrossRef
24.
Zurück zum Zitat Gualtieri AF, Giacobbe C, Sardisco L, Saraceno M, Gualtieri ML, Lusvardi G, Cavenati C, Zanatto I (2011) Recycling of the product of thermal inertization of cement–asbestos for various industrial applications. Waste Manag 31(1):91–100CrossRef Gualtieri AF, Giacobbe C, Sardisco L, Saraceno M, Gualtieri ML, Lusvardi G, Cavenati C, Zanatto I (2011) Recycling of the product of thermal inertization of cement–asbestos for various industrial applications. Waste Manag 31(1):91–100CrossRef
25.
Zurück zum Zitat Directive 2003/18/CE of the European Parliament and of the European Council of 27 March 2003 Directive 2003/18/CE of the European Parliament and of the European Council of 27 March 2003
26.
Zurück zum Zitat Bloise A, Kusiorowski R, Lassinantti Gualtieri M, Gualtieri AF (2017) Thermal behaviour of mineral fibres. In: Gualtieri AF (ed) Mineral fibres: crystal chemistry, chemical–physical properties, biological interaction and toxicity. European Mineralogical Union, London, pp 215–252CrossRef Bloise A, Kusiorowski R, Lassinantti Gualtieri M, Gualtieri AF (2017) Thermal behaviour of mineral fibres. In: Gualtieri AF (ed) Mineral fibres: crystal chemistry, chemical–physical properties, biological interaction and toxicity. European Mineralogical Union, London, pp 215–252CrossRef
27.
Zurück zum Zitat Van Oss CJ, Naim JO, Costanzo PM, Giese RF Jr, Wu W, Sorling AF (1999) Impact of different asbestos species and other mineral particles on pulmonary pathogenesis. Clays Clay Miner 47:697–707CrossRef Van Oss CJ, Naim JO, Costanzo PM, Giese RF Jr, Wu W, Sorling AF (1999) Impact of different asbestos species and other mineral particles on pulmonary pathogenesis. Clays Clay Miner 47:697–707CrossRef
28.
Zurück zum Zitat Baumann F, Buck BJ, Metcalf RV, McLaurin BT, Merkler DJ, Carbone M (2015) The presence of asbestos in the natural environment is likely related to mesothelioma in young individuals and women from Southern Nevada. J Thorac Oncol 10(5):731–737CrossRef Baumann F, Buck BJ, Metcalf RV, McLaurin BT, Merkler DJ, Carbone M (2015) The presence of asbestos in the natural environment is likely related to mesothelioma in young individuals and women from Southern Nevada. J Thorac Oncol 10(5):731–737CrossRef
29.
Zurück zum Zitat Harper M (2008) 10th anniversary critical review: naturally occurring asbestos. J Environ Monit 10(12):1394–1408CrossRef Harper M (2008) 10th anniversary critical review: naturally occurring asbestos. J Environ Monit 10(12):1394–1408CrossRef
30.
Zurück zum Zitat Swayze GA, Kokaly RF, Higgins CT, Clinkenbeard JP, Clark RN, Lowers HA, Sutley SJ (2009) Mapping potentially asbestos-bearing rocks using imaging spectroscopy. Geology 37(8):763–766CrossRef Swayze GA, Kokaly RF, Higgins CT, Clinkenbeard JP, Clark RN, Lowers HA, Sutley SJ (2009) Mapping potentially asbestos-bearing rocks using imaging spectroscopy. Geology 37(8):763–766CrossRef
31.
Zurück zum Zitat Bloise A, Belluso E, Critelli T, Catalano M, Apollaro C, Miriello D, Barrese E (2012) Amphibole asbestos and other fibrous minerals in the meta-basalt of the Gimigliano-Mount Reventino Unit (Calabria, south-Italy). Rend Online Soc Geol It 21(2):847–848 Bloise A, Belluso E, Critelli T, Catalano M, Apollaro C, Miriello D, Barrese E (2012) Amphibole asbestos and other fibrous minerals in the meta-basalt of the Gimigliano-Mount Reventino Unit (Calabria, south-Italy). Rend Online Soc Geol It 21(2):847–848
32.
Zurück zum Zitat Buck BJ, Goossens D, Metcalf RV, McLaurin B, Ren M, Freudenberger F (2013) Naturally occurring asbestos: potential for human exposure, Southern Nevada, USA. Soil Sci Soc Am J 77(6):2192–2204CrossRef Buck BJ, Goossens D, Metcalf RV, McLaurin B, Ren M, Freudenberger F (2013) Naturally occurring asbestos: potential for human exposure, Southern Nevada, USA. Soil Sci Soc Am J 77(6):2192–2204CrossRef
33.
Zurück zum Zitat Vignaroli G, Ballirano P, Belardi G, Rossetti F (2014) Asbestos fibre identification versus evaluation of asbestos hazard in ophiolitic rock mélanges, a case study from the Ligurian Alps (Italy). Environ Earth Sci 72(9):3679–3698CrossRef Vignaroli G, Ballirano P, Belardi G, Rossetti F (2014) Asbestos fibre identification versus evaluation of asbestos hazard in ophiolitic rock mélanges, a case study from the Ligurian Alps (Italy). Environ Earth Sci 72(9):3679–3698CrossRef
34.
Zurück zum Zitat Bloise A, Critelli T, Catalano M, Apollaro C, Miriello D, Croce A, Barrese E, Liberi F, Piluso E, Rinaudo C, Belluso E (2014) Asbestos and other fibrous minerals contained in the serpentinites of the Gimigliano-Mount Reventino Unit (Calabria, S-Italy). Environ Earth Sci 71:3773–3786CrossRef Bloise A, Critelli T, Catalano M, Apollaro C, Miriello D, Croce A, Barrese E, Liberi F, Piluso E, Rinaudo C, Belluso E (2014) Asbestos and other fibrous minerals contained in the serpentinites of the Gimigliano-Mount Reventino Unit (Calabria, S-Italy). Environ Earth Sci 71:3773–3786CrossRef
35.
Zurück zum Zitat Punturo R, Bloise A, Critelli T, Catalano M, Fazio E, Apollaro C (2015) Environmental implications related to natural asbestos occurrences in the ophiolites of the Gimigliano-Mount Reventino Unit (Calabria, Southern Italy). Int J Environ Res 9:405–418 Punturo R, Bloise A, Critelli T, Catalano M, Fazio E, Apollaro C (2015) Environmental implications related to natural asbestos occurrences in the ophiolites of the Gimigliano-Mount Reventino Unit (Calabria, Southern Italy). Int J Environ Res 9:405–418
37.
Zurück zum Zitat Perkins RA, Hargesheimer J, Fourie W (2007) Asbestos release from wholebuilding demolition of buildings with asbestos-containing material. J Occup Environ Hyg 4:889–894CrossRef Perkins RA, Hargesheimer J, Fourie W (2007) Asbestos release from wholebuilding demolition of buildings with asbestos-containing material. J Occup Environ Hyg 4:889–894CrossRef
38.
Zurück zum Zitat Kashimura K, Yamaguchi T, Sato M, Yoneda S, Kishima T, Horikoshi S, Yoshikawa N, Mitani T, Shinohara N (2015) Rapid transformation of asbestos into harmless waste by a microwave rotary furnace: application of microwave heating to rubble processing of the 2011 Tohoku earthquake. J Hazard Toxic Radioact Waste 19(3):04014041–04014048CrossRef Kashimura K, Yamaguchi T, Sato M, Yoneda S, Kishima T, Horikoshi S, Yoshikawa N, Mitani T, Shinohara N (2015) Rapid transformation of asbestos into harmless waste by a microwave rotary furnace: application of microwave heating to rubble processing of the 2011 Tohoku earthquake. J Hazard Toxic Radioact Waste 19(3):04014041–04014048CrossRef
39.
Zurück zum Zitat Bloise A, Punturo R, Catalano M, Miriello D, Cirrincione R (2016) Naturally occurring asbestos (NOA) in rock and soil and relation with human activities: the monitoring example of selected sites in Calabria (southern Italy). Ital J Geosci 135(2):268–279CrossRef Bloise A, Punturo R, Catalano M, Miriello D, Cirrincione R (2016) Naturally occurring asbestos (NOA) in rock and soil and relation with human activities: the monitoring example of selected sites in Calabria (southern Italy). Ital J Geosci 135(2):268–279CrossRef
40.
Zurück zum Zitat Belluso E, Cavallo A, Halterman D (2017) Crystal habit of mineral fibres. In: Gualtieri AF (ed) Mineral fibres: crystal chemistry, chemical–physical properties, biological interaction and toxicity. European Mineralogical Union, London, pp 65–109CrossRef Belluso E, Cavallo A, Halterman D (2017) Crystal habit of mineral fibres. In: Gualtieri AF (ed) Mineral fibres: crystal chemistry, chemical–physical properties, biological interaction and toxicity. European Mineralogical Union, London, pp 65–109CrossRef
41.
Zurück zum Zitat Viti C (2010) Serpentine minerals discrimination by thermal analysis. Am Miner 95:631–638CrossRef Viti C (2010) Serpentine minerals discrimination by thermal analysis. Am Miner 95:631–638CrossRef
42.
Zurück zum Zitat Vermaas FHS (1952) The amphibole asbestos of South Africa. S Afr J Geol 55(1):199–229 Vermaas FHS (1952) The amphibole asbestos of South Africa. S Afr J Geol 55(1):199–229
43.
Zurück zum Zitat Ishida K, Hawthorne FC, Ando Y (2002) Fine structure of infrared OH-stretching bands in natural and heat-treated amphiboles of the tremolite-ferro-actinolite series. Am Min 87:891–898CrossRef Ishida K, Hawthorne FC, Ando Y (2002) Fine structure of infrared OH-stretching bands in natural and heat-treated amphiboles of the tremolite-ferro-actinolite series. Am Min 87:891–898CrossRef
44.
Zurück zum Zitat Catalano M, Belluso E, Miriello D, Barrese E, Bloise A (2014) Synthesis of Zn-doped talc in hydrothermal atmosphere. Cryst Res Technol 49:283–292CrossRef Catalano M, Belluso E, Miriello D, Barrese E, Bloise A (2014) Synthesis of Zn-doped talc in hydrothermal atmosphere. Cryst Res Technol 49:283–292CrossRef
45.
Zurück zum Zitat Jones AA (1981) Charges on the surfaces of two chlorites. Clay Miner 16:347–359CrossRef Jones AA (1981) Charges on the surfaces of two chlorites. Clay Miner 16:347–359CrossRef
46.
Zurück zum Zitat Leake BE, Woolley AR, Arps CES, Birch WD, Gilbert MC, Grice JD, Hawthorne FC, Kato A, Kisch HJ, Krivovichev VG, Linthout K, Laird J, Mandarino JA, Maresch VW, Nickel EH, Rock NMS, Schumacher JC, Smith DC, Stephenson NN, Ungaretti L, Withtaker EJW, Youzhi G (1997) Nomenclature of amphiboles: report of the subcommittee on amphiboles of the International Mineralogical Association, Commission on New Minerals and Mineral Names. Am Miner 82:1019–1037 Leake BE, Woolley AR, Arps CES, Birch WD, Gilbert MC, Grice JD, Hawthorne FC, Kato A, Kisch HJ, Krivovichev VG, Linthout K, Laird J, Mandarino JA, Maresch VW, Nickel EH, Rock NMS, Schumacher JC, Smith DC, Stephenson NN, Ungaretti L, Withtaker EJW, Youzhi G (1997) Nomenclature of amphiboles: report of the subcommittee on amphiboles of the International Mineralogical Association, Commission on New Minerals and Mineral Names. Am Miner 82:1019–1037
47.
Zurück zum Zitat Patterson JH (1965) The thermal disintegration of crocidolite in air and in vacuum. Miner Mag 35(269):31–37 Patterson JH (1965) The thermal disintegration of crocidolite in air and in vacuum. Miner Mag 35(269):31–37
48.
Zurück zum Zitat Giacobbe C, Gualtieri AF, Quartieri S, Rinaudo C, Allegrina M, Andreozzi GB (2010) Spectroscopic study of the product of thermal transformation on chrysotile-asbestos containing materials. Eur J Miner 22:535–546CrossRef Giacobbe C, Gualtieri AF, Quartieri S, Rinaudo C, Allegrina M, Andreozzi GB (2010) Spectroscopic study of the product of thermal transformation on chrysotile-asbestos containing materials. Eur J Miner 22:535–546CrossRef
49.
Zurück zum Zitat Hodgson AA (1965) The thermal decomposition of miscellaneous crocidolites. Miner Mag 35:291–305 Hodgson AA (1965) The thermal decomposition of miscellaneous crocidolites. Miner Mag 35:291–305
50.
Zurück zum Zitat Miriello D, Bloise A, De Francesco AM, Crisci GM, Chiaravalloti F, Barca D, La Russa MF, Marasco E (2010) Colour and composition of nodules from the Calabrian clay deposits: a possible raw material for pigments production in Magna Graecia. Period Miner 79:59–69 Miriello D, Bloise A, De Francesco AM, Crisci GM, Chiaravalloti F, Barca D, La Russa MF, Marasco E (2010) Colour and composition of nodules from the Calabrian clay deposits: a possible raw material for pigments production in Magna Graecia. Period Miner 79:59–69
51.
Zurück zum Zitat Bloise A, Catalano M, Barrese E, Gualtieri AF, Gandolfi NB, Capella S, Belluso E (2016) TG/DSC study of the thermal behaviour of hazardous mineral fibres. J Therm Anal Calorim 123:2225–2239CrossRef Bloise A, Catalano M, Barrese E, Gualtieri AF, Gandolfi NB, Capella S, Belluso E (2016) TG/DSC study of the thermal behaviour of hazardous mineral fibres. J Therm Anal Calorim 123:2225–2239CrossRef
52.
Zurück zum Zitat Brindley GW, Youell RF (1953) Ferrous chamosite and ferric chamosite. Miner Mag 30:57–70 Brindley GW, Youell RF (1953) Ferrous chamosite and ferric chamosite. Miner Mag 30:57–70
53.
Zurück zum Zitat Vedder W, Wilkins RWT (1969) Dehydroxylation and rehydroxylation, oxidation and reduction of micas. Am Miner 54(3–4):482–509 Vedder W, Wilkins RWT (1969) Dehydroxylation and rehydroxylation, oxidation and reduction of micas. Am Miner 54(3–4):482–509
54.
Zurück zum Zitat Gualtieri AF, Levy D, Belluso E, Dapiaggi M (2004) Kinetics of the decomposition of crocidolite asbestos: a preliminary real-time X-ray powder diffraction study. Miner Sci Forum 443–444:291–294CrossRef Gualtieri AF, Levy D, Belluso E, Dapiaggi M (2004) Kinetics of the decomposition of crocidolite asbestos: a preliminary real-time X-ray powder diffraction study. Miner Sci Forum 443–444:291–294CrossRef
55.
Zurück zum Zitat Kusiorowski R, Zaremba T, Piotrowski J, Adamek J (2012) Thermal decomposition of different types of asbestos. J Therm Anal Calorim 109:693–704CrossRef Kusiorowski R, Zaremba T, Piotrowski J, Adamek J (2012) Thermal decomposition of different types of asbestos. J Therm Anal Calorim 109:693–704CrossRef
56.
Zurück zum Zitat Pollastri S, Gigli L, Ferretti P, Andreozzi GB, Bursi Gandolfi N, Pollok K, Gualtieri AF (2017) The crystal structure of mineral fibres 3 actinolite asbestos. Period Miner 86:89–98 Pollastri S, Gigli L, Ferretti P, Andreozzi GB, Bursi Gandolfi N, Pollok K, Gualtieri AF (2017) The crystal structure of mineral fibres 3 actinolite asbestos. Period Miner 86:89–98
57.
Zurück zum Zitat Oberti R, Hawthorne FC, Cannillo E, Cámara F (2007) Long-range order in amphiboles. In: Hawthorne FC, Oberti R, Della Ventura G, Mottana A (eds) Amphiboles: crystal chemistry, occurrence, and health issues. Mineralogical Society of America and Geochemical Society, Chantilly, pp 125–172CrossRef Oberti R, Hawthorne FC, Cannillo E, Cámara F (2007) Long-range order in amphiboles. In: Hawthorne FC, Oberti R, Della Ventura G, Mottana A (eds) Amphiboles: crystal chemistry, occurrence, and health issues. Mineralogical Society of America and Geochemical Society, Chantilly, pp 125–172CrossRef
58.
Zurück zum Zitat Hodgson AA, Freeman AG, Taylor H (1965) The thermal decomposition of crocidolite from Koegas, South Africa. Miner Mag 35:5–30 Hodgson AA, Freeman AG, Taylor H (1965) The thermal decomposition of crocidolite from Koegas, South Africa. Miner Mag 35:5–30
59.
Zurück zum Zitat Freeman AG (1966) The dehydroxylation behaviour of amphiboles. Miner Mag 35:953–957 Freeman AG (1966) The dehydroxylation behaviour of amphiboles. Miner Mag 35:953–957
Metadaten
Titel
Thermal behaviour of actinolite asbestos
verfasst von
Andrea Bloise
Publikationsdatum
10.06.2019
Verlag
Springer US
Erschienen in
Journal of Materials Science / Ausgabe 18/2019
Print ISSN: 0022-2461
Elektronische ISSN: 1573-4803
DOI
https://doi.org/10.1007/s10853-019-03738-8

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