Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2014.Cataloged from PDF version of thesis.Includes bibliographical references (pages 131-134).The effectiveness of ground plane water microjet control on the noise generated by a supersonic, ideally expanded, Mach 1.5, impinging jet was determined. Using a converging-diverging nozzle with a design Mach number of 1.5, the jet was operated at temperatures ranging from 60 to 1700°F. Six microjets were installed in the ground plane in a circular configuration at a radial spacing of 1.53 nozzle diameters, and an angle of 0 and 300 to tangential. Baseline and control temperature readings at the ground plane and acoustic readings at the sideline angles of ...
Noise suppression devices on military jet engines are motivated by the need to reduce community nois...
This paper presents diagnostic experiments aimed at understanding and mitigating supersonic jet nois...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2006.Includ...
The effectiveness of ground plane water microjet control on the noise generated by a supersonic, ide...
A system of 36 impinging microjets was implemented on a round jet of Mach number 0.9, and the noise ...
This paper describes the results of a study examining the flow and acoustic characteristics of a Mac...
This paper describes the results of a study examining the flow field and acoustic characteristics of...
This paper describes the results of a study examining the flow field and acoustic characteristics of...
This thesis concerns an active noise control of supersonic impinging jet flow using un-steady microj...
A comprehensive experimental investigation on the use of microjets for the control of supersonic imp...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2009.Includes...
A global noise reduction of a high-subsonic jet is achieved by experimental use of an impinging micr...
The effects of microjets on the aerodynamic characteristics of a Mach 0.9 high-Reynolds axisymmetric...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2007.Includes...
This paper compares the noise suppression abilities of steady and pulsed microjet injection for a Ma...
Noise suppression devices on military jet engines are motivated by the need to reduce community nois...
This paper presents diagnostic experiments aimed at understanding and mitigating supersonic jet nois...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2006.Includ...
The effectiveness of ground plane water microjet control on the noise generated by a supersonic, ide...
A system of 36 impinging microjets was implemented on a round jet of Mach number 0.9, and the noise ...
This paper describes the results of a study examining the flow and acoustic characteristics of a Mac...
This paper describes the results of a study examining the flow field and acoustic characteristics of...
This paper describes the results of a study examining the flow field and acoustic characteristics of...
This thesis concerns an active noise control of supersonic impinging jet flow using un-steady microj...
A comprehensive experimental investigation on the use of microjets for the control of supersonic imp...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2009.Includes...
A global noise reduction of a high-subsonic jet is achieved by experimental use of an impinging micr...
The effects of microjets on the aerodynamic characteristics of a Mach 0.9 high-Reynolds axisymmetric...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2007.Includes...
This paper compares the noise suppression abilities of steady and pulsed microjet injection for a Ma...
Noise suppression devices on military jet engines are motivated by the need to reduce community nois...
This paper presents diagnostic experiments aimed at understanding and mitigating supersonic jet nois...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2006.Includ...