• Firstly, we derived the differential equation of motion of system.

    文中首先建立了系统运动微分方程

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  • Through working out the differential equation of motion of the pseudo-fluid level in annular space, the depth of the...

    通过求解拟液面的运动微分方程序得出以此,可以确定抽油井正常生产时环空拟液面的深度。

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  • The differential equation of motion of the system is first transformed to a state-space model with time delay control input.

    首先系统运动微分方程改写状态空间模型,其控制输入中存在时滞

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  • A beam element of 2 nodes and 10 degrees of freedom with interlayer damping alloy is presented and the element differential equation of motion is put forward.

    针对阻尼合金夹层提出了一种2节点10自由度单元模型,给出了单元运动微分方程。

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  • Differential equation of motion control of the cracked beam is set up using this model, so that the same analytical methods are applied as crack-free structure for the cracked.

    模型建立裂纹运动控制微分方程这样对于裂纹结构采用无裂纹时同样分析方法

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  • And differential equation of motion of lamella under the action of dynamic couple is set up by means of Lagrange's equation. In the end, its dynamic response is presented here.

    拉格朗日方程建立动力作用薄板运动微分方程,并给出动力响应

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  • The axially moving speed is a simple harmonic fluctuation about a constant mean speed, the differential equation of motion of axially accelerating viscoelastic plate is established.

    弹性运动速度平均速度与涨落叠加,建立轴向加速运动粘弹性矩形薄板的运动微分方程

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  • The energy app roach (Hamilton's principle) is employed to obtain the governing partial differential equation of motion from the expressions of potential and kinetic energies of the system.

    通过系统动能势能表达式应用哈密尔顿原理,可获得主导微分运动方程

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  • The random nonlinear differential equation of ship's motion is established considering the nonlinear damping, nonlinear recover moment and random waves.

    考虑非线性阻尼、非线性复原力矩随机波浪建立了随机横浪船舶运动随机非线性微分方程

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  • Finally, the integral of motion differential equation of human body non-integrity system was discussed in detail.

    最后,详细论述人体非完整系统运动微分方程积分

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  • The dynamic equation of motion chain is a group of high non-linear differential equations, the solution is difficulty.

    锚泊线运动方程非线性偏微分方程组求解困难

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  • Using the differential motion equation in fluid mechanics, this paper developed the flow models of the laminar flow of Bingham's fluid in an inclined eccentric annulus.

    本文应用流体力学中的运动微分方程建立汉流体倾斜偏心环空中层流流动模型

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  • In 1985, prove Theorem 1.1 from the point of Brown Motion. This paper USES the method of establishing the convex envelope, giving a proof in Partial Differential Equation.

    1985年布朗运动角度证明定理1.1,本文利用构造凸包络方法给出了该定理微分的证明。

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  • The article give projectile motion's range formula and the projectile motion's maximum range of in different condition through the differential equation of projectile motion.

    利用微分方程导出不同条件下抛体运动射程表达式最大射程。

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  • On the basis of Newton's second Law, a motion differential equation has been put forward, by which a formula to calculating instantaneous velocity has been obtained.

    依据牛顿第二定律列出运动微分方程序,解方程序并求得计算瞬时速度的公式。

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  • The random nonlinear differential equation of the rolling motion of ships in random beam waves is established considering the nonlinear damping, nonlinear restoring moment, and the random waves.

    为了研究随机海浪船舶航行安全域构造生存概率预报方法,考虑阻尼和复原力矩非线性海浪的随机性建立随机横浪中船舶运动的随机非线性微分方程

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  • The motion of plunger of oleo damper excited by colored Gaussian noise with exponential correlation time is governed by first order nonlinear differential equation.

    油液阻尼器指数高斯噪声激励,活塞在油腔内运动可用非线性动力学方程描述

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  • By solving the differential equation groups to describe the train system, a series of simulation results about hunting motion stability, dynamic negotiation and ride comfort were worked out.

    通过求解描述列车系统运动微分方程组,得出了列车蛇行运动稳定性动态曲线通过性能运行平稳性等方面的一系列数值仿真结果

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  • The numerical solution of wave propagation may be obtained by solving for the differential equation of medium motion.

    通过求解介质运动做方程,获得传播问题数值

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  • The character of SGCMG system in the form of zero motion differential dynamic equation is given. The criterion of singularity escapable from reference 4 is improved.

    给出运动微分动力学下具有冗余度单框架控制力矩陀螺系统奇异状态的性质,并改进了奇异可脱离性的判别方法。

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  • A second_order nonlinear ordinary differential equation that describes the radial motion of the inner surface of the shell was obtained. And the first integral of the equation was then carried out.

    得到了描述表面运动二阶非线性微分方程给出了方程的首次积分

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  • A second_order nonlinear ordinary differential equation that describes the radial motion of the inner surface of the shell was obtained. And the first integral of the equation was then carried out.

    得到了描述表面运动二阶非线性微分方程给出了方程的首次积分

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