The ability to accurately model details of inlet back flow for inducers operating a t low-flow, off-design conditions is evaluated. A sub-scale version of a three-bladed liquid hydrogen inducer tested in water with detailed velocity and pressure measurements is used as a numerical test bed. Under low-flow, off-design conditions the length of the separation zone as well as the swirl velocity magnitude was under predicted with a standard k-E model. When the turbulent viscosity coefficient was reduced good comparison was obtained a t all the flow conditions examined with both the magnitude and shape of the profile matching well with the experimental data taken half a diameter upstream of the leading edge. The velocity profiles and incidence an...
High-resolution direct numerical simulations are conducted for under-expanded cryogenic hydrogen gas...
In this dissertation, heat transfer and cooling mechanism of a cryogenic submerged pump motor, and c...
This paper presents experimental design and test results of the recently concluded 1-g inverted vert...
Performance improvements in turbopump systems pumping cold water have been obtained through implemen...
Background on thermal effects on cavitation and numerical framework. Validation of numerical model f...
Hydrogen cavitation performance of helical inducer mounted in line with stationary centerbody at var...
A rocket propellant is often used cryogenic fluid such as liquid hydrogen or liquid oxygen, and it i...
Thermodynamic effects of cavitation in liquid hydrogen over range of liquid temperatures and flow co...
Impeller matching effects on flow range and stability operating in liquid hydroge
International audienceThis study was led in collaboration with the French Space Agency (CNES) and th...
Net positive suction head requirements for helical inducer in liquid hydrogen under varied flow and ...
Cavitation and noncavitation performance of 78 deg helical inducer in liquid hydroge
This paper deals with the numerical computations of cryogenic cavitating flows around turbopump indu...
A computational fluid dynamics (CFD) model is developed to simulate pressure control of an ellipsoid...
The results of continuing cavitation studies are reported. The cavitation characteristics of liquid ...
High-resolution direct numerical simulations are conducted for under-expanded cryogenic hydrogen gas...
In this dissertation, heat transfer and cooling mechanism of a cryogenic submerged pump motor, and c...
This paper presents experimental design and test results of the recently concluded 1-g inverted vert...
Performance improvements in turbopump systems pumping cold water have been obtained through implemen...
Background on thermal effects on cavitation and numerical framework. Validation of numerical model f...
Hydrogen cavitation performance of helical inducer mounted in line with stationary centerbody at var...
A rocket propellant is often used cryogenic fluid such as liquid hydrogen or liquid oxygen, and it i...
Thermodynamic effects of cavitation in liquid hydrogen over range of liquid temperatures and flow co...
Impeller matching effects on flow range and stability operating in liquid hydroge
International audienceThis study was led in collaboration with the French Space Agency (CNES) and th...
Net positive suction head requirements for helical inducer in liquid hydrogen under varied flow and ...
Cavitation and noncavitation performance of 78 deg helical inducer in liquid hydroge
This paper deals with the numerical computations of cryogenic cavitating flows around turbopump indu...
A computational fluid dynamics (CFD) model is developed to simulate pressure control of an ellipsoid...
The results of continuing cavitation studies are reported. The cavitation characteristics of liquid ...
High-resolution direct numerical simulations are conducted for under-expanded cryogenic hydrogen gas...
In this dissertation, heat transfer and cooling mechanism of a cryogenic submerged pump motor, and c...
This paper presents experimental design and test results of the recently concluded 1-g inverted vert...