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When the natural spring length is larger than a critical value, however, the spring dynamic system does not have a stable equilibrium.
From Rayleigh's solution, the vorticity generated at the elongating gating spring is <img src="http://journals.plos.org/plosone/article/asset?id=info?doi/10.1371/journal.pone.0018161.e001.PNG" class= inline-graphic"/>, with A the increase in spring length, ν the kinematic viscosity and τo the elongation time.
There exists an optimized spring rigidity or spring length to produce the highest performance.
By setting the natural spring length to be the marginally critical value, we can obtain the most homogeneous grid system, which is most efficient in terms of the CFL condition.
The grid-generation method is based on the combination of the spring dynamics (SPR) method with zero natural spring length (SPR0) and transformation by a smooth analytic function around the 12 vertices of an icosahedron.
One of them is the HYBRID model whose springs are Hookean at low elongation, and beyond some spring length they follow a Morse potential with a given dissociation energy.
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This system can provide high ride quality due to its long spring travel length.
Helix restoring spring with length and width of 700 μm and 30 μm are chosen to support the low actuation voltage with a small area.
Positives values on the second axis represent fall conditions (day shortening and low plant productivity) whereas negative values represent spring (day length increasing and high plant productivity (see Figure 2).
The lung chest system thus acts as two opposed coiled springs, the length of each of which is affected by the other.
This can be done in various ways by using springs, double length specimens or a lever with a dead weight.
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