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allowing their properties to be probed unambiguously at a sensing station, with application to flow cytometer) (iii) Constant wall temperature microdevice (for maintaining cells at a desired temperature in a microdevice and microscale-PCR) (iv) Platelet-rich plasma generation microdevice (for obtaining plasma rich in platelets from whole blood using hydrodynamic based separation) (v) Platelet-poor plasma generation microdevice (for obtaining plasma poor in platelet from whole blood using hydrodynamic based separation) (vi) Thumb-operated micropump (for pumping fluids in a microdevice without external power supply) (vii) Microdevice for capturing beads, single cells and bacteria, and low volume of protein/mRNA (for capturing biological entities of interest on a biomimetic platform) (viii) Multiple-orifice synthetic jet (for cooling in space constraint applications such as notepad) (ix) Microchannel based cooling of an electronic device (for mitigating hot spots in an electronic chip) (x) Vortex cross-correlation flowmeter (for metering flow rate in a conduit) (xi) Header design for multiple microchannels-based microdevices (for ensuring uniform flow distribution in multiple microchannels-based microdevices) (xii) Three-dimensional particle image velocimetry system (for measuring three-dimensional flow velocity in space)
257:(of two-rupees coin size) performs the function of centrifuge at the microscale. The microdevice is truly novel because there is no filter/membrane or any active element therein; the separation rather happens passively as the flow occurs. This exclusive strategy allows the microdevice to cover a wide spectrum of applications, including those that the current filter-based technologies cannot even remotely cater to. He has developed other innovative microdevices (notably,
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Agrawal has several patents awarded/applied: (i) Blood plasma separation in a microdevice (for separating high-quality plasma from whole blood; acts as a substitute for centrifuge at microscale) (ii) Three-dimensional hydrodynamic focusing microdevice (for making cells move in a single file thereby
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The Navier-Stokes equation has been employed to describe flow for more than a century. However, the need for more accurate equations has been noted because of the limitations of this equation in the high
Knudsen number range. Agrawal employed the Onsager-principle consistent distribution function to
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Amit
Agrawal was born on 7 October 1974 in Allahabad, Uttar Pradesh, to Prof. Vinai Krishna Agrawal and Smt. Rani Devi Agrawal. He studied at St Joseph's College, Allahabad (1979β1992), before joining IIT Kanpur for a BTech in mechanical engineering. He continued his higher studies after a brief
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Agrawal has worked on several other scientifically challenging and industrially relevant problems, including the problem of interacting wakes, synthetic jets, gaseous slip flow, and boiling in microchannel. Due to these important scientific and technological contributions, Agrawal was invited to
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Agrawal works in the areas of fluid mechanics and heat transfer, with specialization in microscale flows, turbulent flows, and bio-microdevices. His fundamental study on blood flow in microchannel led to the development of a unique microdevice capable of separating the liquid component of blood
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equations which are a superset of the Navier-Stokes equations. This is particularly significant as the proposed equations are of second-order and unconditionally stable; the two issues that have plagued all existing higher-order equations and their variants. These may be the thermodynamically
143:(IITB) as assistant professor in 2004, where he is an institute chair professor at the department of mechanical engineering since 2015. The team led by him at IITB has developed several microdevices of which a few have already been licensed to others for commercial use.
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241:. He joined IIT Bombay as an assistant professor in July 2004 and was promoted to associate professor in 2009. He has been a professor at the same institute since 2014 and has also been an institute chair professor since October 2015.
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consistent higher-order equations that scientists have been trying to derive for several decades now! Early results show that the derived equations are indeed accurate. Further, he proposed an innovative iterative approach to solve
290:, and solved two different problems within Burnett hydrodynamics for the first time. The approach is general enough to apply to other non-linear partial differential equations. Agrawal has written a book entitled
825:
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Agrawal, Amit; Duryodhan, V. S.; Hemadri, Vadiraj (1 February 2018). "Liquid and gas flows in microchannels of varying cross section: a comparative analysis of the flow dynamics and design perspectives".
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Shah, Niraj; Gavasane, Abhimanyu; Agrawal, Amit; Bhandarkar, Upendra (19 October 2017). "Comparison of
Various Pressure Based Boundary Conditions for Three-Dimensional Subsonic DSMC Simulation".
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Joshi, Suhas S.; Agrawal, Amit; Kattemalalawadi, Bharath S.; Gaddam, Anvesh (1 August 2017). "Demarcating wetting states in textured microchannels under flow conditions by
Poiseuille number".
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explaining these higher-order transport equations. The development of these accurate higher-order continuum transport equations is expected to rejuvenate the entire subject of hydrodynamics.
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solve the
Boltzmann equation and derived entirely new sets of equations (as opposed to adding ad hoc terms to the available equations, commonly undertaken in the literature), termed as
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273:). Such niche microdevices, based on innovative design principles, cater to important needs of society and are expected to change the way blood tests are done worldwide in the future.
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He is married to Dr. Meghna
Rajvanshi, who works as a scientist at Reliance. They have one daughter, Tarini. The family lives in the IIT Bombay campus in Powai, Mumbai.
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Duryodhan, V. S.; Singh, Shiv Govind; Agrawal, Amit (20 April 2017). "Effect of Cross Aspect Ratio on Flow in
Diverging and Converging Microchannels".
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343:"Determination of tangential momentum accommodation coefficient and slip coefficients for rarefied gas flow in a microchannel"
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for
Science and Technology, one of the highest Indian science awards, for his contributions to engineering sciences in 2018.
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is an Indian engineer and an institute chair professor at the
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Microscale Flow and Heat
Transfer: Mathematical Modeling and Flow Physics
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Recipients of the Shanti Swarup Bhatnagar Award in Engineering Science
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Bhandarkar, U. V.; Agrawal, Amit; Hemadri, Vadiraj (1 October 2018).
318:(NASI). He has won several awards and recognitions, including the
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Shanti Swarup Bhatnagar Prize for Science and Technology
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Shanti Swarup Bhatnagar Prize for Science and Technology
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Three-dimensional hydrodynamic focusing microdevice
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127:Agrawal, who started his career as an engineer at
755:"Awardee Details: Shanti Swarup Bhatnagar Prize"
298:serve as editor of three important journals β
139:, Australia during 2003β04 before joining the
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152:Council of Scientific and Industrial Research
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267:Platelet Rich Plasma Generation Microdevice
200:. Unsourced material may be challenged and
1438:University of Newcastle (Australia) alumni
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675:"Amit Agrawal β Google Scholar Citations"
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220:Learn how and when to remove this message
288:such higher-order equations analytically
146:Agrawal has published several articles,
1458:Indian expatriates in the United States
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312:Indian National Academy of Engineering
304:Experimental Thermal and Fluid Science
141:Indian Institute of Technology, Bombay
118:Indian Institute of Technology, Bombay
732:. Shanti Swarup Bhatnagar Prize. 2017
263:Constant wall temperature microdevice
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198:adding citations to reliable sources
135:, did his post-doctoral work at the
255:Blood Plasma Separation microdevice
316:National Academy of Sciences India
239:University of Newcastle, Australia
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973:Sekharipuram Narayaniyer Seshadri
571:"Prof. Amit Agrawal β IIT Bombay"
237:(in 2002) and a postdoc from the
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1453:Indian expatriates in Australia
59:Work on diagnostic microdevices
516:Microchannel (microtechnology)
445:Microfluidics and Nanofluidics
379:Microfluidics and Nanofluidics
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1463:21st-century Indian inventors
1443:University of Delaware alumni
482:Journal of Fluids Engineering
416:Journal of Fluids Engineering
320:Shanti Swarup Bhatnagar Prize
1448:Academic staff of IIT Bombay
1335:Venkata Narayana Padmanabhan
1468:Indian mechanical engineers
896:Kshitish Ranjan Chakravorty
310:; and elected as Fellow by
18:Indian engineer (born 1974)
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1269:Sanghamitra Bandyopadhyay
1228:Budharaju Srinivasa Murty
730:"View Bhatnagar Awardees"
701:"Agrawal on ResearchGate"
457:10.1007/s10404-017-1974-8
391:10.1007/s10404-018-2034-8
360:10.1007/s12046-018-0929-4
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597:"In science, they trust"
1388:Amol Arvindrao Kulkarni
854:Homi Nusserwanji Sethna
422:(3): 031205β031205β12.
137:University of Newcastle
122:diagnostic microdevices
1323:Yogesh Moreshwar Joshi
961:Vaidyeswaran Rajaraman
913:Amitabha Bhattacharyya
878:Ayyagari Sambasiva Rao
488:(6): 061203β061203β9.
235:University of Delaware
1329:Avinash Kumar Agarwal
1287:Ravishankar Narayanan
1133:Kamanio Chattopadhyay
949:Udipi Ramachandra Rao
943:Mangalore Anantha Pai
335:Selected bibliography
1394:Debdeep Mukhopadhyay
1139:Devang Vipin Khakhar
996:V. S. R. Arunachalam
623:"Prof. Amit Agrawal"
194:improve this section
1281:Upadrasta Ramamurty
1263:G. K. Ananthasuresh
1234:Ranjan Kumar Mallik
1210:Ashish Kishore Lele
925:Rajindar Pal Wadhwa
840:Engineering Science
791:. 28 September 2018
603:. 30 September 2018
1483:Tata Motors people
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1311:Soumen Chakrabarti
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789:The Indian Express
761:. 24 December 2018
707:. 24 December 2018
681:. 24 December 2018
679:scholar.google.com
655:. 13 November 2018
629:. 24 December 2018
577:. 24 December 2018
550:Engineering portal
300:Scientific Reports
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1353:Amit Agrawal
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1275:Sirshendu De
1192:Vivek Ranade
1174:Atul Chokshi
1121:S. K. Bhatia
1109:Vivek Borkar
793:. Retrieved
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