Bridging the Gap Between Large and Small: Thermofluids and Nanoengineering for the Water-Energy Nexus

By David M. Warsinger

Mechanical Engineering, Purdue University, West Lafayette, IN

Published on

Abstract

Climate change, degrading water resources, and economic and population growth are increasing the need for new science and technologies at the Water-Energy-Food Nexus. In enabling new and improved technologies to tackle these issues, a thermofluids systems approach is essential to guide the design of new nanomaterials, allowing for performance improvements and new capabilities. Following this approach, thermodynamic design of water treatment membrane technologices such as membrane distillation (MD) leads to innovations with superhydrophobic nanostructured surfaces for heat transfer. New structures can also be created and optimized with this approach to operate in large systems. Nanomaterial self-assembly techniques can be guided by thermofluids designs to make macro-scale membrane systems with photonic properties for catalysis and solar distillation.

Bio

avid Warsinger Dr. David Warsinger completed his B.S. and M.Eng at Cornell, and his PhD in Mechanical Engineering at MIT: he completed his graduate studies in a combined 3 years. David’s research focuses on the water-energy nexus, with approaches from thermofluids and nanoengineering. Currently, David is a Postdoc at MIT and beginning a joint Postdoc at Harvard. Prior to starting his PhD, David worked at the engineering consulting firm Arup, where he performed energy and sustainability analysis and designed heating and cooling systems. David is a coauthor of 22 published and 6 submitted journal and conference papers, and a co-inventor of 13 filed or awarded patents. He is also involved with entrepreneurial endeavors, including demonstrating batch reverse osmosis with MIT startup Sandymount, and cofounding Coolify, a startup providing refrigeration via phase-change thermal storage for farmers in developing economies. Notable awards David has earned include the national dissertation award from UCOWR, the highest GPA award for his Masters, 9 presenter awards, and the MIT institute award for best research mentor for undergraduate students.

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References

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  2. D. Warsinger, J. Swaminathan, L. Maswadeh, and J. Lienhard V, “Superhydrophobic condenser surfaces for air gap membrane distillation,” Journal of Membrane Science, vol. 492, pp. 578 – 587, 2015, https://doi.org/10.1016/j.memsci.2015.05.067.
  3. D. Warsinger, J. Swaminathan, and J. Lienhard V, “Effect of module inclination angle on air gap membrane distillation,” Proceedings of the 15th International Heat Transfer Conference (IHTC-15), Aug. 2014, http://hdl.handle.net/1721.1/100241.
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  8. D. Warsinger, E. Tow, K. Nayar, L. Maswadeh, and J. Lienhard V, “Energy efficiency of batch and semi-batch (ccro) reverse osmosis desalination,” Water Research, vol. 106, pp. 272 – 282, 2016, https://doi.org/10.1016/j.watres.2016.09.029.
  9. D. Warsinger, R. McGovern, G, Thiel, E. Tow, and J. Lienhard V, “Batch pressure-driven membrane separation with closed-flow loop and reservoir,” US20170239620A1, MIT, February 22, 2016.
  10. D. Warsinger, E. Tow, L. Maswadeh, G. Connors, J. Swaminathan, and J. Lienhard V, “Inorganic fouling mitigation by salinity cycling in batch reverse osmosis,” Water Research, vol. 137, pp. 384 – 394, 2018, https://doi.org/10.1016/j.watres.2018.01.060.
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  15. A. Servi, E. Guillen-Burrieza, D. Warsinger, W. Livernois, and K. Notarangelo, “The Effects of iCVD Film Thickness and Conformality on the Permeability and Wetting of MD Membranes”, Journal of Membrane Science, vol. 523, pp. 470-479, Feb. 2017, https://doi.org/10.1016/j.memsci.2016.10.008.
  16. J. Lienhard V, G. Thiel, D. Warsinger, and L. Banchick, “Low Carbon Desalination: Status and Research, Development, and Demonstration Needs”, Massachusetts Institute of Technology, Oct. 2016, http://hdl.handle.net/1721.1/105755.

Cite this work

Researchers should cite this work as follows:

  • David M. Warsinger (2019), "Bridging the Gap Between Large and Small: Thermofluids and Nanoengineering for the Water-Energy Nexus," https://nanohub.org/resources/31612.

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Location

Room 1001, Birck Nanotechnology Center, Purdue University, West Lafayette, IN

Tags

Bridging the Gap Between Large and Small: Thermofluids and Nanoengineering for the Water-Energy Nexus
  • Thermofluids and Nanoengineering for the Water-Energy-Food Nexus 1. Thermofluids and Nanoengineeri… 0
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  • Water-Energy-Food Nexus 2. Water-Energy-Food Nexus 33.366700033366705
    00:00/00:00
  • Technique Spectrum 3. Technique Spectrum 72.272272272272275
    00:00/00:00
  • Warsinger Lab Core Research Areas 4. Warsinger Lab Core Research Ar… 101.73506840173508
    00:00/00:00
  • My Research 5. My Research 122.2555889222556
    00:00/00:00
  • Thermo + Nano 6. Thermo + Nano 133.23323323323325
    00:00/00:00
  • Membrane Distillation Advantages 7. Membrane Distillation Advantag… 155.68902235568902
    00:00/00:00
  • Air Gap Membrane Distillation: Flow Regimes 8. Air Gap Membrane Distillation:… 183.55021688355024
    00:00/00:00
  • AGMD Computational Cell 9. AGMD Computational Cell 229.69636302969639
    00:00/00:00
  • CuO Superhydrophobic Surface Fabrication 10. CuO Superhydrophobic Surface F… 260.76076076076077
    00:00/00:00
  • Jumping droplet condensation 11. Jumping droplet condensation 295.89589589589593
    00:00/00:00
  • CuO Superhydrophobic surface desired properties 12. CuO Superhydrophobic surface d… 339.10577243910581
    00:00/00:00
  • Air-Gap Membrane Distillation Experimental Setup 13. Air-Gap Membrane Distillation … 380.5805805805806
    00:00/00:00
  • Hydrophobic condensing in MD 14. Hydrophobic condensing in MD 416.44978311644979
    00:00/00:00
  • Jumping Droplet Condensation in Membrane Distillation CuO Coated and silanized surfaces 15. Jumping Droplet Condensation i… 427.19386052719386
    00:00/00:00
  • Implications of hydrophobic condensing 16. Implications of hydrophobic co… 468.60193526860195
    00:00/00:00
  • Thermo + Nano 17. Thermo + Nano 492.45912579245913
    00:00/00:00
  • Capacity of Desalination Technologies (total, worldwide) 18. Capacity of Desalination Techn… 501.80180180180184
    00:00/00:00
  • Desalination Energy Efficiency 19. Desalination Energy Efficiency 514.647981314648
    00:00/00:00
  • Top Challenges for Water Treatment & Desalination 20. Top Challenges for Water Treat… 539.9399399399399
    00:00/00:00
  • Reverse Osmosis (RO) 21. Reverse Osmosis (RO) 551.81848515181855
    00:00/00:00
  • What is Batch? 22. What is Batch? 614.3476810143477
    00:00/00:00
  • Batch Reverse Osmosis 23. Batch Reverse Osmosis 662.7627627627628
    00:00/00:00
  • Modeling 24. Modeling 731.23123123123128
    00:00/00:00
  • Standard RO 25. Standard RO 772.77277277277278
    00:00/00:00
  • Batch RO: High Pressure Tank Concept 26. Batch RO: High Pressure Tank C… 805.40540540540542
    00:00/00:00
  • How to make a high pressure tank Batch Process? 27. How to make a high pressure ta… 865.4320987654321
    00:00/00:00
  • Batch RO: High Pressure Tank Concept 28. Batch RO: High Pressure Tank C… 881.18118118118116
    00:00/00:00
  • Analysis details 29. Analysis details 965.09843176509844
    00:00/00:00
  • Reverse osmosis - model results 30. Reverse osmosis - model result… 980.51384718051384
    00:00/00:00
  • Batch Improvement 31. Batch Improvement 1020.653987320654
    00:00/00:00
  • Batch RO anti-fouling 32. Batch RO anti-fouling 1052.218885552219
    00:00/00:00
  • RO Fouling by Induction Time 33. RO Fouling by Induction Time 1122.6893560226895
    00:00/00:00
  • Batch RO Antifouling 34. Batch RO Antifouling 1155.5889222555891
    00:00/00:00
  • Applications 35. Applications 1248.1815148481815
    00:00/00:00
  • Can we get big benefits too 36. Can we get big benefits too 1476.4764764764766
    00:00/00:00
  • Ultrapermeable Nanomaterials + Batch 37. Ultrapermeable Nanomaterials +… 1490.7240573907241
    00:00/00:00
  • Cost savings from Batch + Ultrapermeable Membranes 38. Cost savings from Batch + Ultr… 1545.9125792459126
    00:00/00:00
  • Demo with Renewable Energy Hybrid 39. Demo with Renewable Energy Hyb… 1589.0890890890892
    00:00/00:00
  • Implementation in Peru- Study abroad 40. Implementation in Peru- Study … 1616.3496830163497
    00:00/00:00
  • Thermo + Nano 41. Thermo + Nano 1642.6426426426426
    00:00/00:00
  • Co-assembly of inverse opals 42. Co-assembly of inverse opals 1652.4190857524191
    00:00/00:00
  • Inverse opal applications 43. Inverse opal applications 1685.4521187854523
    00:00/00:00
  • The challenge 44. The challenge 1716.3163163163165
    00:00/00:00
  • Optical Properties of Photonic Crystals 45. Optical Properties of Photonic… 1831.0977644310979
    00:00/00:00
  • Opals and Inverse Opals 46. Opals and Inverse Opals 1896.3630296963631
    00:00/00:00
  • Electroplated Copper Inverse Opals 47. Electroplated Copper Inverse O… 1914.6813480146814
    00:00/00:00
  • Iso-porous membrane: Anodized Al membrane 48. Iso-porous membrane: Anodized … 1990.7240573907241
    00:00/00:00
  • Combining inverse opals & anodized Al/Ti 49. Combining inverse opals & anod… 2011.1444778111445
    00:00/00:00
  • Membrane reactor – credit to Yangyuan & Xavier 50. Membrane reactor – credit to… 2049.8832165498834
    00:00/00:00
  • The Concept 51. The Concept 2073.5735735735739
    00:00/00:00
  • Protein Static Selective Syringes 52. Protein Static Selective Syrin… 2091.8585251918585
    00:00/00:00
  • Water-Energy-Food Nexus 53. Water-Energy-Food Nexus 2119.4861528194861
    00:00/00:00
  • Commercialization Efforts 54. Commercialization Efforts 2231.1978645311979
    00:00/00:00
  • Vision & Collaboration 55. Vision & Collaboration 2236.0026693360028
    00:00/00:00
  • Acknowledgements 56. Acknowledgements 2282.0487153820486
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  • Questions? 57. Questions? 2297.4641307974643
    00:00/00:00
  • References 58. References 2742.5091758425092
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