| Article ID | Journal | Published Year | Pages | File Type | 
|---|---|---|---|---|
| 10735397 | Chaos, Solitons & Fractals | 2005 | 15 Pages | 
Abstract
												We have studied the space-time symmetry of many-body systems, such as nucleon and quark systems, on the basis of chaos, viscous and E infinity theory. The mechanism of the space-time symmetry violation is attributed to the instability of chaotic orbit. The magnitude of space-time symmetry violation depends on the viscosity of many-body systems. We have shown that space-time symmetry is conserved in case of smaller viscosity (νâ²Ï12=10â3 [m2/s]: strong interaction and electro-magnetic interaction) and violated in case of larger viscosity (νâ³Ï0=1 [m2/s]: weak interaction). We have also obtained the simple relation between the viscosity (ν) of hadrons and the strength (α) of interactions; να=(1/10)Ï20â¼(1/10)Ï24â10â6â¼10â7 [m2/s], where the symbol Ï denotes the golden ratio. These values (ν and α) are shown to be reduced to the dimension of SO(n)[n=4+Ï3].
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											Authors
												Yosuke Tanaka, 
											