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Simulations of the JT15D static test inlet are performed including the effects of liners, and the results are compared with experimental data.
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For all tested inlet conditions, airflow rates, and VAV boxes, the prototype reduced the VAV airflow reading error to ±5% when it was installed immediately before the VAV box inlet, regardless of upstream duct conditions.
A static mixer was installed at the test section inlet to introduce mixing.
The test section inlet temperature level is controlled using a process electrical heater.
header, and average vapor quality in the test section inlet of about 0.1 0.4.
The ULFED exceeded these CO2 removal rates by eliminating ~ 30 37% of the metabolic CO2 production at normocapnic test conditions (inlet pCO2 = 45 mmHg).
For the bubble formation in the flow, a bubble formation bed is installed on the right before the test section inlet.
In the lab-scale test, the inlet gas can be switched between pure N2 and air with all containing H2S of 1000 ppm, so as to test the effect of gas composition on the sulfur capacity.
Results of the model show that during perfusion test an inlet velocity of 25 μm/s generates on scaffold surface a fluid flow shear stress which may stimulate osteogenesis.
During the experimental test, the inlet and outlet air temperature, the relative humidity, external wind speed, the global solar radiation and the PCM temperature distribution in different bed of the solar collector were recorded.
For each case, the fluid pressure which crosses the metallic porous material is measured as a function of test time, inlet operating pressure, temperature and fuel mass flow rate.
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