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In the acoustic burner study dynamic pressure measurements were made at several locations of a tubular combustor test rig for two acoustically independent states, which were generated by forcing with sirens at the opposite ends of the setup.
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Taking this into account, an average thermal energy efficiency of about 60% is assumed for the typical biogas burner studied here.
Large eddy simulation of the two stratified nonswirling configurations of the Cambridge burner studied by Sweeney et al. (2012) is presented.
The method uses flamelet tabulated detailed chemistry and is first applied to the simulation of laminar flames (1D and 2D) over various grids for validation, before simulating a turbulent burner studied experimentally by Sweeney et al. (2012).
Global (uniform parameter evolving only with time) and local (parameter evolving both in space and time) dynamic formulations for the flame wrinkling factor are combined with the Thickened Flame (TFLES) model and simulations of the semi-industrial PRECCINSTA burner studied experimentally by Meier et al.
This paper introduces a new burner to study the auto-ignition characteristics of dilute turbulent spray flames.
In the present work, the thermal efficiency of a conventional domestic burner is studied both experimentally and numerically for liquefied petroleum gas (LPG) and piped natural gas (PNG) fuels.
Laminar, premixed methane air flames propagating through the annulus of a Taylor Couette burner were studied experimentally.
The potential of this neutron source as driver of a minor actinides burner was studied by means of neutron transport calculations and compared with a spallation source.
The design of a novel, new Taylor-Couette burner for studies of the propagation of hydrodynamically unstable flames in weakly turbulent flow is presented.
Turbulent nonpremixed flames stabilized on an axisymmetric bluff-body burner are studied with fuels ranging from simple H2/CO to complex H2/CH4 and gaseous methanol.
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