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The Vibration Ring. Phase 1; [Seedling Fund]

AUTHOR Administration (Nasa), National Aeronaut
PUBLISHER Independently Published (08/07/2020)
PRODUCT TYPE Paperback (Paperback)

Description
The vibration ring was conceived as a driveline damping device to prevent structure-borne noise in machines. It has the appearance of a metal ring, and can be installed between any two driveline components like an ordinary mechanical spacer. Damping is achieved using a ring-shaped piezoelectric stack that is poled in the axial direction and connected to an electrical shunt circuit. Surrounding the stack is a metal structure, called the compression cage, which squeezes the stack along its poled axis when excited by radial driveline forces. The stack in turn generates electrical energy, which is either dissipated or harvested using the shunt circuit. Removing energy from the system creates a net damping effect. The vibration ring is much stiffer than traditional damping devices, which allows it to be used in a driveline without disrupting normal operation. In phase 1 of this NASA Seedling Fund project, a combination of design and analysis was used to examine the feasibility of this concept. Several designs were evaluated using solid modeling, finite element analysis, and by creating prototype hardware. Then an analytical model representing the coupled electromechanical response was formulated in closed form. The model was exercised parametrically to examine the stiffness and loss factor spectra of the vibration ring, as well as simulate its damping effect in the context of a simplified driveline model. The results of this work showed that this is a viable mechanism for driveline damping, and provided several lessons for continued development. Asnani, Vivake M. and Krantz, Timothy L. and Delap, Damon C. and Stringer, David B. Glenn Research Center NASA/TM-2014-218337, ARL-TR-6941, E-18907, GRC-E-DAA-TN14941 PIEZOELECTRICITY; MECHANICAL DRIVES; DAMPING; VIBRATION; DESIGN ANALYSIS; ELECTROMECHANICS; MATHEMATICAL MODELS; PROTOTYPES; STIFFNESS
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Product Details
ISBN-13: 9798673333693
Binding: Paperback or Softback (Trade Paperback (Us))
Content Language: English
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Page Count: 52
Carton Quantity: 78
Product Dimensions: 8.50 x 0.11 x 11.02 inches
Weight: 0.32 pound(s)
Country of Origin: US
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BISAC Categories
Reference | Research
Reference | Space Science - General
Descriptions, Reviews, Etc.
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The vibration ring was conceived as a driveline damping device to prevent structure-borne noise in machines. It has the appearance of a metal ring, and can be installed between any two driveline components like an ordinary mechanical spacer. Damping is achieved using a ring-shaped piezoelectric stack that is poled in the axial direction and connected to an electrical shunt circuit. Surrounding the stack is a metal structure, called the compression cage, which squeezes the stack along its poled axis when excited by radial driveline forces. The stack in turn generates electrical energy, which is either dissipated or harvested using the shunt circuit. Removing energy from the system creates a net damping effect. The vibration ring is much stiffer than traditional damping devices, which allows it to be used in a driveline without disrupting normal operation. In phase 1 of this NASA Seedling Fund project, a combination of design and analysis was used to examine the feasibility of this concept. Several designs were evaluated using solid modeling, finite element analysis, and by creating prototype hardware. Then an analytical model representing the coupled electromechanical response was formulated in closed form. The model was exercised parametrically to examine the stiffness and loss factor spectra of the vibration ring, as well as simulate its damping effect in the context of a simplified driveline model. The results of this work showed that this is a viable mechanism for driveline damping, and provided several lessons for continued development. Asnani, Vivake M. and Krantz, Timothy L. and Delap, Damon C. and Stringer, David B. Glenn Research Center NASA/TM-2014-218337, ARL-TR-6941, E-18907, GRC-E-DAA-TN14941 PIEZOELECTRICITY; MECHANICAL DRIVES; DAMPING; VIBRATION; DESIGN ANALYSIS; ELECTROMECHANICS; MATHEMATICAL MODELS; PROTOTYPES; STIFFNESS
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Paperback