Open Access Open Access  Restricted Access Subscription Access

Active Cooling System Incorporated in a Portable Laptop Cooling Pad

Mukesh Kumar Nag, Abhishek Shrivastava, Khilrajsinh Solanki

Abstract


Among the modern population, laptops are preferred over desktop computers. It's simple to install anyplace because to its tiny size and portability. Nevertheless, they have a performance cost compared to its large Desktop Systems. The heat produced when more expensive technology consumes large quantities of power is mostly to blame for this. The device's performance declines considerably more when there is a thermal imbalance. A Cooling Pad, which has a similar portable size factor as our laptop, was developed as an active cooling device to address this issue. It controls thermals without sacrificing performance.


Keywords


Laptop, Cooling, Cooling Pads, Peltier Module, Thermals, Noctua Cooling Fans, Folding Hinge Mechanism, Multi Purpose Ports

Full Text:

PDF

References


Pukrushpan JT, Stefanopoulou AG, Peng H. Control of fuel cell power systems: principles, modeling, analysis and feedback design. Springer Science & Business Media; 2004 Sep 16.

Paik PY, Pamula VK, Chakrabarty K. Adaptive cooling of integrated circuits using digital microfluidics. IEEE transactions on very large scale integration (vlsi) systems. 2008 Mar 21;16(4):432-43.

Vasiliev LL. Heat pipes in modern heat exchangers. Applied thermal engineering. 2005 Jan 1;25(1):1-9.

Ranchagoda NH, Akram MN, Vithanage CP, Jayasundere ND. Implementation of an external intelligent cooling system for laptops using TECs. In2016 IEEE 6th International Conference on Consumer Electronics-Berlin (ICCE-Berlin) 2016 Sep 5 (pp. 104-107). IEEE.

Miesse CM, Jung WS, Jeong KJ, Lee JK, Lee J, Han J, Yoon SP, Nam SW, Lim TH, Hong SA. Direct formic acid fuel cell portable power system for the operation of a laptop computer. Journal of Power Sources. 2006 Nov 8;162(1):532-40.

Tong XC, Tong XC. Development and application of advanced thermal management materials. Advanced Materials for Thermal Management of Electronic Packaging. 2011:527-93.

Qu J, Zhang D, Zhang J, Tao W. LED chip cooling system using ionic wind induced by multi-wire corona discharge. Applied Thermal Engineering. 2021 Jul 5;193:116946.

Ahmad Khalid SK, Samsudin NA, Nordin NA, Aripin MS. Laptop cooling pad temperature monitoring system. Indonesian Journal of Electrical Engineering and Computer Science. 2018;12(1):420-8.

He Y, Li N, Wang X, He M, He D. Comfort, energy efficiency and adoption of personal cooling systems in warm environments: A field experimental study. International journal of environmental research and public health. 2017 Nov;14(11):1408.

Shneiderman B, Plaisant C. Designing the user interface: Strategies for effective human-computer interaction. Pearson Education India; 2010.

Hariharan N, Manirathnam AS, Vellingiri S, Mohankumar RS. CFD thermal analysis on laptop cooling system using loop heat pipe technology. International Journal of Research in Engineering and Technology. 2014 May;3(5):676-82.

Wang J, Wang JB, Long ZY, Zhu T, Li ZS, Jiang ZC, Liu J. Design and application of a cooling device based on peltier effect coupled with electrohydrodynamics. International Journal of Thermal Sciences. 2021 Apr 1;162:106761.

Garimella SV, Persoons T, Weibel J, Yeh LT. Technological drivers in data centers and telecom systems: Multiscale thermal, electrical, and energy management. Applied energy. 2013 Jul 1;107:66-80.

Zheng XF, Liu CX, Yan YY, Wang Q. A review of thermoelectrics research–Recent developments and potentials for sustainable and renewable energy applications. Renewable and Sustainable Energy Reviews. 2014 Apr 1;32:486-503.




DOI: https://doi.org/10.37628/ijtea.v8i2.1490

Refbacks

  • There are currently no refbacks.