High-speed observation of the piston effect near the gas-liquid critical point
arXiv:cond-mat/0602202 · doi:10.1103/PhysRevE.74.010101
Abstract
We measured high-speed sound propagation in a near-critical fluid using a ultra-sensitive interferometer to investigate adiabatic changes of fluids on acoustic timescales. A sound emitted by very weak continuous heating caused a stepwise adiabatic change at its front with a density change of order 10^{-7}g/cm^3 and a temperature change of order 10^{-5}deg. Very small heat inputs at a heater produced short acoustic pulses with width of order 10micro sec, which were broadened as they moved through the cell and encountered with the boundaries. The pulse broadening became enhanced near the critical point. We also examined theoretically how sounds are emitted from a heater and how applied heat is transformed into mechanical work. Our predictions well agree with our data.
5 figures
Cited by in corpus (4)
- Droplet evaporation in one-component fluids: Dynamic van der Waals theory
- Thermoacoustic effects in supercritical fluids near the critical point: Resonance, piston effect, and acoustic emission and reflection
- Thermo-acoustic wave propagation and reflection near the liquid-gas critical point
- Dimensionless scaling of heat-release-induced planar shock waves in near-critical CO2