949 resultados para Sigma Rho


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The linear stability analysis of a plane Couette flow of an Oldroyd-B viscoelastic fluid past a flexible solid medium is carried out to investigate the role of polymer addition in the stability behavior. The system consists of a viscoelastic fluid layer of thickness R, density rho, viscosity eta, relaxation time lambda, and retardation time beta lambda flowing past a linear elastic solid medium of thickness HR, density rho, and shear modulus G. The emphasis is on the high-Reynolds-number wall-mode instability, which has recently been shown in experiments to destabilize the laminar flow of Newtonian fluids in soft-walled tubes and channels at a significantly lower Reynolds number than that for flows in rigid conduits. For Newtonian fluids, the linear stability studies have shown that the wall modes become unstable when flow Reynolds number exceeds a certain critical value Re c which scales as Sigma(3/4), where Reynolds number Re = rho VR/eta, V is the top-plate velocity, and dimensionless parameter Sigma = rho GR(2)/eta(2) characterizes the fluid-solid system. For high-Reynolds-number flow, the addition of polymer tends to decrease the critical Reynolds number in comparison to that for the Newtonian fluid, indicating a destabilizing role for fluid viscoelasticity. Numerical calculations show that the critical Reynolds number could be decreased by up to a factor of 10 by the addition of small amount of polymer. The critical Reynolds number follows the same scaling Re-c similar to Sigma(3/4) as the wall modes for a Newtonian fluid for very high Reynolds number. However, for moderate Reynolds number, there exists a narrow region in beta-H parametric space, corresponding to very dilute polymer solution (0.9 less than or similar to beta < 1) and thin solids (H less than or similar to 1.1), in which the addition of polymer tends to increase the critical Reynolds number in comparison to the Newtonian fluid. Thus, Reynolds number and polymer properties can be tailored to either increase or decrease the critical Reynolds number for unstable modes, thus providing an additional degree of control over the laminar-turbulent transition.

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In the present paper, we endeavor to accomplish a diagram, which demarcates the validity ranges for interfacial wave theories in a two-layer system, to meet the needs of design in ocean engineering. On the basis of the available solutions of periodic and solitary waves, we propose a guideline as principle to identify the validity regions of the interfacial wave theories in terms of wave period T, wave height H, upper layer thickness d(1), and lower layer thickness d(2), instead of only one parameter-water depth d as in the water surface wave circumstance. The diagram proposed here happens to be Le Mehautes plot for free surface waves if water depth ratio r = d(1)/d(2) approaches to infinity and the upper layer water density rho(1) to zero. On the contrary, the diagram for water surface waves can be used for two-layer interfacial waves if gravity acceleration g in it is replaced by the reduced gravity defined in this study under the condition of sigma = (rho(2) - rho(1))/rho(2) -> 1.0 and r > 1.0. In the end, several figures of the validity ranges for various interfacial wave theories in the two-layer fluid are given and compared with the results for surface waves.

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This paper is concerned with the existence of a global attractor for the nonlinear beam equation, with nonlinear damping and source terms, u(tt) + Delta(2)u -M (integral(Omega)vertical bar del u vertical bar(2)dx) Delta u + f(u) + g(u(t)) = h in Omega x R(+), where Omega is a bounded domain of R(N), M is a nonnegative real function and h is an element of L(2)(Omega). The nonlinearities f(u) and g(u(t)) are essentially vertical bar u vertical bar(rho) u - vertical bar u vertical bar(sigma) u and vertical bar u(t)vertical bar(r) u(t) respectively, with rho, sigma, r > 0 and sigma < rho. This kind of problem models vibrations of extensible beams and plates. (C) 2010 Elsevier Ltd. All rights reserved.

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In this issue...Butte Chamber of Commerce, Chess Tournament, Mines League Baseball, Sigma Rho, Handball Tournament, Silver Bow Refining Company

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In this issue...Francis A. Thomson, registration, Chequamegon Cafe, Butte, Montana, M club, Mines Tennis Club, Sigma RHO, Chester H. Steele, Diamond Mine

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in this issue...Annie Anderson, Hecla MIne, F. A. Thomson, Anaconda Copper Mining Company, Sigma RHO, Mines football, Montana State University

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In this issue...Dr. Van Pelt, Blaine School, Anderson Carlisle Society, Mineral Club, Newman Club, Father Garrity, Sigma RHO, Theta TAU, Arnold Air Society

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In this issue...Sigma RHO, M-Days, Marcus Daly, Moonshiner's Ball, Petroleum Engineering, Naval Air Corps, Loretta Buss Peck, Mines football team

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In this issue...Copper Guards, Vegas Club, Marcus Daly, Military Ball, Sigma RHO, Jersey Standard Oil, Joy Manufacturing Company, Smith Act, Dave Shepard

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in this issue...Gem State Jamboree, Mineral Club, Pan American Company, Ed Simonich, Sigma Rho, Student Council, Alumni Association, basketball

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In this issue...Dean D. C. McAuliffe, Chelation, Copper Guards, March of Dimes, Ski Club, Coach Simonich, Sigma Rho, Anderson-Carlisle Society, Mineral Club

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In this issue...Mineral club, Boy Scouts, Sigma Rho, Dr. S. W. Nile, Spelunking, Butte Floral, The Anaconda Company, Anderson Carlisle Society, The Lone Ranger

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In this issue...International Club, Circle K Club, The Anaconda Company, Sigma Rho, Y.M.C.A., Michael Hickey, Marcus Daly, Continental Oil Company, Student Union Building

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In this issue...Copper Guard, Homecoming, Sigma Rho, Mountain View Methodist Church, Faculty Wives, Phil Judd, Glee Club, Mineral Club, Great Northern Railway

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In this issue...Charles Russell, Alumni Club, Big Butte, Carol Dunstan, Frank Trask, Christmas Tea, Anaconda Company, Sigma Rho, Research Grants, Great Falls Brewery