Magnetic aggregation II.: Laboratory and microgravity experiments

被引:30
作者
Nübold, H
Poppe, T
Rost, M
Dominik, C
Glassmeier, KH
机构
[1] Univ Jena, Inst Astrophys, D-07745 Jena, Germany
[2] TU Braunschweig, Inst Geophys, D-38106 Braunschweig, Germany
[3] Univ Amsterdam, Sterrenkundig Inst Anton Pannekoek, NL-1089 SJ Amsterdam, Netherlands
关键词
origin of the solar system; magnetic fields; collisional physics; dust aggregation; comets;
D O I
10.1016/S0019-1035(03)00153-2
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
In a previous publication (Dommik and Nubold, 2002, Icarus 157, 173-186), we presented analytical expressions and theoretical considerations concerning preplanetary dust aggregation with magnetized grains in the solar nebula. The present work is dedicated to the experimental study of magnetic aggregation in a ground-based laboratory as well as under microgravity conditions on parabolic flights. We conducted aggregation experiments with dust analogues in order to study the temporal evolution and the structural outcome of grain growth processes dominated by or comprising exclusively magnetic grains. Within aggregation times ranging from a couple of seconds to a few minutes only, formation of huge chain-like and/or web-like dust aggregates was observed. After aggregate retrieval we were able to study the sizes and structures of the aggregates in great detail. We established the fractal dimension of the aggregates as D-fs = 1.20 +/- 0.05 for single chains and D-fc = 1.50 +/- 0.21 for inter-connected web-like structures. This is considerably lower than for non-magnetic grain growth. The dynamic exponent z for the mass increase with time according to t(z) was found to be z = 2.7 from in-situ video images of the microgravity aggregation runs. The results are compared with the theoretical considerations presented earlier as well as with previous experimental work on the same and on related topics, respectively. (C) 2003 Elsevier Inc. All rights reserved.
引用
收藏
页码:195 / 214
页数:20
相关论文
共 45 条
[1]  
BEISCHER D, 1937, GERICHTETE KOAGULATI, V26, P420
[2]   The cosmic dust aggregation experiment CODAG [J].
Blum, J ;
Wurm, G ;
Poppe, T ;
Kempf, S ;
Fiethe, B ;
Giel, M ;
Offterdinger, P ;
Neuhaus, D ;
Rott, M ;
Giovane, F ;
Gustafson, B .
MEASUREMENT SCIENCE AND TECHNOLOGY, 1999, 10 (10) :836-844
[3]   Aspects of laboratory dust aggregation with relevance to the formation of planetesimals [J].
Blum, J ;
Wurm, G ;
Poppe, T ;
Heim, LO .
EARTH MOON AND PLANETS, 1998, 80 (1-3) :285-309
[4]   Growth and form of planetary seedlings:: Results from a microgravity aggregation experiment [J].
Blum, J ;
Wurm, G ;
Kempf, S ;
Poppe, T ;
Klahr, H ;
Kozasa, T ;
Rott, M ;
Henning, T ;
Dorschner, J ;
Schräpler, R ;
Keller, HU ;
Markiewicz, WJ ;
Mann, I ;
Gustafson, BAS ;
Giovane, F ;
Neuhaus, D ;
Fechtig, H ;
Grün, E ;
Feuerbacher, B ;
Kochan, H ;
Ratke, L ;
El Goresy, A ;
Morfill, G ;
Weidenschilling, SJ ;
Schwehm, G ;
Metzler, K ;
Ip, WH .
PHYSICAL REVIEW LETTERS, 2000, 85 (12) :2426-2429
[5]   SINGLE-DOMAIN GRAIN-SIZE LIMITS FOR METALLIC IRON [J].
BUTLER, RF ;
BANERJEE, SK .
JOURNAL OF GEOPHYSICAL RESEARCH, 1975, 80 (02) :252-259
[6]   THE INTRINSIC VISCOSITY OF POLYMER SOLUTIONS [J].
DEBYE, P .
JOURNAL OF CHEMICAL PHYSICS, 1946, 14 (10) :636-639
[7]  
DEGENNES PG, 1970, PHYS KONDENS MATER, V11, P189
[8]   Magnetic aggregation:: Dynamics and numerical Modeling [J].
Dominik, C ;
Nübold, H .
ICARUS, 2002, 157 (01) :173-186
[9]  
DONN BD, 1990, ASTRON ASTROPHYS, V235, P441
[10]   SCALING LAW FOR AGGREGATES OF MAGNETIC PARTICLES [J].
ERIKSSON, AB ;
JONSON, M .
PHYSICAL REVIEW LETTERS, 1989, 62 (14) :1698-1698