Enhancing Air Compliance of loud speaker cabinet by using Activated Carbon Felts

Authors

  • Shashikumar Jakkaraju H&S department, Malla Reddy College of Engineering Hyderabad, India Author
  • Radhika. G H&S department, Malla Reddy College of Engineering Hyderabad, India Author
  • Dr. NikhilRaj ECE department, Malla Reddy College of Engineering Hyderabad, India Author
  • Dr. JohnPaul ECE department, Malla Reddy College of Engineering Hyderabad, India Author

DOI:

https://doi.org/10.61841/8pwa2808

Keywords:

Adsorption, Compliance, Surface Reactance, Activated carbon felt

Abstract

At present Fiber glass material is used as stuffing material in sub-woofer cabinet enclosures. It increases Air Compliance and increase the apparent volume of the cabinets since it has properties of sound absorption and insulation. Air Compliance has direct impact on frequency response of the cabinet. By changing air Compliance we can optimize the response. Activated carbon felt can be used in the place of fiber glass because of large absorption coefficient at lower frequency due to adsorption property. Activated carbon Felt have large porosity and large surface area. It is observed Activated carbon felt of range 10 to 15 mm has large absorption coefficient at lower frequencies. The excess absorption of sound energy is due to surface reactance.

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References

[1] Manoharan, Rajesh, et al. "Selection of Intermediate Routes for Secure Data Communication Systems using Graph Theory Application and Grey Wolf Optimization Algorithm in MANETs." IET Networks (2020).

[2] Rajesh, M., Gnanasekar, J.M. "Path Observation Based Physical Routing Protocol for Wireless Ad Hoc Networks." Wireless Pers Commun 97, 1267–1289 (2017). https://doi.org/10.1007/s11277-017-4565-9

[3] Rajesh, M. "Streamlining Radio Network Organizing Enlargement Towards Microcellular Frameworks." Wireless Pers Commun (2020). https://doi.org/10.1007/s11277-020-07336-9

[4] J. R. Wright, “The virtual loudspeaker cabinet,” J. Audio Eng. Soc. 51, 244–247 (2003).

[5] T. J. Cox and P. D’Antonio, Acoustic Absorbers and Diffusers. Taylor & Francis, London (2009), pp. 77–78.

[6] Y. Cho, “Least squares estimation of acoustic reflection coefficient,” Ph.D. dissertation, University of Southampton, U.K., 2005.

[7] B. Castagnede, A. Moussatov, D. Lafarge, and M. Saeid, “Low frequency in situ metrology …” Appl. Acoust. 69(7), 634–648 (2008).

[8] S. Brunauer, P. H. Emmett, and E. Teller, “Adsorption of gases in multimolecular layers,” J. Am. Chem. Soc. 60, 309–319 (1938).

[9] M. M. Dubinin and V. A. Astakhov, “Description of adsorption equilibria…” Adv. Chem. Ser. 102, 69–85 (1970).

[10] E. P. Barrett, L. G. Joyner, and P. P. Halenda, “The determination of pore volume…” J. Am. Chem. Soc. 73, 373–380 (1951).

[11] S. J. Gregg and K. S. W. Sing, Adsorption, Surface Area and Porosity, 2nd ed. Academic Press (1982), pp. 1–303.

[12] S. Brunauer, L. S. Deming, W. E. Deming, and E. Teller, “On a theory of the van der Waals adsorption…” J. Am. Chem. Soc. 62, 1723–1732 (1940).

[13] J. W. Hassler, Activated Carbon, Chemical Publishing Company, New York (1963), pp. 1–397.

[14] L. Wojnar, Image Analysis: Applications in Materials Engineering. CRC Press, Boca Raton, FL (1998), pp. 1–256.

[15] J. Serra, Image Analysis and Mathematical Morphology. Academic Press, Orlando (1983), pp. 1–610.

[16] O. Umnova, D. Tsilklauri, and R. Venegas, “Influence of boundary slip …” J. Acoust. Soc. Am. 126, 1850–1861 (2009).

[17] T. J. Cox and P. D’Antonio, Acoustic Absorbers and Diffusers, 3rd ed. Taylor & Francis (2009).

[18] J. R. Wright, “The virtual loudspeaker cabinet,” J. Audio Eng. Soc. 51, 244–247 (2003).

[19] Hugo Karpinski, Rodolfo Venegas, Olga Umnova, Jonathan Andrew Hargreaves, “Sound propagation in activated carbon felts,” INTER-NOISE-2016.

[20] Bechwati, F. et al., “Low frequency sound propagation in activated carbon,” April 2012.

[21] Niels Elkjær Iversen, “Introduction to loudspeaker modeling & design,” Technical University of Denmark (DTU), September 2014.

[22] N. Raj and R. K. Sharma, “A High Swing OTA with wide Linearity…” International Journal of VLSI Design & Communication System (VLSICS), 1(3):1–11, 2010.

[23] N. Raj, A.K. Singh, A.K. Gupta, “Modeling of Human Voice Box in VLSI…” IETE Journal of Research, 57(4):345–353, 2011.

[24] N. Raj, A.K. Singh, A.K. Gupta, “Low power high output impedance high bandwidth QFGMOS current mirror,” Microelectronics Journal, 45(8):1132–1142, 2014.

[25] N. Raj, A.K. Singh, A.K. Gupta, “Low-voltage bulk-driven self-biased cascode current mirror…” Electronics Letters, 50(1):23–25, 2014.

[26] N. Raj, A.K. Singh, A.K. Gupta, “Low Voltage High Output Impedance…” Circuit System & Signal Processing, 35(8):2683–2703, 2015.

[27] N. Raj, A.K. Singh, A.K. Gupta, “High performance Current Mirrors using Quasi-floating Bulk,” Microelectronics Journal, 52(1):11–22, 2016.

[28] N. Raj, A.K. Singh, A.K. Gupta, “Low Voltage High Performance Bulk-driven…” Microelectronics Journal, 52(1):124–133, 2016.

[29] N. Raj, A.K. Singh, A.K. Gupta, “Low Voltage High Bandwidth Self-biased High Swing Cascode Current Mirror,” Indian Journal of Pure and Applied Physics, 55(4):245–253, 2017.

[30] Raj N. and Gupta A.K., “Analysis of Operational Transconductance Amplifier…” Journal of Semiconductor Devices and Circuits (STM Journal), 1(3):1–9, 2015.

[31] Raj N. and Gupta A.K., “Multifunction Filter Design using BDQFG Miller OTA,” EEEIJ Journal, 4(3):55–67, 2015.

[32] N. Raj, A.K. Singh, A.K. Gupta, “Low Power Circuit Design Techniques: A Survey,” International Journal of Computer Theory and Engineering, 7(3):172–176, 2015.

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Published

30.05.2020

How to Cite

Jakkaraju, S., Radhika. G, NikhilRaj, & JohnPaul. (2020). Enhancing Air Compliance of loud speaker cabinet by using Activated Carbon Felts . International Journal of Psychosocial Rehabilitation, 24(10), 1409-1414. https://doi.org/10.61841/8pwa2808