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Efficiency of Stripping Mechanisms

Published online by Cambridge University Press:  26 May 2016

Françoise Combes*
Affiliation:
Observatoire de Paris, 61 Av. de l'Observatoire, F-75 014, Paris, France

Abstract

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There are several physical processes to remove gas from galaxies in clusters, with subsequent starvation and star formation quenching: tidal interactions between galaxies, or tidal stripping from the cluster potential itself, interactions with the hot intra-cluster medium (ICM) through ram pressure, turbulent or viscous stripping, or also outflows from star formation of nuclear activity, We review the observational evidence for all processes, and numerical simulations of galaxies in clusters which support the respective mechanisms. This allows to compare their relative efficiencies, all along cluster formation.

Type
Part 3. Ejection and Outflow
Copyright
Copyright © Astronomical Society of the Pacific 2004 

References

Abadi, M.G., Moore, B., Bower, R.G. 1999, MNRAS 308, 947.CrossRefGoogle Scholar
Arnaboldi, M., Aguerri, J., Napolitano, N. et al. 2002, AJ 123, 760.Google Scholar
Balogh, M., Morris, S. L., Yee, H. K. C. et al. 1999, ApJ 527, 54.Google Scholar
Balogh, M., Navarro, J., Morris, S. L. et al. 2000, ApJ 540, 113.Google Scholar
Bekki, K., Couch, W.J., Shioya, Y. 2001 PASJ 53, 395.Google Scholar
Bekki, K., Couch, W.J., Shioya, Y. 2002 ApJ 577, 651.Google Scholar
Bureau, M., Carignan, C. 2002 AJ 123, 1316.CrossRefGoogle Scholar
Butcher, H., Oemler, A. 1978, ApJ 219, 18.Google Scholar
Butcher, H., Oemler, A. 1984, ApJ 285, 426.Google Scholar
Calcáneo-Roldán, C., Moore, B., Bland-Hawthorn, J., et al. 2000 MNRAS 314, 324.Google Scholar
Ciotti, L., Ostriker, J. 2001 ApJ, 551, 131.CrossRefGoogle Scholar
Dekel, A., Silk, J. 1986 ApJ 303, 39.Google Scholar
Dekel, A., Woo, J. 2003, MNRAS, 344, 1131.Google Scholar
Dressler, A., Thompson, I., Shectman, S. 1985 ApJ 288, 481.Google Scholar
Dressler, A., Oemler, A., Couch, W.J., et al. 1997 ApJ 490, 577.Google Scholar
Dressler, A., Smail, I., Poggianti, B. et al. 1999 ApJS 122, 51.Google Scholar
Dubinski, J. 1998, ApJ 502, 141.Google Scholar
Durrell, P., Ciardullo, R., Feldmeier, J. et al.; 2002 ApJ 570, 119.Google Scholar
Ettori, S., Fabian, A. C., Allen, S. W., Johnstone, R. M. 2002 MNRAS 331, 635.Google Scholar
Fabian, A. C., Sanders, J. S., Ettori, S. et al. 2001, MNRAS 321, L33.Google Scholar
Feldmeier, J., Ciardullo, R., Jacoby, G.; 1998, ApJ 503, 109.Google Scholar
Feldmeier, J., Mihos, J.C., Morrison, H., et al. 2003 in Clusters of Galaxies: Probes of Cosmological Structure and Galaxy Evolution, Carnegie Observatories Symposium III. (astro-ph/0303340).Google Scholar
Fukugita, M., Hogan, C.J., Peebles, P.J.E. 1998, ApJ 503, 518.Google Scholar
Gnedin, O. 2003, ApJ 582, 141 and ApJ 589, 752.Google Scholar
Gomez, P., Nichol, R., Miller, C. et al. 2003, ApJ 584, 210.Google Scholar
Helsdon, S. F., Ponman, T. J. 2003 MNRAS 339, L29.Google Scholar
Kauffmann, G., Heckman, T., White, S.D.M. et al 2003, MNRAS 341, 54.Google Scholar
Kenney, J.D.P., Yale, E.E. 2002 ApJ 567, 865.Google Scholar
Larson, R. B., Tinsley, B. M., Caldwell, C. N. 1980 ApJ 237, 692.Google Scholar
Lewis, I., Balogh, M., de Propris, R. et al. 2002 MNRAS 334, 673.Google Scholar
Martin, C. 1998 ApJ 506, 222.CrossRefGoogle Scholar
Martini, P., Kelson, D. D., Mulchaey, J. S., Trager, S. C. 2002 ApJ 576, L109.Google Scholar
Mayer, L., Governato, F., Colpi, M. et al. 2001 ApJ 547, L123.Google Scholar
Merritt, D. 1984 ApJ 276, 26.CrossRefGoogle Scholar
Mihos, J.C. 2003 in Clusters of Galaxies: Probes of Cosmological Structure and Galaxy Evolution, Carnegie Observatories Symposium III. (astro-ph/0305512).Google Scholar
Moore, B., Katz, N., Lake, G. et al. 1996, Nature 379, 613.CrossRefGoogle Scholar
Moore, B. 2003, in Clusters of Galaxies: Probes of Cosmological Structure and Galaxy Evolution, Carnegie Observatories Symposium III. (astro-ph/0306596).Google Scholar
Oemler, A., Dressler, A., Butcher, H. 1997 ApJ 474, 561.Google Scholar
Poggianti, B., Smail, I., Dressler, A. et al. 1999 ApJ 518, 576.Google Scholar
Quilis, V., Moore, B., Bower, R. 2000 Sci. 288, 1617.Google Scholar
Ramella, M., Zamorani, G., Zucca, E. et al. 1999 A&A 342, 1.Google Scholar
Renzini, A. 1997, ApJ 488, 35.Google Scholar
Renzini, A. 2003, in Clusters of Galaxies: Probes of Cosmological Structure and Galaxy Evolution, Carnegie Observatories Symposium III. (astro-ph/0307146).Google Scholar
Salome, P., Combes, F. 2003, in prep.Google Scholar
Schulz, S., Struck, C. 2001 MNRAS 328, 185.Google Scholar
Solanes, J., Manrique, A., García-Gómez, C. et al. 2001, ApJ 548, 97.Google Scholar
Treu, T., Ellis, R. S., Kneib, J.-P., et al. 2003, ApJ 591, 53.Google Scholar
van Gorkom, J.H. 2003, in Clusters of Galaxies: Probes of Cosmological Structure and Galaxy Evolution, Carnegie Observatories Symposium III. (astro ph/0308209).Google Scholar
Vollmer, B., Cayatte, V., Balkowski, C., Duschl, W. J. 2001, ApJ 561, 708.Google Scholar