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具Gilbert耗散项的多变量铁磁链旋方程组解的Blow Up   总被引:1,自引:0,他引:1  
邢家省  宋长明 《应用数学》1994,7(4):423-430
本文考虑具Gilbert耗散项的多变量铁磁链旋方程组 Z_t=εLZ-αZ×(Z×LZ) βZ×LZ f(x,Z)Z初边值问题 Z|_=0, t≥0 Z(x,0)=Z_0(x), x∈ΩR~m强解的Blow Up.这里Z(x,t)=(u(x,t),v(x,t),w(x,t)),L=sum from i,j=1 to nε>0,α>0.采用Galerkin方法和紧致性原理证明局部强解的存在性,利用凸性方法证明强解的Blow Up性质。  相似文献
2.
探讨了如下一类非牛顿流pt+(pu)χ=0,(pu)χ+(pu2)χ-(︱uχ︱p-2uχ)χ+πχ=pf,π=π(p)=Apr,(χ,t)∈Ωr1,A>0,r>1,其初边值条件为(p,u)|t=0=(p0,u0),χ∈(-1,I),u|χ=1=u|χ=-1=0,t∈(0,T1).利用迭代方法,讨论了该模型的局部强解的爆破准则,证明了:如果T_*是强解(ρ,u)存在的最大时间且T*相似文献
3.
We consider the initial boundary problem for a compressible non‐Newtonian fluid with density‐dependent viscosity. The local existence of strong solution is established that is based on some compatibility condition. Moreover, it is also proved that the solutions are to blow up, and the maximum norm of velocity gradients controls the possible break down of the strong solutions. Copyright © 2016 John Wiley & Sons, Ltd.  相似文献
4.
We study the Navier–Stokes system describing the motion of a compressible viscous fluid driven by a nonlinear multiplicative stochastic force. We establish local in time existence (up to a positive stopping time) of a unique solution, which is strong in both PDE and probabilistic sense. Our approach relies on rewriting the problem as a symmetric hyperbolic system augmented by partial diffusion, which is solved via a suitable approximation procedure. We use the stochastic compactness method and the Yamada–Watanabe type argument based on the Gyöngy–Krylov characterization of convergence in probability. This leads to the existence of a strong (in the PDE sense) pathwise solution. Finally, we use various stopping time arguments to establish the local existence of a unique strong solution to the original problem.  相似文献
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This paper is concerned with a compressible viscoelastic fluids of Oldroyd‐B type. We prove the existence of unique local strong solutions for all initial data satisfying some compatibility condition. Moreover, we establish a blow‐up criterion for the strong solution in terms of the norm of the density tensor ρ and the norm of the symmetric tensor of constraints τ. All the results hold for the initial density vanishing from below. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献
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