G503 Parameter Dependency of Unsteady Phenomena of Cavitating Flow in a 2D Cascade
Takashi Ohta, Takeo KAJISHIMA
Abstract
Open-access reader
Takashi Ohta, Takeo KAJISHIMA
Abstract
Open-access reader
We carried out numerical simulations of 2D unsteady cavitating flow in three-blade and four-blade cascades under the various operating conditions of inflow angle and cavitation number. The results showed that steady cavitating flow, which has the steadily distributed cavity on the blades, transited to unsteady states as inflow angle increases or cavitation number decreases. Consequently, it was found that the cavitating flow can be classified into steady or unsteady cavitation phenomena according to the operating condition regardless of the number of the blades. However, the patterns of unsteady cavitating flow in three-blade and four-blade cascades are not corresponding, such as rotating cavitation and alternative cavitation.
A significance statement is not available in the OpenAlex record.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
We carried out numerical simulations of 2D unsteady cavitating flow in three-blade and four-blade cascades under the various operating conditions of inflow angle and cavitation number. The results showed that steady cavitating flow, which has the steadily distributed cavity on the blades, transited to unsteady states as inflow angle increases or cavitation number decreases. Consequently, it was found that the cavitating flow can be classified into steady or unsteady cavitation phenomena according to the operating condition regardless of the number of the blades. However, the patterns of unsteady cavitating flow in three-blade and four-blade cascades are not corresponding, such as rotating cavitation and alternative cavitation.
Key concepts: Cavitation, Inflow, Mechanics, Cascade, Flow (mathematics), Blade (archaeology), Materials science, Physics