Rotordynamic instability due to fluid flow in seals is a well known phenomenon that can occur in pumps as well as in steam turbines and air compressors. While analysis methods using bulk-flow equations are computationally efficient and can predict dynamic properties fairly well for short seals, they often lack accuracy in cases of seals with complex geometry or with large aspect ratios (L/D above 1.0). This paper presents the linearized rotordynamic coefficients for a liquid seal with large aspect ratio subjected to incompressible turbulent flow. The fluid-induced forces acting on the rotor are calculated by means of a three-dimensional computational fluid dynamics (3D-CFD) analysis, and are then expressed in terms of equivalent linearized stiffness, damping, and fluid inertia coefficients. For comparison, the seal dynamic coefficients were calculated using two other codes: one developed with the bulk flow method and one based on the finite difference method. The three sets of dynamic coefficients calculated in this study were used then to predict the rotor dynamic behavior of an industrial pump. These estimations were then compared to the vibration characteristic measured during the pump shop test, results indicating that the closest agreement was achieved utilizing the CFD generated coefficients. The results of rotor dynamic analysis using the coefficients derived from CFD approach, improved the prediction of both damped natural frequency and damping factor for the first mode, showing substantially smaller damping factor which is consistent with the experimentally observed instability of the rotor-bearing system. As result of continuously increasing computational power, it is believed that the CFD approach for calculating fluid excitation forces will become the standard in industry.
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(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer’s Way,
Charlottesville, VA 22904-4746
e-mail: au6d@virginia.edu
Pumps and Drives,
Flowserve Corporation,
2300 East Vernon Avenue,
Vernon, CA 90058
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer’s Way,
Charlottesville, VA 22904-4746;
Virginia Polytechnic Institute and State University,
Blacksburg,
Pumps and Drives,
Flowserve Corporation,
1480 Valley Venter Parkway,
Bethlehem,
Flowserve Corporation,
2300 East Vernon Avenue,
Vernon, CA 90058
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Research-Article
On the Dynamic Properties of Pump Liquid Seals
Alexandrina Untaroiu,
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer’s Way,
Charlottesville, VA 22904-4746
e-mail: au6d@virginia.edu
Alexandrina Untaroiu
1
Rotating Machinery and Controls
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer’s Way,
Charlottesville, VA 22904-4746
e-mail: au6d@virginia.edu
1Corresponding author.
Search for other works by this author on:
Vahe Hayrapetian,
Pumps and Drives,
Flowserve Corporation,
2300 East Vernon Avenue,
Vernon, CA 90058
Vahe Hayrapetian
Division of Advanced Technology
,Pumps and Drives,
Flowserve Corporation,
2300 East Vernon Avenue,
Vernon, CA 90058
Search for other works by this author on:
Costin D. Untaroiu,
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer’s Way,
Charlottesville, VA 22904-4746;
Virginia Polytechnic Institute and State University,
Blacksburg,
Costin D. Untaroiu
Rotating Machinery and Controls
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer’s Way,
Charlottesville, VA 22904-4746;
School of Biomedical Engineering and Sciences
,Virginia Polytechnic Institute and State University,
Blacksburg,
VA 24060
Search for other works by this author on:
Houston G. Wood,
Houston G. Wood
Rotating Machinery and Controls
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer's Way,
Charlottesville, VA 22904-4746
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer's Way,
Charlottesville, VA 22904-4746
Search for other works by this author on:
Bruno Schiavello,
Pumps and Drives,
Flowserve Corporation,
1480 Valley Venter Parkway,
Bethlehem,
Bruno Schiavello
Division of Advanced Technology
,Pumps and Drives,
Flowserve Corporation,
1480 Valley Venter Parkway,
Bethlehem,
PA 18017
Search for other works by this author on:
James McGuire
Flowserve Corporation,
2300 East Vernon Avenue,
Vernon, CA 90058
James McGuire
Custom Engineered Pumps
,Flowserve Corporation,
2300 East Vernon Avenue,
Vernon, CA 90058
Search for other works by this author on:
Alexandrina Untaroiu
Rotating Machinery and Controls
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer’s Way,
Charlottesville, VA 22904-4746
e-mail: au6d@virginia.edu
Vahe Hayrapetian
Division of Advanced Technology
,Pumps and Drives,
Flowserve Corporation,
2300 East Vernon Avenue,
Vernon, CA 90058
Costin D. Untaroiu
Rotating Machinery and Controls
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer’s Way,
Charlottesville, VA 22904-4746;
School of Biomedical Engineering and Sciences
,Virginia Polytechnic Institute and State University,
Blacksburg,
VA 24060
Houston G. Wood
Rotating Machinery and Controls
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer's Way,
Charlottesville, VA 22904-4746
(ROMAC) Laboratory,
Mechanical and Aerospace Engineering
Department,
University of Virginia,
122 Engineer's Way,
Charlottesville, VA 22904-4746
Bruno Schiavello
Division of Advanced Technology
,Pumps and Drives,
Flowserve Corporation,
1480 Valley Venter Parkway,
Bethlehem,
PA 18017
James McGuire
Custom Engineered Pumps
,Flowserve Corporation,
2300 East Vernon Avenue,
Vernon, CA 90058
1Corresponding author.
Manuscript received December 13, 2011; final manuscript received December 17, 2012; published online April 8, 2013. Assoc. Editor: Edward M. Bennett.
J. Fluids Eng. May 2013, 135(5): 051104 (10 pages)
Published Online: April 8, 2013
Article history
Received:
December 13, 2011
Revision Received:
December 17, 2012
Citation
Untaroiu, A., Hayrapetian, V., Untaroiu, C. D., Wood, H. G., Schiavello, B., and McGuire, J. (April 8, 2013). "On the Dynamic Properties of Pump Liquid Seals." ASME. J. Fluids Eng. May 2013; 135(5): 051104. https://doi.org/10.1115/1.4023653
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