Issue
Korean Journal of Chemical Engineering,
Vol.39, No.5, 1316-1323, 2022
The modelling of fluidized bed dryer for spherical and non spherical particles
We designed and modelled a fluidized bed dryer. Based on the literature, modelling of a bed dryer is carried out for two situations: for spherical and non-spherical particles. Two case studies were taken from the literature for modelling the fluidized bed dryer for naphthalene balls and mushroom slices. Fluidized bed dryer design was carried out with respect to diffusivity of the bed materials. Drying characteristics in terms of effective diffusivity were studied for naphthalene balls and mushroom slices using a tapered fluidized bed dryer. The variation of effective diffusivity was obtained with change in inlet air temperature, velocity, thickness of slab and drying time. Experimental effective diffusivity as obtained from literature was compared with model predicted values, provided lower deviations with RMSE of less than 8.28% for spherical naphthalene balls and 0.936% for the mushroom slices. Mass transfer coefficient obtained for naphthalene balls was in the range of 2.1×10-4 to 4.857×10-3 m sec-1. The diffusivity constant was evaluated using Fick's diffusion equation assuming surface moisture in equilibrium with the surrounding atmosphere. The value of diffusivity constant (D0) obtained is 1.828×10-9m2sec-1 and the value of activation energy (Ea) obtained is 4.523 kJ mol-1.
[References]
  1. Cortés SAP, Carvajal YRA, Norambuena JPV, Vásquez JAN, Troncoso JAJ, Hurtado JP, Chem. Eng. Technol., 44, 1567, 2021
  2. Mohideen MF, Sreenivasan B, Sulaiman SA, Raghavan VR, Korean J. Chem. Eng., 29, 862, 2012
  3. Choi Y, Maken S, Lee S, Chung E, Park J, Min B, Korean J. Chem. Eng., 24, 288, 2007
  4. Park K, Kim H, Maken S, Kim Y, Min B, Park J, Korean J. Chem. Eng., 22, 412, 2005
  5. Barathiraja R, Thirumal P, Saraswathy G, Rahamathullah I, J. Mech. Sci. Technol., 35, 2707, 2021
  6. Onwude DI, Hashim N, Janius RB, Nawi NM, Abdan K, Compr. Rev. Food Sci. Food Saf., 15, 599, 2016
  7. Deomore DN, Yarasu RB, Processes, 6, 195, 2018
  8. Haron NS, Zakaria JH, Batcha MFM, IOP Conf. Ser. Mater. Sci. Eng., 243, 012, 2017
  9. Giri SK, Prasad S, J. Food Eng., 78, 512, 2007
  10. Pandey H, Sharma HK, CBS Publishers & Distributors Pvt Ltd, India (2006).
  11. Pardeshi IL, Arora S, Borker PA, Dry. Technol., 27, 288, 2009
  12. Khawas P, Dash KK, Das AJ, Deka SC, Int. J. Food Eng., 11, 667, 2015
  13. Suherman S, Susanto EE, IOP Conf. Ser. Mater. Sci. Eng., 543, 012, 2019
  14. Niamnuy C, Devahastin S, J. Food Eng., 66, 267, 2005
  15. Srinivasakannan C, Balasubramanian N, Adv. Powder Technol., 20, 298, 2009
  16. Puspasari I, Talib MZM, Daud WRW, Tasirin SM, Dry. Technol., 30, 619, 2012
  17. Reyes A, Moyano P, Paz J, Dry. Technol., 25, 581, 2007
  18. Srikiatden J, Roberts JS, Int. J. Food Prop., 10, 739, 2007
  19. Aris R, Chem. Eng. Sci., 50, 3897, 1995
  20. Price PS, Jayjock MA, Regul. Toxicol. Pharmacol., 51, 15, 2008