This paper investigates vortex shedding processes occurring at the end of a stack of parallel plates, due to an oscillating flow induced by an acoustic standing wave within an acoustic resonator. Here, Particle Image Velocimetry (PIV) is used to quantify the vortex shedding processes within an acoustic cycle phase-by-phase, in particular during the "ejection" of the fluid out of the stack. Standard hot-wire anemometry measurement is also applied to detect the velocity fluctuations near the end of the stack. Combination of these two measurement techniques allowed a detailed analysis of the vortex shedding phenomena. The results obtained show that, as the Reynolds number varies (by varying the plate thickness and drive ratio), different flow ...
An experimental investigation is conducted to understand the flow behavior near a stack in a hybrid ...
Abstract Thermoacoustic refrigeration systems generate cooling power from a high-amplitude acoustic ...
AbstractMinor losses around the thermoacoustic parallel stack in the oscillatory flow conditions are...
This paper investigates vortex shedding processes occurring at the end of a stack of parallel plates...
Oscillating flow near the end of a stack of parallel plates placed in a standing wave resonator is i...
Oscillatory flow in stacks of parallel plates is essential for the working of "standing wave" thermo...
Thermoacoustic system is one of the alternative technologies that provides green working principles ...
Flow visualization is a necessity in thermoacoustic devices to study the behavior of the devices and...
International audienceRegenerators (often consisting in stack mesh-wires) and heat exchangers are th...
AIAA 2012-0068An incompressible numerical simulation of vortex shedding from a bevelled at plate in ...
This paper considers an entrance flow into the channels formed by a stack of parallel plates, placed...
This paper describes the vorticity shedding excitation in tube bundles and its relation to the acous...
Thermoacoustic refrigeration systems generate cooling power from a high-amplitude acoustic standing ...
Thermoacoustic system is one of the alternative technologies that provides green working principles....
Thermoacoustic refrigerator system generates cooling from acoustic energy. Acoustic waves interact w...
An experimental investigation is conducted to understand the flow behavior near a stack in a hybrid ...
Abstract Thermoacoustic refrigeration systems generate cooling power from a high-amplitude acoustic ...
AbstractMinor losses around the thermoacoustic parallel stack in the oscillatory flow conditions are...
This paper investigates vortex shedding processes occurring at the end of a stack of parallel plates...
Oscillating flow near the end of a stack of parallel plates placed in a standing wave resonator is i...
Oscillatory flow in stacks of parallel plates is essential for the working of "standing wave" thermo...
Thermoacoustic system is one of the alternative technologies that provides green working principles ...
Flow visualization is a necessity in thermoacoustic devices to study the behavior of the devices and...
International audienceRegenerators (often consisting in stack mesh-wires) and heat exchangers are th...
AIAA 2012-0068An incompressible numerical simulation of vortex shedding from a bevelled at plate in ...
This paper considers an entrance flow into the channels formed by a stack of parallel plates, placed...
This paper describes the vorticity shedding excitation in tube bundles and its relation to the acous...
Thermoacoustic refrigeration systems generate cooling power from a high-amplitude acoustic standing ...
Thermoacoustic system is one of the alternative technologies that provides green working principles....
Thermoacoustic refrigerator system generates cooling from acoustic energy. Acoustic waves interact w...
An experimental investigation is conducted to understand the flow behavior near a stack in a hybrid ...
Abstract Thermoacoustic refrigeration systems generate cooling power from a high-amplitude acoustic ...
AbstractMinor losses around the thermoacoustic parallel stack in the oscillatory flow conditions are...