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Wave Propagation Approach for Structural Vibration
Also known as “vibration energy flow”, vibration power flow was initiated by the internationally renowned scholar R.G. White of the Institute of Sound and Vibration Research (ISVR) in the UK. The theoretical research and engineering practice of power flow provides new theoretical methods and analytical perspectives for structural dynamics design.
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1.
Zurück zum Zitat White RG, Walker JG (1982) Noise and vibration. Ellis Horwood Press, New York White RG, Walker JG (1982) Noise and vibration. Ellis Horwood Press, New York
2.
Zurück zum Zitat Goyder HG, White RG (1980) Vibration power flow from machines into built-up structures, Part Ι: Introduction and approximate analysis of beam and plate-like foundation. J Sound Vib 68(1):59–75 MATHCrossRef Goyder HG, White RG (1980) Vibration power flow from machines into built-up structures, Part Ι: Introduction and approximate analysis of beam and plate-like foundation. J Sound Vib 68(1):59–75
MATHCrossRef
3.
Zurück zum Zitat Goyder HG, White RG (1980) Vibration power flow from machines into built-up structures, Part II: wave propagation and power flow in beam-stiffened plates. J Sound Vib 68(1):77–96 MATHCrossRef Goyder HG, White RG (1980) Vibration power flow from machines into built-up structures, Part II: wave propagation and power flow in beam-stiffened plates. J Sound Vib 68(1):77–96
MATHCrossRef
4.
Zurück zum Zitat Goyder HG, White RG (1980) Vibration power flow from machines into built-up structures, Part II: power flow through isolation system. J Sound Vib 68(1):97–117 MATHCrossRef Goyder HG, White RG (1980) Vibration power flow from machines into built-up structures, Part II: power flow through isolation system. J Sound Vib 68(1):97–117
MATHCrossRef
5.
Zurück zum Zitat Mace BR (1984) Wave reflection and transmission in beams. J Sound Vib 97(2):237–246 CrossRef Mace BR (1984) Wave reflection and transmission in beams. J Sound Vib 97(2):237–246
CrossRef
6.
Zurück zum Zitat Cuschieri JM (1990) Structural power flow analysis using a mobility approach of an L–shaped plate. J Acoust Soc Am 87(3):1159–1163 CrossRef Cuschieri JM (1990) Structural power flow analysis using a mobility approach of an L–shaped plate. J Acoust Soc Am 87(3):1159–1163
CrossRef
7.
Zurück zum Zitat Cuschieri JM (1990) Vibration transmission through periodic structures using a mobility power flow approach. J Sound Vib 143(1):65–67 CrossRef Cuschieri JM (1990) Vibration transmission through periodic structures using a mobility power flow approach. J Sound Vib 143(1):65–67
CrossRef
8.
Zurück zum Zitat Grice RM, Pinnington RJ (2000) Method for the vibration analysis of built-up structures, Part Ι: introduction and analytical analysis of the plate-stiffened beam. J Sound Vib 230(4):825–849 CrossRef Grice RM, Pinnington RJ (2000) Method for the vibration analysis of built-up structures, Part Ι: introduction and analytical analysis of the plate-stiffened beam. J Sound Vib 230(4):825–849
CrossRef
9.
Zurück zum Zitat Grice RM, Pinnington RJ (2000) Method for the vibration analysis of built-up structures, Part II: analysis of the plate-stiffened beam using a combination of finite element analysis and analytical impedances. J Sound Vib 230(4):851–875 CrossRef Grice RM, Pinnington RJ (2000) Method for the vibration analysis of built-up structures, Part II: analysis of the plate-stiffened beam using a combination of finite element analysis and analytical impedances. J Sound Vib 230(4):851–875
CrossRef
10.
Zurück zum Zitat Seo SH, Hong SY, Kil HG (2003) Power flow analysis of reinforced beam-plate coupled structures. J Sound Vib 259(5):1109–1129 CrossRef Seo SH, Hong SY, Kil HG (2003) Power flow analysis of reinforced beam-plate coupled structures. J Sound Vib 259(5):1109–1129
CrossRef
11.
Zurück zum Zitat Park DH, Hong SY, Kil HG (2003) Power flow model of flexural waves in finite orthotropic plates. J Sound Vib 264(1):203–224 CrossRef Park DH, Hong SY, Kil HG (2003) Power flow model of flexural waves in finite orthotropic plates. J Sound Vib 264(1):203–224
CrossRef
12.
Zurück zum Zitat Fahy FJ, Yao DY (1987) Power flow between non-conservatively coupled oscillators. J Sound Vib 114(1):1–11 CrossRef Fahy FJ, Yao DY (1987) Power flow between non-conservatively coupled oscillators. J Sound Vib 114(1):1–11
CrossRef
13.
Zurück zum Zitat Leung RCN, Pinnington RJ (1990) Wave propagation through right-angled joints with compliance-flexural incident wave. J Sound Vib 142(1):31–46 CrossRef Leung RCN, Pinnington RJ (1990) Wave propagation through right-angled joints with compliance-flexural incident wave. J Sound Vib 142(1):31–46
CrossRef
14.
Zurück zum Zitat Horner JL, White RG (1989) Prediction of vibrational power transmission through jointed beams. In: Conference on modem practice in stress and vibration analysis, University of Liverpool, April 1989 Horner JL, White RG (1989) Prediction of vibrational power transmission through jointed beams. In: Conference on modem practice in stress and vibration analysis, University of Liverpool, April 1989
15.
Zurück zum Zitat Horner JL, White RG (1991) prediction of vibrational power transmission through bends and joints in beam-like structures. J Sound Vib 147(1):87–103 CrossRef Horner JL, White RG (1991) prediction of vibrational power transmission through bends and joints in beam-like structures. J Sound Vib 147(1):87–103
CrossRef
16.
Zurück zum Zitat Clark P, White RG (1993) An analytic study of the vibration of beams fitted with neutralizers, Part 2: assessment of the effects of mounting configurations. ISVR Technical Report No. 225, January 1993, ISVR, University of Southampton, England Clark P, White RG (1993) An analytic study of the vibration of beams fitted with neutralizers, Part 2: assessment of the effects of mounting configurations. ISVR Technical Report No. 225, January 1993, ISVR, University of Southampton, England
17.
Zurück zum Zitat Langley RS (1990) Analysis of power flow in beams and frameworks using the direct-dynamic stiffness method. J Sound Vib 136(3):439–452 MATHCrossRef Langley RS (1990) Analysis of power flow in beams and frameworks using the direct-dynamic stiffness method. J Sound Vib 136(3):439–452
MATHCrossRef
18.
Zurück zum Zitat Wu CJ (1993) Vibration reduction characteristics on finite periodic beams with a neutralizer. ISVR Academic Report, 1992, ISVR, University of Southampton, England; or Proceedings of Acoustics 1993 Wu CJ (1993) Vibration reduction characteristics on finite periodic beams with a neutralizer. ISVR Academic Report, 1992, ISVR, University of Southampton, England; or Proceedings of Acoustics 1993
19.
Zurück zum Zitat Wu CJ, White RG (1995) Vibrational power transmission in a multi-supported beam. J Sound Vib 181(1):99–114 Wu CJ, White RG (1995) Vibrational power transmission in a multi-supported beam. J Sound Vib 181(1):99–114
20.
Zurück zum Zitat Wu CJ, White RG (1995) Reduction of vibrational power in periodically supported beams by use of a neutralizer. J Sound Vib 187(2):329–338 Wu CJ, White RG (1995) Reduction of vibrational power in periodically supported beams by use of a neutralizer. J Sound Vib 187(2):329–338
21.
Zurück zum Zitat Wu C (2002) WPA Analysis method of structural vibration and its application. Huazhong University of Science & Technology, Wuhan Wu C (2002) WPA Analysis method of structural vibration and its application. Huazhong University of Science & Technology, Wuhan
22.
Zurück zum Zitat Pavic G (1990) Vibrational energy flow in elastic circular cylindrical shells. J Sound Vib 142(2):293–310 Pavic G (1990) Vibrational energy flow in elastic circular cylindrical shells. J Sound Vib 142(2):293–310
23.
Zurück zum Zitat Pavic G (1992) Vibration energy flow through straight pipes. J Sound Vib 154(3):411–429 MATH Pavic G (1992) Vibration energy flow through straight pipes. J Sound Vib 154(3):411–429
MATH
24.
Zurück zum Zitat Li L, Mace B, Pinnington RJ (2003) A mode-based approach to the vibration analysis of coupled long-and-short-wavelength subsystems. In: Proceedings of the 10th international congress on sound and vibration, pp 1075–1082. Institute of Acoustics, Sweden Li L, Mace B, Pinnington RJ (2003) A mode-based approach to the vibration analysis of coupled long-and-short-wavelength subsystems. In: Proceedings of the 10th international congress on sound and vibration, pp 1075–1082. Institute of Acoustics, Sweden
25.
Zurück zum Zitat Li L, Mace B, Pinnington RJ (2003) A power mode approach for estimating vibrational power transmitted by multiple sources. J Sound Vib 265(2):387–399 Li L, Mace B, Pinnington RJ (2003) A power mode approach for estimating vibrational power transmitted by multiple sources. J Sound Vib 265(2):387–399
26.
Zurück zum Zitat Li L, Mace BR, Pinnington RJ (2003 Estimation of power transmission to a flexible receiver from a stiff source using a power mode approach. J Sound Vib 268(3):525–542 Li L, Mace BR, Pinnington RJ (2003 Estimation of power transmission to a flexible receiver from a stiff source using a power mode approach. J Sound Vib 268(3):525–542
27.
Zurück zum Zitat Li L, Mace BR, Pinnington RJ (2006) A mode-based approach for the mid-frequency vibration analysis of coupled long-and-short-wavelength structures. J Sound Vib 289(1–2):148–170 Li L, Mace BR, Pinnington RJ (2006) A mode-based approach for the mid-frequency vibration analysis of coupled long-and-short-wavelength structures. J Sound Vib 289(1–2):148–170
28.
Zurück zum Zitat Wester ECN, Mace BR (2005) Wave component analysis of energy flow in complex structures-Part Ι: A deterministic model. J Sound Vib 285(1–2):209–227 Wester ECN, Mace BR (2005) Wave component analysis of energy flow in complex structures-Part Ι: A deterministic model. J Sound Vib 285(1–2):209–227
29.
Zurück zum Zitat Wester ECN, Mace BR (2005) Wave component analysis of energy flow in complex structures-Part II: ensemble statistics. J Sound Vib 285(1–2):229–250 Wester ECN, Mace BR (2005) Wave component analysis of energy flow in complex structures-Part II: ensemble statistics. J Sound Vib 285(1–2):229–250
30.
Zurück zum Zitat Wester ECN, Mace BR (2005) Wave component analysis of energy flow in complex structures—Part II: two coupled plates. J Sound Vib 285(1–2):251–265 CrossRef Wester ECN, Mace BR (2005) Wave component analysis of energy flow in complex structures—Part II: two coupled plates. J Sound Vib 285(1–2):251–265
CrossRef
31.
Zurück zum Zitat Hambric SA (1990) Power flow and mechanical intensity calculation in structural finite element analysis. J Vib Acoust Stress Reliab Des 112(4):542–549 CrossRef Hambric SA (1990) Power flow and mechanical intensity calculation in structural finite element analysis. J Vib Acoust Stress Reliab Des 112(4):542–549
CrossRef
32.
Zurück zum Zitat Pavric L, Pavic G (1993) Finite element method for computation of structural intensity by the normal mode approach. J Sound Vib 164(1):29–43 MATHCrossRef Pavric L, Pavic G (1993) Finite element method for computation of structural intensity by the normal mode approach. J Sound Vib 164(1):29–43
MATHCrossRef
33.
Zurück zum Zitat Rook TE, Singh R (1998) Structural intensity calculation for compliant plate-beam structures connected by bearings. J Sound Vib 211(3):365–386 CrossRef Rook TE, Singh R (1998) Structural intensity calculation for compliant plate-beam structures connected by bearings. J Sound Vib 211(3):365–386
CrossRef
34.
Zurück zum Zitat Hambric SA, Szwerc RP (1999) Predictions of structural intensity fields using solid finite elements. Noise Control Eng J 47(6):209–217 Hambric SA, Szwerc RP (1999) Predictions of structural intensity fields using solid finite elements. Noise Control Eng J 47(6):209–217
35.
Zurück zum Zitat Wilson AM, Josefson LB (2000) Combined finite element analysis and statistical energy analysis in mechanical intensity calculations. AIAA J 38(1):123–130 CrossRef Wilson AM, Josefson LB (2000) Combined finite element analysis and statistical energy analysis in mechanical intensity calculations. AIAA J 38(1):123–130
CrossRef
36.
Zurück zum Zitat Ahmida KM, Arruda JRF (2001) Spectral element-based prediction of active power flow in Timoshenko beams. Int J Solid Structs 38(10–13):1669–1679 MATHCrossRef Ahmida KM, Arruda JRF (2001) Spectral element-based prediction of active power flow in Timoshenko beams. Int J Solid Structs 38(10–13):1669–1679
MATHCrossRef
37.
Zurück zum Zitat Xu XD, Lee HP, Lu C, Guo JY (2005) Streamline representation for structural intensity fields. J Sound Vib 280(1–2):449–454 CrossRef Xu XD, Lee HP, Lu C, Guo JY (2005) Streamline representation for structural intensity fields. J Sound Vib 280(1–2):449–454
CrossRef
38.
Zurück zum Zitat Wang F, Lee HP, Lu C (2005) Relations between structural intensity and J-integral. Eng Fract Mech 72(8):1197–1202 CrossRef Wang F, Lee HP, Lu C (2005) Relations between structural intensity and J-integral. Eng Fract Mech 72(8):1197–1202
CrossRef
39.
Zurück zum Zitat Lee HP, Lim SP, Khun MS (2006) Diversion of energy flow near crack tips of a vibrating plate using the structural intensity technique. J Sound Vib 296(3):602–622 CrossRef Lee HP, Lim SP, Khun MS (2006) Diversion of energy flow near crack tips of a vibrating plate using the structural intensity technique. J Sound Vib 296(3):602–622
CrossRef
40.
Zurück zum Zitat Nefske DJ, Sung SH (1989) Power flow finite element analysis of dynamic systems: Basic theory and application to beams. J Vib Acoust Stress Reliab Des 111(1):94–100 CrossRef Nefske DJ, Sung SH (1989) Power flow finite element analysis of dynamic systems: Basic theory and application to beams. J Vib Acoust Stress Reliab Des 111(1):94–100
CrossRef
41.
Zurück zum Zitat Jikuany (1987) General expression and measurement method of vibration power flow. Noise Vib Control (1):24–29 Jikuany (1987) General expression and measurement method of vibration power flow. Noise Vib Control (1):24–29
42.
Zurück zum Zitat Bo Y, Shungen S (1984) Transmission of power flow in vibration isolation system. Ship Mech Inf 8:1–10 Bo Y, Shungen S (1984) Transmission of power flow in vibration isolation system. Ship Mech Inf 8:1–10
43.
Zurück zum Zitat Bo Y, Shungen S, Qihua L (1987) Power flow analysis method of noise transmission in ship structure. Shipbuild China 2:50–62 Bo Y, Shungen S, Qihua L (1987) Power flow analysis method of noise transmission in ship structure. Shipbuild China 2:50–62
44.
Zurück zum Zitat Sun JC (1987) Power flow and energy balance of non-conservatively coupled structures. J Sound Vib 112(2):321–330 CrossRef Sun JC (1987) Power flow and energy balance of non-conservatively coupled structures. J Sound Vib 112(2):321–330
CrossRef
45.
Zurück zum Zitat Cuschieri JM, Sun JC (1994) Use of statistical energy analysis for rotating machinery, Part I: determination of dissipation and coupling loss factors using energy ratios. J Sound Vib 170(2):181–190 MATHCrossRef Cuschieri JM, Sun JC (1994) Use of statistical energy analysis for rotating machinery, Part I: determination of dissipation and coupling loss factors using energy ratios. J Sound Vib 170(2):181–190
MATHCrossRef
46.
Zurück zum Zitat Cuschieri JM, Sun JC (1994) Use of statistical energy analysis for rotating machinery, Part II: coupling loss factors between indirectly coupled substructures. J Sound Vib 170(2):191–201 MATHCrossRef Cuschieri JM, Sun JC (1994) Use of statistical energy analysis for rotating machinery, Part II: coupling loss factors between indirectly coupled substructures. J Sound Vib 170(2):191–201
MATHCrossRef
47.
Zurück zum Zitat Zhang XM, Zhang WH (1990) Vibration energy flow of periodic simply supported beams. J Vib Shock 3:28–34 Zhang XM, Zhang WH (1990) Vibration energy flow of periodic simply supported beams. J Vib Shock 3:28–34
48.
Zurück zum Zitat Zhang XM, Zhang WH (1990) Vibration energy flow of periodic simply supported beam excited at any position. J Vib Eng 3(4):75–81 Zhang XM, Zhang WH (1990) Vibration energy flow of periodic simply supported beam excited at any position. J Vib Eng 3(4):75–81
49.
Zurück zum Zitat Zhang XM, Zhang WH (1991) Reduction of vibrational energy in a periodically supported beams. J Sound Vib 151(1):1–7 CrossRef Zhang XM, Zhang WH (1991) Reduction of vibrational energy in a periodically supported beams. J Sound Vib 151(1):1–7
CrossRef
50.
Zurück zum Zitat Zhang XM, Zhang WH (1990) Vibration energy flow of stiffened cylindrical shell. Shipbuild China 108(1):78–87 Zhang XM, Zhang WH (1990) Vibration energy flow of stiffened cylindrical shell. Shipbuild China 108(1):78–87
51.
Zurück zum Zitat Li TY, Zhang XM (1995) Vibration wave and energy flow of periodic simply supported curved beam. J Huazhong Univ Sci Technol (Nat Sci Ed) 23(9):112–115 Li TY, Zhang XM (1995) Vibration wave and energy flow of periodic simply supported curved beam. J Huazhong Univ Sci Technol (Nat Sci Ed) 23(9):112–115
52.
Zurück zum Zitat Yi CJ, Chen TY, Li W et al (1995) Study on parameters of energy flow in plate structure. Chin J Appl Mech 12(4):21–27 Yi CJ, Chen TY, Li W et al (1995) Study on parameters of energy flow in plate structure. Chin J Appl Mech 12(4):21–27
53.
Zurück zum Zitat Li W, Yi CJ, Hu XL (1995) Study on the admittance method of energy flow in beam slab structure. J Xi’an Jiaotong Univ 29(7):29–35 Li W, Yi CJ, Hu XL (1995) Study on the admittance method of energy flow in beam slab structure. J Xi’an Jiaotong Univ 29(7):29–35
54.
Zurück zum Zitat Li TY, Zhang XM (1997) Study on vibration energy flow of composite plate structure with discontinuous material layer. Acta Acoust 22(3):274–281 Li TY, Zhang XM (1997) Study on vibration energy flow of composite plate structure with discontinuous material layer. Acta Acoust 22(3):274–281
55.
Zurück zum Zitat Li TY, Zhang WH, Zhang XM (1997) Study on admittance energy flow of L-stiffened plate structure. J Vib Eng 10(1):112–117 Li TY, Zhang WH, Zhang XM (1997) Study on admittance energy flow of L-stiffened plate structure. J Vib Eng 10(1):112–117
56.
Zurück zum Zitat Xu M (1999) Study on vibration wave propagation and energy flow in coupled system of cylindrical shell and flow field. Huazhong University of Science & Technology Press, Wuhan Xu M (1999) Study on vibration wave propagation and energy flow in coupled system of cylindrical shell and flow field. Huazhong University of Science & Technology Press, Wuhan
57.
Zurück zum Zitat Wang M, Sheng MP (1998) Study on vibration energy flow of stiffened plate structure under excitation of reinforcement. J Northwest Polytech Univ 16(2):237–240 MathSciNet Wang M, Sheng MP (1998) Study on vibration energy flow of stiffened plate structure under excitation of reinforcement. J Northwest Polytech Univ 16(2):237–240
MathSciNet
58.
Zurück zum Zitat Wang C, Sha JZ (1991) Research on vibration energy transfer of rod–plate coupling structure. Acta Acoust 16(2):128–136 Wang C, Sha JZ (1991) Research on vibration energy transfer of rod–plate coupling structure. Acta Acoust 16(2):128–136
59.
Zurück zum Zitat Liu M (1994) Research on statistical energy analysis method (SEA) under relevant excitation. Chin J Theor Appl Mech 26(5):559–569 Liu M (1994) Research on statistical energy analysis method (SEA) under relevant excitation. Chin J Theor Appl Mech 26(5):559–569
60.
Zurück zum Zitat Xie JR, Wu WW (2006) Analysis of vibration energy and power flow during vibration. Comput Aided Eng, 117–120 Xie JR, Wu WW (2006) Analysis of vibration energy and power flow during vibration. Comput Aided Eng, 117–120
61.
Zurück zum Zitat Zhu X, Li TY, Zhao Y et al (2007) Wave propagation characteristics of cylindrical shells with circumferential surface cracks. Chin J Theor Appl Mech 39(1):119–124 Zhu X, Li TY, Zhao Y et al (2007) Wave propagation characteristics of cylindrical shells with circumferential surface cracks. Chin J Theor Appl Mech 39(1):119–124
62.
Zurück zum Zitat Wu CJ (1992) Measurement of Structural Intensity. ISVR Academic Report, University of Southampton, England Wu CJ (1992) Measurement of Structural Intensity. ISVR Academic Report, University of Southampton, England
63.
Zurück zum Zitat Fahy FJ (1969) Measurement of mechanical input power to a structure. J Sound Vib 10(3):517–518 Fahy FJ (1969) Measurement of mechanical input power to a structure. J Sound Vib 10(3):517–518
64.
Zurück zum Zitat Noiseux DU (1970) Measurement of power flow in uniform beams and plates. J Acoust Soc Am 47(1):238–247 Noiseux DU (1970) Measurement of power flow in uniform beams and plates. J Acoust Soc Am 47(1):238–247
65.
Zurück zum Zitat Pavic G (1976) Measurement of structure-borne wave intensity, part 1. Formulation of methods. J Sound Vib 49(2):221–230 Pavic G (1976) Measurement of structure-borne wave intensity, part 1. Formulation of methods. J Sound Vib 49(2):221–230
66.
Zurück zum Zitat Verheij JW (1980) Cross-spectral density method for measuring structure-borne power flow on beams and pipes. J Sound Vib 70(1):133–139 Verheij JW (1980) Cross-spectral density method for measuring structure-borne power flow on beams and pipes. J Sound Vib 70(1):133–139
67.
Zurück zum Zitat Redman-White W (1984) The experimental measurement of flexural wave power flow in structures. In: Proceedings of the second international conference on resent advances in structural dynamics, ISVR, University of Southampton, April 1984 Redman-White W (1984) The experimental measurement of flexural wave power flow in structures. In: Proceedings of the second international conference on resent advances in structural dynamics, ISVR, University of Southampton, April 1984
68.
Zurück zum Zitat Zhao QC (1989) Measurement of energy flow in vibration structure. Acta Acoust 14(2):258–269 Zhao QC (1989) Measurement of energy flow in vibration structure. Acta Acoust 14(2):258–269
69.
Zurück zum Zitat Li TY, Liu TG, Liu L (1999) Measurement method and error analysis of structural sound intensity. J Sound Vib 19(1):30–34 MathSciNet Li TY, Liu TG, Liu L (1999) Measurement method and error analysis of structural sound intensity. J Sound Vib 19(1):30–34
MathSciNet
70.
Zurück zum Zitat Zhu XM, Zhu YF, Zhang GL (2004) Measurement method of vibration energy flow of shell pipe wall. Shipbuil China 45(4):29–34 Zhu XM, Zhu YF, Zhang GL (2004) Measurement method of vibration energy flow of shell pipe wall. Shipbuil China 45(4):29–34
71.
Zurück zum Zitat Zhu X, Li TY, Zhao Y (2017) Characteristics of vibration energy flow and damage identification of cracked structures. Huazhong University of Science & Technology Press, Wuhan, p 9 Zhu X, Li TY, Zhao Y (2017) Characteristics of vibration energy flow and damage identification of cracked structures. Huazhong University of Science & Technology Press, Wuhan, p 9
72.
Zurück zum Zitat Pinnington RJ, White RG (1981) Power flow through machine isolators to resonant and non-resonant beams. J Sound Vib 75(2):179–197 CrossRef Pinnington RJ, White RG (1981) Power flow through machine isolators to resonant and non-resonant beams. J Sound Vib 75(2):179–197
CrossRef
73.
Zurück zum Zitat Zhou BG (1994) Study on energy flow of complex vibration isolation system. Shanghai Jiao Tong University, Shanghai Zhou BG (1994) Study on energy flow of complex vibration isolation system. Shanghai Jiao Tong University, Shanghai
74.
Zurück zum Zitat Ming RS, Craik RJM (1997) Errors in the measurement of structure-borne power flow using two-accelerometer techniques. J Sound Vib 204(1):59–71 CrossRef Ming RS, Craik RJM (1997) Errors in the measurement of structure-borne power flow using two-accelerometer techniques. J Sound Vib 204(1):59–71
CrossRef
75.
Zurück zum Zitat Morikawa R, Ueha S, Nakamura K (1996) Error evaluation of structural intensity measured with a scanning laser Doppler vibrometer and k-space signal processing. J Acoust Soc Am 99(5):2913 Morikawa R, Ueha S, Nakamura K (1996) Error evaluation of structural intensity measured with a scanning laser Doppler vibrometer and k-space signal processing. J Acoust Soc Am 99(5):2913
76.
Zurück zum Zitat Roozen NB, Guyader JL, Glorieux C (2015) Measurement-based determination of the rotational part of structural intensity by means of test functional series expansion. J Sound Vib 356:168–180 CrossRef Roozen NB, Guyader JL, Glorieux C (2015) Measurement-based determination of the rotational part of structural intensity by means of test functional series expansion. J Sound Vib 356:168–180
CrossRef
77.
Zurück zum Zitat Chambard JP, Chalvidan V, Carniel X et al (2002) Pulsed TV—holography recording for vibration analysis applications. Opt Lasers Eng 38(3/4):131–143 CrossRef Chambard JP, Chalvidan V, Carniel X et al (2002) Pulsed TV—holography recording for vibration analysis applications. Opt Lasers Eng 38(3/4):131–143
CrossRef
78.
Zurück zum Zitat Eck T, Walsh SJ (2012) Measurement of vibrational energy flow in a plate with high energy flow boundary crossing using electronic speckle pattern interferometry. Appl Acoust 73(9):936–951 CrossRef Eck T, Walsh SJ (2012) Measurement of vibrational energy flow in a plate with high energy flow boundary crossing using electronic speckle pattern interferometry. Appl Acoust 73(9):936–951
CrossRef
79.
Zurück zum Zitat Pascal JC, Carniel X, Chalvidan V et al (1996) Determination of phase and magnitude of vibration for energy flow measurements in a plate using holographic interferometry. Opt Lasers Eng 25(95):343–360 CrossRef Pascal JC, Carniel X, Chalvidan V et al (1996) Determination of phase and magnitude of vibration for energy flow measurements in a plate using holographic interferometry. Opt Lasers Eng 25(95):343–360
CrossRef
80.
Zurück zum Zitat Newland DE (1984) Random vibration and spectral analysis . Longman Newland DE (1984) Random vibration and spectral analysis
. Longman
- Titel
- Vibration Power Flow and Experimental Investigation
- DOI
- https://doi.org/10.1007/978-981-15-7237-1_9
- Autor:
-
Prof. Chongjian Wu
- Verlag
- Springer Singapore
- Sequenznummer
- 9
- Kapitelnummer
- Chapter 9