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181.
L.?TianEmail author R.?Blatt P.?Zoller 《The European Physical Journal D - Atomic, Molecular, Optical and Plasma Physics》2005,32(2):201-208
A hybrid quantum computing scheme is studied where the
hybrid qubit is made of an ion trap qubit serving as the
information storage and a solid-state charge qubit serving as the
quantum processor, connected by a superconducting cavity. In this
paper, we extend our previous work [CITE] and study the
decoherence, coupling and scalability of the hybrid system. We
present our calculations of the decoherence of the coupled ion-charge system due to the charge fluctuations in the solid-state
system and the dissipation of the superconducting cavity under
laser radiation. A gate scheme that exploits rapid state flips of
the charge qubit to reduce decoherence by the charge noise is
designed. We also study a superconducting switch that is inserted
between the cavity and the charge qubit and provides tunable
coupling between the qubits. The scalability of the hybrid scheme
is discussed together with several potential experimental
obstacles in realizing this scheme. 相似文献
182.
Lin C Chen C Sharkawy A Schneider GJ Venkataraman S Prather DW 《Optics letters》2005,30(11):1330-1332
We present a promising coupling device, namely, a terahertz (THz) planar photonic crystal (PhC) lens based on the effective refractive-index contrast between the PhC and the surrounding unpatterned area. Three-dimensional finite-difference time-domain calculations show a 90% power transfer from a 100-microm silicon waveguide to a 10-microm waveguide, and 45% coupling efficiency is confirmed experimentally. These results demonstrate the utility of the PhC lens as an effective approach to coupling into PhC THz circuits. 相似文献
183.
The crystal structure, magnetic and magnetotransport properties of the variation of B′-site transition metal in Sr2FeMO6 (M=Mo, W) with double perovskites structure have been investigated systematically. Measurements of magnetization vs. temperature at H=5 T show that Sr2FeMoO6 is a ferromagnet and Sr2FeWO6 is an antiferromagnet with TN∼35 K. Additionally, the large magnetoresistance ratio (MR) of ∼22% (H=3 T) at room temperature (RT) was observed in the Sr2FeWO6 compound. However, the Sr2FeMoO6 compound did not show any significant MR even at high fields and RT (MR∼1%; H=3 T and 300 K). The implications of these findings are supported by band structure calculations to explain the interaction between the 4d(Mo) and 5d(W) orbitals of transition metal ions and oxygen ions. 相似文献
184.
185.
In this paper, the concept of covering domain is introduced to develop a general expression for the Fredholm Integral Equations
Method, by which elasticity problems of arbitrarily shaped bodies loaded by external forces can be solved. Some special expressions
are given for a body with non-zero remote stresses, or subjected to some concentrated forces on its boundary. The relationship
between the loading forces and solutions are also discussed. Some analytical solutions can be obtained for simple cases. When
numerical computations are needed for the solution, the method proves to have high precision and fast convergency. 相似文献
186.
This paper presents a new formulation for the laminar free convection from an arbitrarily inclined isothermal plate to fluids of any Prandtl number between 0.001 and infinity. A novel inclination parameter is proposed such that all cases of the horizontal, inclined and vertical plates can be described by a single set of transformed equations. Moreover, the self-similar equations for the limiting cases of the horizontal and vertical plates are recovered from the transformed equations by setting=0 and=1, respectively. Heated upward-facing plates with positive and negative inclination angles are investigated. A very accurate correlation equation of the local Nusselt number is developed for arbitrary inclination angle and for 0.001 Pr .
Nomenclature C p specific heat - f reduced stream function - g gravitational acceleration - Gr local Grashof number,g(T w –T w ) x3/v2 - h local heat transfer coefficient - k thermal conductivity - n constant exponent - Nu local Nusselt number,hx/k - p pressure - Pr Prandtl number, v/ - Ra local Rayleigh number,g(T w –T )J x3/v - T fluid temperature - T w wall temperature - T temperature of ambient fluid - u velocity component in x-direction - v velocity component in y-direction - x coordinate parallel to the plate - y coordinate normal to the plate Greek symbols thermal diffusivity - thermal expansion coefficient - (Ra¦sin¦)1/4/( Ra cos()1/5 - pseudo-similarity variable, (y/) - dimensionless temperature, (T–T )/(T w–T ) - ( Ra cos)1/5+(Rasin)1/4 - v kinematic viscosity - 1/[1 +(Ra cos)1/5/( Ra¦sin)1/4] - density of fluid - Pr/(1+Pr) - w wall shear stress - angle of plate inclination measured from the horizontal - stream function - dimensionless dynamic pressure 相似文献
Wärmeübertragung bei freier Konvektion an einer isothermen Platte mit beliebiger Neigung
Zusammenfasssung Diese Untersuchung stellt eine neue Formulierung der laminaren freien Konvektion von Flüssigkeiten mit einer Prandtl-Zahl zwischen 0,001 und unendlich an einer beliebig schräggestellten isothermen Platte dar. Ein neuer Neigungsparameter wird eingeführt, so daß alle Fälle der horizontalen, geneigten oder vertikalen Platte von einem einzigen Satz transformierter Gleichungen beschrieben werden können. Die unabhängigen Gleichungen für die beiden Fälle der horizontalen and vertikalen Platte wurden für=0 und=1 aus den transformierten Gleichungen wieder abgeleitet. Es wurden erwärmte aufwärtsgerichtete Platten mit positiven und negativen Neigungswinkeln untersucht. Eine sehr genaue Gleichung wurde für die lokale Nusselt-Zahl bei beliebigen Neigungswinkeln und für 0,001 Pr entwickelt.
Nomenclature C p specific heat - f reduced stream function - g gravitational acceleration - Gr local Grashof number,g(T w –T w ) x3/v2 - h local heat transfer coefficient - k thermal conductivity - n constant exponent - Nu local Nusselt number,hx/k - p pressure - Pr Prandtl number, v/ - Ra local Rayleigh number,g(T w –T )J x3/v - T fluid temperature - T w wall temperature - T temperature of ambient fluid - u velocity component in x-direction - v velocity component in y-direction - x coordinate parallel to the plate - y coordinate normal to the plate Greek symbols thermal diffusivity - thermal expansion coefficient - (Ra¦sin¦)1/4/( Ra cos()1/5 - pseudo-similarity variable, (y/) - dimensionless temperature, (T–T )/(T w–T ) - ( Ra cos)1/5+(Rasin)1/4 - v kinematic viscosity - 1/[1 +(Ra cos)1/5/( Ra¦sin)1/4] - density of fluid - Pr/(1+Pr) - w wall shear stress - angle of plate inclination measured from the horizontal - stream function - dimensionless dynamic pressure 相似文献
187.
林鹏程 《应用数学和力学(英文版)》1988,9(9):859-864
In this paper, a class of three level explicit schemes for a dispersive equation ut=auxxx with stability condition |r|=|α|Δt/(Δx)3≤2.382484, are considered. The stability condition for this class of schemes is much better than |r|≤0.3849 in [1], [2] and
|r|≤0.701659 in [3], and |r|≤1.1851 in [4]. 相似文献
188.
林拜松 《应用数学和力学(英文版)》1988,9(1):31-36
All the stress components at a rapidly propagating crack-tip in an elastic perfectly-plastic material are the functions of only. Making use of this condition and the equations of steady-state motion, stress-strain relations and Hill anisotropic yield condition, we obtain the general solutions in both the cases of anti-plane and in-plane strain. Applying these two general solutions to propagating Mode III and Mode I cracks, respectively, the anisotropic plastic stress fields at the rapidly propagating tips of Mode III and Mode I cracks are derived. 相似文献
189.
An analysis is developed for the laminar free convection from a vertical plate with uniformly distributed wall heat flux and a concentrated line thermal source embedded at the leading edge. We introduce a parameter=(1 +Q
L/Qw)–1=(1 + RaL/Raw)–1 to describe the relative strength of the two thermal sources; and propose a unified buoyancy parameter=( RaL+ Raw)1/5 with=1/(1 +Pr
–1) to properly scale the dependent and independent variables. The variables are so defined that the resulting nonsimilar boundary-layer equations can describe exactly the buoyancy-induced flow from the dual sources with any relative strength to fluids of any Prandtl number from very small values to infinity. These nonsimilar equations are readily reducible to the self-similar equations of an adiabatic wall plume for=0, and to those of free convection from uniform flux plate for=1. Rigorous finite-difference solutions for fluids of Pr from 0.001 to are obtained over the entire range of from 0 to 1. The effects of both relative source strength and Prandtl number on the velocity profiles, temperature profiles, and the variations of wall temperature, are clearly illustrated.
Nomenclature C f friction coefficient - C p specific heat - f reduced stream function - g gravitational acceleration - k thermal conductivity - L width of the plate - Nu local Nusselt number - Pr Prandtl number - q w wall heat flux - Q L heat generated by the line source - Q w heat released by the uniform-flux wall from 0 tox, q w Lx - Ra L local Rayleigh number, g T L * x 3/( ) - Ra w local Rayleigh number,g T w * w 3/( ) - T fluid temperature - T temperature of ambient fluid - T L * characteristic temperature of the line source,Q L/(C p L) - T w * characteristic temperature of the uniform flux wall, =q w x/k=Q w /(C p L) - u velocity component in then-direction - U0 dimensionless velocity,u/(/x) Ra L 2/5 - U 1 dimensionless velocity,u/(/x) Ra w 2/5 - velocity component in they-direction - x coordinate parallel to the plate - y coordinate normal to the plate - thermal diffusivity - thermal expansion coefficient - pseudo-similarity variable,(y/x) - dimensionless temperature, (T–T )/(T L * +T w * ) - 0 dimensionless temperature, (Ral)1/5 (T–T )/T L * - 1 dimensionless temperature, (Raw)Raw)1/5 (T–T )/T w * - (Ra L+Raw)1/5 - kinematic viscosity - (1 +Ra L/Raw)–1=(1 +T L * /T w * )–1=(1 + QL/Qw)–1 - density - Pr/(1 +Pr) - w wall shear stress - stream function 相似文献
Freie Konvektion an einer vertikalen Platte mit einer konzentrierten und einer gleichmäßig verteilten Wärmequelle
Zusammenfassung Für die freie Konvektion an einer vertikalen Platte mit einer gleichmäßig verteilten Wandwärmestromdichte und einer in der Vorderkante eingebetteten linienförmigen Wärmequelle wird eine Berechnungsmethode entwickelt. Zur Beschreibung der relativen Stärke der beiden Wärmequellen führen wir einen Parameter=(1 + QL/Qw)–1=(1 + RaL/Raw)–1 ein und schlagen einen vereinheitlichten Auftriebsparameter=( Ra L+ Ra w)1/5 mit=1/(1 +Pr –1 für die Skalierung der abhängigen und unabhängigen Variablen vor. Die Variablen werden so definiert, daß mit den sich ergebenden unabhängigen Grenzschichtgleichungen die von den beiden Wärmequellen beliebiger Stärke verursachte Auftriebsströmung von Fluiden beliebiger Prandtl-Zahl genau beschrieben werden kann. Diese unabhängigen Gleichungen können ohne weiteres auf die selbstähnlichen Gleichungen für den Fall einer lokalen Wärmezufuhr an einer sonst adiabatischen Wand für=0 und jenen der freien konvektion an einer Platte mit einheitlichem Wärmestrom für=1 zurückgeführt werden. Für Fluide mit der Prandtl-Zahl zwischen 0,001 und Unendlich werden nach der strengen finite Differenzen-Methode Lösungen im Bereich von zwischen 0 und 1 erhalten. Der jeweilige Einfluß der relativen Quellenstärke und der Prandtl-Zahl auf die Geschwindigkeits- und Temperaturprofile sowie die Veränderung der Wandtemperatur werden deutlich dargestellt.
Nomenclature C f friction coefficient - C p specific heat - f reduced stream function - g gravitational acceleration - k thermal conductivity - L width of the plate - Nu local Nusselt number - Pr Prandtl number - q w wall heat flux - Q L heat generated by the line source - Q w heat released by the uniform-flux wall from 0 tox, q w Lx - Ra L local Rayleigh number, g T L * x 3/( ) - Ra w local Rayleigh number,g T w * w 3/( ) - T fluid temperature - T temperature of ambient fluid - T L * characteristic temperature of the line source,Q L/(C p L) - T w * characteristic temperature of the uniform flux wall, =q w x/k=Q w /(C p L) - u velocity component in then-direction - U0 dimensionless velocity,u/(/x) Ra L 2/5 - U 1 dimensionless velocity,u/(/x) Ra w 2/5 - velocity component in they-direction - x coordinate parallel to the plate - y coordinate normal to the plate - thermal diffusivity - thermal expansion coefficient - pseudo-similarity variable,(y/x) - dimensionless temperature, (T–T )/(T L * +T w * ) - 0 dimensionless temperature, (Ral)1/5 (T–T )/T L * - 1 dimensionless temperature, (Raw)Raw)1/5 (T–T )/T w * - (Ra L+Raw)1/5 - kinematic viscosity - (1 +Ra L/Raw)–1=(1 +T L * /T w * )–1=(1 + QL/Qw)–1 - density - Pr/(1 +Pr) - w wall shear stress - stream function 相似文献
190.
Comparative investigation of resistance and ability to trigger high voltage discharge for single and multiple femtosecond filaments in air 下载免费PDF全文
A comparative investigation of resistance and ability to trigger high voltage (HV) discharge for single filament (SF) and multiple filaments (MF) has been carried out. The experimental results show that the trend of the breakdown threshold of the SF exactly follows that of its resistance, but this is not the case for the MF. The MF's resistance is much smaller than SF's. However, the MF shows a bit higher HV breakdown threshold than the SF. The underlying physics is that the measured resistance of the MF is collectively contributed by every filament in the MF while the HV breakdown threshold is determined by only one single discharging path. 相似文献