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In this paper a graphical-computational based method for design of the motion generator mechanisms with five points of accuracy using the symbolic mathematical software namely Maple-V is presented.
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The kinematic and kinetic results strongly suggest that the human ankle-foot complex works as a mechanical mechanism with two different configurations in stance phase of walking.
By synthesizing these kinematic chains, 2-degree-of-freedom (DOF) planar translational mechanisms with three limbs were designed.
Finally, TLTL mechanisms with fourteen kinds of degrees of freedom are synthesized, illustrating the effectiveness of the method.
For the latter, a complete methodology and relationships for mechanisms with two degrees of mobility are proposed as well.
We go into more details of mechanisms with two examples of particularly variable surface antigens: human immunodeficiency virus and influenza viruses.
We review our previous rules for mechanisms that can show inductive behavior, and show that inductive behavior is more common for mechanisms with two adsorbed species.
In contrast to existing serial mechanisms with two degrees-of-freedom, firstly it is shown that the extra actuator and enhanced mobility helps in reducing spillage losses and astigmatic aberration.
These mechanisms with zero, one or more symmetric planes, are obtained from FACT method.
The centroid moment tensors (CMT) of the 0420 earthquake provided by the Real-time Moment Tensor (RMT) Monitoring System (Lee et al., 2013) showed thrust faulting mechanisms with two west east striking nodal planes, one dipping toward the north with a shallower dipping angle, and the other dipping toward the south with a steeper fault plane (Fig. 1).
The DSQ-40 comprises of 40 items, used to derive scores on 20 defense mechanisms with two items for each defense mechanism, in a 9-point Likert format.
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