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The experimental verification was made by measuring the outlet volume of water through capillaries that were radially mounted.
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In addition, since the outlet discharge volume specifies the size and cost of the turbine, this volume ratio increase must be taken into consideration in the design calculations.
The solution to the optimization problem reveals that for both measurement methods an optimal excitation frequency, an optimal inlet volume, and an optimal outlet volume exist.
The large mass flow of the steam needed to satisfy the pump's demand for the driving power causes the volume of the outlet steam mass flow to increase significantly, which results in a large annulus area and, consequently, in high blades of the last turbine stage.
In the vicinity of the burner outlet, particle volume flux is reduced significantly in the central recirculation zone.
Record the accumulative oil volume at the outlet end of core, and then calculate the flow velocity.
Results of the previous experiment indicate that flow resistance (caused by liquid viscosity) at the outlet of our dispenser affects the volume and velocity of the droplet: small OW decreased droplet volume and velocity due to induced high flow resistance which causes large energy loss.
To quantitatively evaluate food inflowing differences, elapsed times were measured from when the food material (300 ml in volume) started into the inlet to when the food material (200 ml in volume) passed through the outlet of the GD phantom and was filled in an exit beaker.
To optimize the preconcentrator, the preconcentrating factor was measured considering both the outlet reservoir diameter and total preconcentration volume.
Droplet size distributions were verified by Coulter Counter (Multisizer 3, with 100 μm aperture) and the average droplet size based on volume recorded in the outlet water was in the range 10 12 μm typically with at least 90% of the recorded oil mass was in the range 5 – 25 μm.
Hydrodynamic flow was balanced by pipetting a similar volume of buffer into the outlet reservoir and observing particle motion within the channel.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com