Influences of Compression Ratios on Sound Absorption Performance of Porous Nickel–Iron Alloy
Abstract
:1. Introduction
2. Experimental Design
2.1. Preparation of Porous Ni-Fe Samples
2.2. Measurement of Sound Absorption Coefficients at Normal Incidence
2.3. Investigation of the Section Morphologies
3. Results and Discussions
3.1. Evolutions of Sound Absorption Coefficients with Same Compression Ratio
3.2. Influences of Compression Ratios with Same Thickness
3.3. Section Morphologies of the Compressed Sample
4. Conclusions
- (1)
- The experimental result indicated that for the constant compression ratio, the sound absorption coefficient was improved along with increasing the thickness of the sample, and it could be improved by the compression process under the same detected thickness.
- (2)
- Through measurements of the sound absorption coefficients of the porous Ni-Fe samples with a different compression ratio, the modified Johnson-Allard model with a correction factor was built, which could improve prediction accuracy of sound absorption coefficients.
- (3)
- By comparing the sound absorption coefficients of samples with different compression ratios when the thickness of the sample was 20 mm, it could be observed that the optimal compression ratio was 70%. The corresponding mean sound absorption coefficient was 88.97% in a frequency range of 1000–6000 Hz, which was an obvious improvement to the 56.89% of the sample without compression.
- (4)
- According to the investigation of section morphologies of the sample by SEM, influence of the compression ratio was preliminarily studied through analyzing the evolution of structures of samples with different compression ratios, which was consistent with the experimental results.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Sueki, T.; Takaishi, T.; Ikeda, M.; Arai, N. Application of porous material to reduce aerodynamic sound from bluff bodies. Fluid Dyn. Res. 2010, 42, 015004. [Google Scholar] [CrossRef]
- Ikeda, M.; Mitsumoji, T.; Sueki, T.; Takaishi, T. Aerodynamic Noise Reduction of a Pantograph by Shape-Smoothing of Panhead and Its Support and by the Surface Covering with Porous Material. Noise Vib. Mitig. Rail Transp. Syst. 2012, 118, 419–426. [Google Scholar]
- Greiner, C.; Oppenheimer, S.M.; Dunand, D.C. High strength, low stiffness, porous NiTi with superelastic properties. Acta Biomater. 2005, 1, 705–716. [Google Scholar] [CrossRef] [PubMed]
- Parvanian, A.M.; Panjepour, M. Mechanical behavior improvement of open-pore copper foams synthesized through space holder technique. Mater. Des. 2013, 49, 834–841. [Google Scholar] [CrossRef]
- Wang, Y. Influence of Compressive Ratio and Density on Sound Absorbing Property of Foamed Aluminum. Mater. Mech. Eng. 2002, 26, 29–31. [Google Scholar]
- Liang, X.; Wu, J.H.; Zhou, G.J. Quantitative analysis for acoustic characteristics of porous metal materials by improved Kolmogorov’s turbulence theory. Appl. Acoust. 2018, 130, 210–215. [Google Scholar] [CrossRef]
- Atalla, Y.; Panneton, R. Inverse acoustical characterization of open cell porous media using impedance tube measurements. Can. Acoust. 2005, 33, 11–24. [Google Scholar]
- Chevillotte, F.; Perrot, C. Effect of the three-dimensional microstructure on the sound absorption of foams: A parametric study. J. Acoust. Soc. Am. 2017, 142, 1130–1140. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Venegas, R.; Umnova, O. Acoustical properties of double porosity granular materials. J. Acoust. Soc. Am. 2011, 130, 2765–2776. [Google Scholar] [CrossRef] [PubMed]
- Yang, X.C.; Peng, K.; Shen, X.M.; Zhang, X.N.; Bai, P.F.; Xu, P.J. Geometrical and Dimensional Optimization of Sound Absorbing Porous Copper with Cavity. Mater. Des. 2017, 131, 297–306. [Google Scholar] [CrossRef]
- Kino, N. Further investigations of empirical improvements to the Johnson-Champoux-Allard model. Appl. Acoust. 2015, 96, 153–170. [Google Scholar] [CrossRef]
- Emanov, A.F.; Krasnikov, A.A. Use of the standing wave method to study seismically insulated buildings. Seism. Instrum. 2016, 52, 323–349. [Google Scholar] [CrossRef]
- Hou, S.X.; Luo, J.J.; He, B.; Li, R.S.; Shen, T. The treatment of radioactive wastewater by ultrasonic standing wave method. J. Hazard. Mater. 2014, 274, 41–45. [Google Scholar]
- Kino, N.; Ueno, T. Improvements to the Johnson-Allard model for rigid-framed fibrous materials. Appl. Acoust. 2007, 68, 1468–1484. [Google Scholar] [CrossRef]
- Johnson, D.L.; Koplik, J.; Dashen, R. Theory of dynamic permeability and tortuosity in fluid-saturated porous media. J. Fluid Mech. 1987, 176, 379–402. [Google Scholar] [CrossRef]
- Champoux, Y.; Allard, J.-F. Dynamic tortuosity and bulk modulus in air-saturated porous media. J. Appl. Phys. 1991, 70, 1975–1979. [Google Scholar] [CrossRef]
- Lu, X.Y.; Zhao, C. Electrodeposition of hierarchically structured three-dimensional nickel-iron electrodes for efficient oxygen evolution at high current densities. Nat. Commun. 2015, 6, 6616. [Google Scholar] [CrossRef] [PubMed]
- Bac, L.H.; Kim, B.K.; Kong, Y.M. A Novel Method for Fabricating Fe-Cr-Al Open-cell Metallic and Alloyed Foams. Curr. Nanosci. 2014, 10, 86–88. [Google Scholar] [CrossRef]
- Kim, W.Y.; Matsumoto, R.; Utsunomiya, H. Deformation and Density Change of Open-Cell Nickel Foam in Compression Test. Mater. Trans. 2017, 58, 1373–1378. [Google Scholar] [CrossRef]
- Qiao, J.C.; Xi, Z.P.; Tang, H.P.; Wang, J.Y.; Zhu, J.L. Compressive Property and Energy Absorption of Porous Sintered Fiber Metals. Mater. Trans. 2008, 49, 2919–2921. [Google Scholar] [CrossRef] [Green Version]
- Thawari, G.; Sundar, J.K.S.; Sundararajan, G.; Joshi, S.V. Influence of process parameters during pulsed Nd:YAG laser cutting of nickel-base superalloys. J. Mater. Process. Technol. 2005, 170, 229–239. [Google Scholar] [CrossRef]
- Ru, J.M.; Kong, B.; Liu, Y.G.; Wang, X.L.; Fan, T.X.; Zhang, D. Microstructure and sound absorption of porous copper prepared by resin curing and foaming method. Mater. Lett. 2015, 139, 318–321. [Google Scholar] [CrossRef]
- Xie, Z.K.; Ikeda, T.; Okuda, Y.; Nakajima, H. Sound absorption characteristics of lotus-type porous copper fabricated by unidirectional solidification. Mater. Sci. Eng. A 2004, 386, 390–395. [Google Scholar] [CrossRef]
- Depollier, C.; Allard, J.F.; Lauriks, W. Biot theory and stress-strain equations in porous sound-absorbing materials. J. Acoust. Soc. Am. 1988, 84, 2277–2279. [Google Scholar] [CrossRef]
Experimental Serial Number | Material | Compression Ratio | Thickness of Single Sample | Detected Thickness |
---|---|---|---|---|
1001 | Porous Ni-Fe | 0% | 5 mm | 5 mm, 10 mm, 15 mm, 20 mm, 25 mm |
1002 | Porous Ni-Fe | 10% | 4.5 mm | 4.5 mm, 9 mm, 13.5 mm, 18 mm, 22.5 mm |
1003 | Porous Ni-Fe | 20% | 4 mm | 4 mm, 8 mm, 12 mm, 16 mm, 20 mm, 24 mm |
1004 | Porous Ni-Fe | 30% | 3.5 mm | 3.5 mm, 7 mm, 10.5 mm, 14 mm, 17.5 mm, 21 mm |
1005 | Porous Ni-Fe | 40% | 3 mm | 3 mm, 6 mm, 9 mm, 12 mm, 15 mm, 18 mm, 21 mm |
1006 | Porous Ni-Fe | 50% | 2.5 mm | 2.5 mm, 5 mm, 7.5 mm, 10 mm, 12.5 mm, 15 mm, 17.5 mm, 20 mm, 22.5 mm |
1007 | Porous Ni-Fe | 60% | 2 mm | 2 mm, 4 mm, 6 mm, 8 mm, 10 mm, 12 mm, 14 mm, 16 mm, 18 mm, 20 mm, 22 mm |
1008 | Porous Ni-Fe | 70% | 1.5 mm | 1.5 mm, 3 mm, 4.5 mm, 6 mm, 7.5 mm, 9 mm, 10.5 mm, 12 mm, 13.5 mm, 15 mm, 16.5 mm, 18 mm, 19.5 mm, 21 mm |
1009 | Porous Ni-Fe | 80% | 1 mm | 1 mm, 3 mm, 5 mm, 7 mm, 9 mm, 11 mm, 13 mm, 15 mm, 17 mm, 19 mm, 21 mm |
Thickness | The Calculated | |
---|---|---|
Johnson-Allard Model | Modified Johnson-Allard Model with Correction Factor | |
17.5 mm | 0.9424 | 0.9809 |
20 mm | 0.9528 | 0.9915 |
22.5 mm | 0.9610 | 0.9937 |
Average | 0.9521 | 0.9887 |
Compression Ratio (%) | 0 | 10 | 20 | 30 | 40 | 50 | 60 | 70 | 80 |
---|---|---|---|---|---|---|---|---|---|
Mean value | 56.89 | 58.74 | 68.16 | 71.49 | 77.12 | 81.78 | 87.32 | 88.97 | 80.53 |
Variance | 292.43 | 271.33 | 282.78 | 259.26 | 255.89 | 243.12 | 138.31 | 60.79 | 11.87 |
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Bai, P.; Shen, X.; Zhang, X.; Yang, X.; Yin, Q.; Liu, A. Influences of Compression Ratios on Sound Absorption Performance of Porous Nickel–Iron Alloy. Metals 2018, 8, 539. https://doi.org/10.3390/met8070539
Bai P, Shen X, Zhang X, Yang X, Yin Q, Liu A. Influences of Compression Ratios on Sound Absorption Performance of Porous Nickel–Iron Alloy. Metals. 2018; 8(7):539. https://doi.org/10.3390/met8070539
Chicago/Turabian StyleBai, Panfeng, Xinmin Shen, Xiaonan Zhang, Xiaocui Yang, Qin Yin, and Anxin Liu. 2018. "Influences of Compression Ratios on Sound Absorption Performance of Porous Nickel–Iron Alloy" Metals 8, no. 7: 539. https://doi.org/10.3390/met8070539
APA StyleBai, P., Shen, X., Zhang, X., Yang, X., Yin, Q., & Liu, A. (2018). Influences of Compression Ratios on Sound Absorption Performance of Porous Nickel–Iron Alloy. Metals, 8(7), 539. https://doi.org/10.3390/met8070539