Influence of Local Surface Damage on the Natural Frequencies of the Higher Modes of Flexural Vibration of Cantilever Rods

The operating life of gas turbine engines is, by and large, dependent on the reliability of compressor rotor blades that are subjected to a complex set of forces of a different nature during their operation, and in particular, to mechanical damage resulting in severe accidents and material losses. T...

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Veröffentlicht in:Strength of materials 2018-07, Vol.50 (4), p.557-564
Hauptverfasser: Zinkovskii, A. P., Tokar’, I. G.
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Tokar’, I. G.
description The operating life of gas turbine engines is, by and large, dependent on the reliability of compressor rotor blades that are subjected to a complex set of forces of a different nature during their operation, and in particular, to mechanical damage resulting in severe accidents and material losses. The ingress of foreign objects into the air-gas channel of the engine is one of the causes giving rise to blade damage. As a consequence, various marks, dents, dimples, etc., occur on rotor blades changing the designed geometry of the blade airfoil and their natural vibration frequency spectrum and beginning to act as stress concentrators, thus reducing the vibration resistance of blades. The known investigations on the vibration of damaged mechanical systems, including also compressor rotor blades, have an insufficient amount of data on the formation of the spectrum of their natural frequencies typical of their vibration modes with consideration of the influence of a combined change in the elastic and inertia characteristics. The paper deals with a computational and experimental investigation on the influence of local surface damage on the spectrum of natural flexural vibration frequencies of a cantilever rod with a constant cross section as a simplest model of the compressor rotor blade. The regularities in the variation of the natural frequencies of the first to fourth flexural vibration modes of the rods of different flexibility with the geometrical parameters of the notch simulating damage, such as the position along the length and its depth, are presented. The distribution of variations in the natural frequencies of the rods is found to correspond to the location of the nodes of their vibration mode under investigation. The reduction in the frequency of the damaged rod occurs independently of the vibration mode and the depth of the notch when it is located near the rod attachment, while being more significant with the depth of the notch and less pronounced for the higher vibration modes as compared to the first one, which is attributable to the variation in the rod stiffness. The equality of the natural vibration frequencies of the damaged and undamaged rods is observed at a certain position of the notch along the length irrespective of the vibration mode. As the notch approaches the free end of the rod, the natural vibration frequencies become somewhat higher than those for the undamaged rod, since in this case they are more sensitive to the variation in t
doi_str_mv 10.1007/s11223-018-0001-y
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The known investigations on the vibration of damaged mechanical systems, including also compressor rotor blades, have an insufficient amount of data on the formation of the spectrum of their natural frequencies typical of their vibration modes with consideration of the influence of a combined change in the elastic and inertia characteristics. The paper deals with a computational and experimental investigation on the influence of local surface damage on the spectrum of natural flexural vibration frequencies of a cantilever rod with a constant cross section as a simplest model of the compressor rotor blade. The regularities in the variation of the natural frequencies of the first to fourth flexural vibration modes of the rods of different flexibility with the geometrical parameters of the notch simulating damage, such as the position along the length and its depth, are presented. The distribution of variations in the natural frequencies of the rods is found to correspond to the location of the nodes of their vibration mode under investigation. The reduction in the frequency of the damaged rod occurs independently of the vibration mode and the depth of the notch when it is located near the rod attachment, while being more significant with the depth of the notch and less pronounced for the higher vibration modes as compared to the first one, which is attributable to the variation in the rod stiffness. The equality of the natural vibration frequencies of the damaged and undamaged rods is observed at a certain position of the notch along the length irrespective of the vibration mode. As the notch approaches the free end of the rod, the natural vibration frequencies become somewhat higher than those for the undamaged rod, since in this case they are more sensitive to the variation in the inertia properties of the rod due to the presence of damage. With the decreasing flexibility, the variation in the natural frequencies of the investigated vibration modes of the damaged rod increases for the same value of the relative damage depth. 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P.</creatorcontrib><creatorcontrib>Tokar’, I. G.</creatorcontrib><title>Influence of Local Surface Damage on the Natural Frequencies of the Higher Modes of Flexural Vibration of Cantilever Rods</title><title>Strength of materials</title><addtitle>Strength Mater</addtitle><description>The operating life of gas turbine engines is, by and large, dependent on the reliability of compressor rotor blades that are subjected to a complex set of forces of a different nature during their operation, and in particular, to mechanical damage resulting in severe accidents and material losses. The ingress of foreign objects into the air-gas channel of the engine is one of the causes giving rise to blade damage. As a consequence, various marks, dents, dimples, etc., occur on rotor blades changing the designed geometry of the blade airfoil and their natural vibration frequency spectrum and beginning to act as stress concentrators, thus reducing the vibration resistance of blades. The known investigations on the vibration of damaged mechanical systems, including also compressor rotor blades, have an insufficient amount of data on the formation of the spectrum of their natural frequencies typical of their vibration modes with consideration of the influence of a combined change in the elastic and inertia characteristics. The paper deals with a computational and experimental investigation on the influence of local surface damage on the spectrum of natural flexural vibration frequencies of a cantilever rod with a constant cross section as a simplest model of the compressor rotor blade. The regularities in the variation of the natural frequencies of the first to fourth flexural vibration modes of the rods of different flexibility with the geometrical parameters of the notch simulating damage, such as the position along the length and its depth, are presented. The distribution of variations in the natural frequencies of the rods is found to correspond to the location of the nodes of their vibration mode under investigation. The reduction in the frequency of the damaged rod occurs independently of the vibration mode and the depth of the notch when it is located near the rod attachment, while being more significant with the depth of the notch and less pronounced for the higher vibration modes as compared to the first one, which is attributable to the variation in the rod stiffness. The equality of the natural vibration frequencies of the damaged and undamaged rods is observed at a certain position of the notch along the length irrespective of the vibration mode. As the notch approaches the free end of the rod, the natural vibration frequencies become somewhat higher than those for the undamaged rod, since in this case they are more sensitive to the variation in the inertia properties of the rod due to the presence of damage. With the decreasing flexibility, the variation in the natural frequencies of the investigated vibration modes of the damaged rod increases for the same value of the relative damage depth. The results of the performed computations are in a good agreement with the experimental testing data of the rods.</description><subject>Characterization and Evaluation of Materials</subject><subject>Chemistry and Materials Science</subject><subject>Classical Mechanics</subject><subject>Compressor rotors</subject><subject>Computer simulation</subject><subject>Concentrators</subject><subject>Damage</subject><subject>Dimpling</subject><subject>Flexibility</subject><subject>Frequency spectrum</subject><subject>Gas turbine engines</subject><subject>Inertia</subject><subject>Materials fatigue</subject><subject>Materials Science</subject><subject>Mechanical systems</subject><subject>Resonant frequencies</subject><subject>Rods</subject><subject>Rotor blades</subject><subject>Rotor blades (turbomachinery)</subject><subject>Solid Mechanics</subject><subject>Stiffness</subject><subject>Vibration mode</subject><issn>0039-2316</issn><issn>1573-9325</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2018</creationdate><recordtype>article</recordtype><recordid>eNp1kM1OwzAQhC0EEqXwANwicTZ47Saxj6hQWqmAxN_VcpJ1mypNwE4QeXscgsSJk63Zb2ZXQ8g5sEtgLL3yAJwLykBSxhjQ_oBMIE4FVYLHh2TCmFCUC0iOyYn3u8BIEHJC-lVtqw7rHKPGRusmN1X03DlrgnBj9mYT9Dpqtxg9mLZzYbpw-DEYSvSDZRgty80WXXTfFKO2qPDrh30rM2faMiQEdW7qtqzwM5BPTeFPyZE1lcez33dKXhe3L_MlXT_erebXa5qHa1ua2wSNyRCzuJApS4SUiQVpw1cWysoCFKBIBRcpM5DNVGJVnAjMMc0UnzExJRdj7rtrwuG-1bumc3VYqTkINgOluAgUjFTuGu8dWv3uyr1xvQamh4b12LAODeuhYd0HDx89PrD1Bt1f8v-mbz_bfqo</recordid><startdate>20180701</startdate><enddate>20180701</enddate><creator>Zinkovskii, A. 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G.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c316t-cf6eaabeeb5d87063886f18f7068d9f8d191e3732370a1b496f9563ece7b92403</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2018</creationdate><topic>Characterization and Evaluation of Materials</topic><topic>Chemistry and Materials Science</topic><topic>Classical Mechanics</topic><topic>Compressor rotors</topic><topic>Computer simulation</topic><topic>Concentrators</topic><topic>Damage</topic><topic>Dimpling</topic><topic>Flexibility</topic><topic>Frequency spectrum</topic><topic>Gas turbine engines</topic><topic>Inertia</topic><topic>Materials fatigue</topic><topic>Materials Science</topic><topic>Mechanical systems</topic><topic>Resonant frequencies</topic><topic>Rods</topic><topic>Rotor blades</topic><topic>Rotor blades (turbomachinery)</topic><topic>Solid Mechanics</topic><topic>Stiffness</topic><topic>Vibration mode</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Zinkovskii, A. P.</creatorcontrib><creatorcontrib>Tokar’, I. G.</creatorcontrib><collection>CrossRef</collection><jtitle>Strength of materials</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Zinkovskii, A. P.</au><au>Tokar’, I. G.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Influence of Local Surface Damage on the Natural Frequencies of the Higher Modes of Flexural Vibration of Cantilever Rods</atitle><jtitle>Strength of materials</jtitle><stitle>Strength Mater</stitle><date>2018-07-01</date><risdate>2018</risdate><volume>50</volume><issue>4</issue><spage>557</spage><epage>564</epage><pages>557-564</pages><issn>0039-2316</issn><eissn>1573-9325</eissn><abstract>The operating life of gas turbine engines is, by and large, dependent on the reliability of compressor rotor blades that are subjected to a complex set of forces of a different nature during their operation, and in particular, to mechanical damage resulting in severe accidents and material losses. The ingress of foreign objects into the air-gas channel of the engine is one of the causes giving rise to blade damage. As a consequence, various marks, dents, dimples, etc., occur on rotor blades changing the designed geometry of the blade airfoil and their natural vibration frequency spectrum and beginning to act as stress concentrators, thus reducing the vibration resistance of blades. The known investigations on the vibration of damaged mechanical systems, including also compressor rotor blades, have an insufficient amount of data on the formation of the spectrum of their natural frequencies typical of their vibration modes with consideration of the influence of a combined change in the elastic and inertia characteristics. The paper deals with a computational and experimental investigation on the influence of local surface damage on the spectrum of natural flexural vibration frequencies of a cantilever rod with a constant cross section as a simplest model of the compressor rotor blade. The regularities in the variation of the natural frequencies of the first to fourth flexural vibration modes of the rods of different flexibility with the geometrical parameters of the notch simulating damage, such as the position along the length and its depth, are presented. The distribution of variations in the natural frequencies of the rods is found to correspond to the location of the nodes of their vibration mode under investigation. The reduction in the frequency of the damaged rod occurs independently of the vibration mode and the depth of the notch when it is located near the rod attachment, while being more significant with the depth of the notch and less pronounced for the higher vibration modes as compared to the first one, which is attributable to the variation in the rod stiffness. The equality of the natural vibration frequencies of the damaged and undamaged rods is observed at a certain position of the notch along the length irrespective of the vibration mode. As the notch approaches the free end of the rod, the natural vibration frequencies become somewhat higher than those for the undamaged rod, since in this case they are more sensitive to the variation in the inertia properties of the rod due to the presence of damage. With the decreasing flexibility, the variation in the natural frequencies of the investigated vibration modes of the damaged rod increases for the same value of the relative damage depth. The results of the performed computations are in a good agreement with the experimental testing data of the rods.</abstract><cop>New York</cop><pub>Springer US</pub><doi>10.1007/s11223-018-0001-y</doi><tpages>8</tpages></addata></record>
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subjects Characterization and Evaluation of Materials
Chemistry and Materials Science
Classical Mechanics
Compressor rotors
Computer simulation
Concentrators
Damage
Dimpling
Flexibility
Frequency spectrum
Gas turbine engines
Inertia
Materials fatigue
Materials Science
Mechanical systems
Resonant frequencies
Rods
Rotor blades
Rotor blades (turbomachinery)
Solid Mechanics
Stiffness
Vibration mode
title Influence of Local Surface Damage on the Natural Frequencies of the Higher Modes of Flexural Vibration of Cantilever Rods
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