The fluid transpiration arc as a radiation source for solar simulation Semiannual progress report, 1 Jan. - 30 Jun. 1967
Fluid transpiration arc radiation source for solar simulation
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Fluid transpiration arc radiation source for solar simulation
Testing of transpiration air cooled turbine, discussing blade fabrication
Temperature difference between solid and gas of transpiration cooled wall due to radiant heating
Tree canopy microclimate, xylem water flux and xylem dielectric constant have been monitored in situ since June 1993 in two adjacent natural forest stands in central Alaska. The deciduous stand represents a mature balsam poplar site on the Tanana River floodplain, while the coniferous stand consists of mature white spruce with some black spruce mixed in. During solstice in June and later in summer, diurnal changes of xylem water potential were measured to investigate the occurrence and magnitude of tree transpiration and dielectric constant changes in stems.
Tree transpiration was measured in 28, 67, 204 and 383 - year old uniform stands and in a multi-cohort stand (140 t0 430) of Pinus sylvestris ssp. sibirica Lebed. in Central Siberia during August of 1995.
Self-assembled glass microsphere membranes as an alternative transpiration membrane for application in a Knudsen Compressor are discussed.
Abstract Popular evapotranspiration (ET) partitioning methods make assumptions that might not be well‐suited to dryland ecosystems, such as high sensitivity of plant water‐use efficiency (WUE) to vapor pressure deficit (VPD). Our objectives were to (a) create an ET partitioning model that can produce fine‐scale estimates of transpiration (T) in drylands, and (b) use this approach to evaluate how climate controls T and WUE across ecosystem types and timescales along a dryland aridity gradient. We developed a novel, semi‐mechanistic ET partitioning method using a Bayesian approach that constrains abiotic evaporation using process‐based models, and loosely constrains time‐varying WUE within an autoregressive framework. We used this method to estimate daily T and weekly WUE across seven dryland ecosystem types and found that T dominates ET across the aridity gradient. Then, we applied cross‐wavelet coherence analysis to evaluate the temporal coherence between focal response variables (WUE and T/ET) and environmental variables. At yearly scales, we found that WUE at less arid, higher elevation sites was primarily limited by atmospheric moisture demand, and WUE at more arid, lower elevation sites was primarily limited by moisture supply. At sub‐yearly timescales, WUE and VPD were sporadically correlated. Hence, ecosystem‐scale dryland WUE is not always sensitive to changes in VPD at short timescales, despite this being a common assumption in many ET partitioning models. This new ET partitioning method can be used in dryland ecosystems to better understand how climate influences physically and biologically driven water fluxes.
Oxidation resistant alloys tested for suitability as transpiration cooled gas turbine blades
Development of 50 kW fluid transpiration arc solar simulator
Design and instrumentation of fluid transpiration arc as radiation source for solar simulation
Transpiration cooling system for reentry vehicles
Temperature difference between solid and gas of transpiration cooled wall due to radiant heating
Heat transfer and skin friction correlations for transpiration cooling in air and nonair free streams, noting Stanton number and recovery factor
Gas pump utilizing thermal transpiration in porous media, noting variation of performance with porous media geometric properties
Flow reduction due to oxidation of wire-form porous materials for transpiration cooled turbine blades
Thermal transpiration for performance prediction and development of gas pump
Radiation equilibrium temperature measured downstream of transpiration cooled gas flow near slender cone vertex in continuous flow hypersonic tunnel
Heat transfer measurements at Mach 10 on total angle cone downstream of air and helium transpiration cooling region