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    Supersonic Jet Impingement on a Cylinder and Characterization of the Resulting Deflected Jets

    Source: Journal of Fluids Engineering:;2014:;volume( 136 ):;issue: 011::page 111103
    Author:
    Pophali, Ameya
    ,
    Bussmann, Markus
    ,
    Tran, Honghi
    DOI: 10.1115/1.4027993
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The interaction between a mildly underexpanded supersonic jet and a single cylinder was studied experimentally at laboratory scale by using the schlieren technique coupled with highspeed photography and pitot pressure measurements. This study was motivated by the need to optimize sootblowing operation in kraft recovery boilers. The effects of the transverse distance between the jet and cylinder centerlines (eccentricity), nozzle–cylinder distance, and cylinder size on jet–cylinder interaction were determined. Results show that upon impingement on a cylinder, a supersonic jet deflects at an angle and creates a weaker supersonic jet that we refer to as a “secondaryâ€‌ jet. The angle and strength of the deflected or secondary jet depend on the eccentricity between the primary jet and cylinder centerlines. When a jet impinges on a cylinder of diameter comparable to that of the jet or smaller, secondary jets form not only when the cylinder is placed close to the nozzle (in the stronger portion of the jet) but also when the cylinder is placed far away (in the jet's weaker portion; up to 20–24 nozzle exit diameters in the present study). Changing the eccentricity slightly results in a significant change in the secondary jet characteristics. For a cylinder much larger than the jet, secondary jets do not form at zero eccentricity (headon impingement); the eccentricity at which they begin to form increases with the cylinder size. A study of the secondary jets shows that they spread out much more than the primary jet and are sheetor fanlike with an oblong, oval cross section. The centerline pitot pressure of the secondary jets remains as high as the primary jet for a considerable distance from the tube only during weak interaction between the primary jet and the cylinder (i.e., during strongly eccentric/offcenterd impingement). As the interaction between the primary jet and the cylinder intensifies at lower eccentricities, the maximum centerline pitot pressure of the secondary jet decreases, and the pitot pressure decreases more quickly with distance from the tube.
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      Supersonic Jet Impingement on a Cylinder and Characterization of the Resulting Deflected Jets

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    contributor authorPophali, Ameya
    contributor authorBussmann, Markus
    contributor authorTran, Honghi
    date accessioned2017-05-09T01:08:51Z
    date available2017-05-09T01:08:51Z
    date issued2014
    identifier issn0098-2202
    identifier otherfe_136_11_111103.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/155075
    description abstractThe interaction between a mildly underexpanded supersonic jet and a single cylinder was studied experimentally at laboratory scale by using the schlieren technique coupled with highspeed photography and pitot pressure measurements. This study was motivated by the need to optimize sootblowing operation in kraft recovery boilers. The effects of the transverse distance between the jet and cylinder centerlines (eccentricity), nozzle–cylinder distance, and cylinder size on jet–cylinder interaction were determined. Results show that upon impingement on a cylinder, a supersonic jet deflects at an angle and creates a weaker supersonic jet that we refer to as a “secondaryâ€‌ jet. The angle and strength of the deflected or secondary jet depend on the eccentricity between the primary jet and cylinder centerlines. When a jet impinges on a cylinder of diameter comparable to that of the jet or smaller, secondary jets form not only when the cylinder is placed close to the nozzle (in the stronger portion of the jet) but also when the cylinder is placed far away (in the jet's weaker portion; up to 20–24 nozzle exit diameters in the present study). Changing the eccentricity slightly results in a significant change in the secondary jet characteristics. For a cylinder much larger than the jet, secondary jets do not form at zero eccentricity (headon impingement); the eccentricity at which they begin to form increases with the cylinder size. A study of the secondary jets shows that they spread out much more than the primary jet and are sheetor fanlike with an oblong, oval cross section. The centerline pitot pressure of the secondary jets remains as high as the primary jet for a considerable distance from the tube only during weak interaction between the primary jet and the cylinder (i.e., during strongly eccentric/offcenterd impingement). As the interaction between the primary jet and the cylinder intensifies at lower eccentricities, the maximum centerline pitot pressure of the secondary jet decreases, and the pitot pressure decreases more quickly with distance from the tube.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleSupersonic Jet Impingement on a Cylinder and Characterization of the Resulting Deflected Jets
    typeJournal Paper
    journal volume136
    journal issue11
    journal titleJournal of Fluids Engineering
    identifier doi10.1115/1.4027993
    journal fristpage111103
    journal lastpage111103
    identifier eissn1528-901X
    treeJournal of Fluids Engineering:;2014:;volume( 136 ):;issue: 011
    contenttypeFulltext
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