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The sensitivities of the design variables such as thickness, height, width and gap between two plates are investigated.
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On the basis of experimental observations, the capillary force model between two plates is applied to predict the interaction forces.
By increasing dc-voltage from 10 Volt to 1000 Volt with separation between two plates is 2.5 mm, the coupling ratio increases from 0.48 to 0.525.
Empirically, the optimal geometry of the heat switch, the diameter of the liquid channel and clearance between two plates, was determined to be suitable for creating and rupturing the liquid bridge.
The initial distance between two plates is 12.6 nm.
As shown in Figure 1, the geometric model of the simulation cell has the size of 4.6 × 27.7 × 14.8 nm3 and the distance separated between two plates is 12.6 nm.
The shear stress was set at a range of 0.5 500 Pa and the gap between two plates was 0.5 mm.
Between the two plates is the key to the new invention: a trim ceramic and stainless steel magnet full of tiny holes.
The nonlinear governing equation of the two-dimensional plate is developed using the inextensibility condition; and an unsteady lumped vortex model, taking into account the interactions between the two plates, is used to calculate the pressure difference across each plate.
A space of 2 mm between the two plates was determined via computational simulations.
The distance between the two plates was 5.0 cm and the total effective height (extraction section) of the column was 410 cm.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com