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Designs are optimized for minimum mass subject to a constraint on the maximum local deflection.
In [1], they investigated slow equilibrium equations with finite mass subject to a homogeneous Neumann-type boundary condition.
In this paper, we investigate the slow equilibrium equations with finite mass subject to a homogeneous Neumann type boundary condition.
Structural optimization was used to minimize the system mass subject to constraints on system stiffness and member section availability.
Initial modelling was conducted for an isotropic and homogeneous rock mass subject to isotropic and anisotropic far field stress states.
A tubular actuator is then used to provide active vibration isolation (AVI) of a 250 g mass subject to shaker generated 'ground vibration'.
Similar(49)
In this paper, we introduce analytical solutions for transient heat conduction in an infinite solid mass subjected to a varying single or multiple cylindrical heat sources.
The present work deals with the parametric instability regions of a cantilever beam with tip mass subjected to time-varying magnetic field and axial force.
This additional external damping removes the prolonged inconsistency between theory and experiment for a column with a tip mass, subjected to follower force.
These effects are clarified by deriving the equation of motion of a body with a mass subjected to motion-induced fluid forces of a confined swirling flow.
We have conducted a series of stress simulations on a model of a fractured rock mass subjected to various boundary loadings, and calculated the Euclidean mean of the stress data and compared them with the boundary loadings.
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