Browse > Article
http://dx.doi.org/10.5307/JBE.2016.41.3.232

Thin-layer Drying Characteristics of Rapeseed  

Lee, Hyo-Jai (Division of Food Safety, Distribution and Standard, Korea Food Research Institute)
Lee, Seung-Kee (Division of Bio-Industry Engineering, Koungju National University)
Kim, Hoon (Division of Food Safety, Distribution and Standard, Korea Food Research Institute)
Kim, Woong (Division of Bio-Industry Engineering, Koungju National University)
Han, Jae-Woong (Division of Bio-Industry Engineering, Koungju National University)
Publication Information
Journal of Biosystems Engineering / v.41, no.3, 2016 , pp. 232-239 More about this Journal
Abstract
Purpose: The aims of this study were to define the drying characteristics of rapeseed and to determine the optimum thin-layer drying model for rapeseed by considering the effects of drying temperature and relative humidity. Methods: The thin-layer drying experiments were conducted at different combinations of drying air temperature levels of 40, 50, and $60^{\circ}C$ and relative humidity levels of 30, 45, and 60%, on both of which drying rate depends. The drying rate increased with increasing air temperature as well as decreasing relative humidity. The 13 models were fitted to the experimental data. Results: From the results of the regression analysis for empirical constants of the Page model, the values of $R^2$ were the highest (ranging from 0.9924 to 0.9966) and the values of RMSE were the lowest (ranging from 0.0169 to 0.0296). Conclusions: For all drying conditions considered, the Page model was determined to be the most suitable model for describing the thin-layer drying of rapeseed (P-value < 0.01). The moisture diffusion coefficients were calculated using the moisture diffusion equation for a spherical shape, based on Fick's second law.
Keywords
Deep-bed drying; Drying rate; Moisture diffusion; Rapeseed; Thin-layer drying;
Citations & Related Records
Times Cited By KSCI : 4  (Citation Analysis)
연도 인용수 순위
1 Crisp, J. and J. L. Woods. 1994. The drying properties of rapeseed. Journal of Agricultural Engineering Research 57:89-97.   DOI
2 Crank, J. 1975. The mathematics of diffusion (Second edition). Oxford University Press, Ely House, London, W. I.
3 Danae, D., K. Tzia and V. Gekas. 2000. A knowledge base for the apparent mass diffusion coefficient (Deff) of foods. International Journal of Food Properties 3(1):1-14.   DOI
4 Ghaly, T. F. and J. W. Sutherland. 1984. Heat damage to grain and seeds. Journal of Agricultural Engineering Research 30:337-345.   DOI
5 Glenn, T. L. 1978. Dynamic analysis of grain drying system, Unpublished PhD. Thesis, Ohio State University, Ann Arbor, MI.
6 Han, J. W., D. H. Keum, H. Kim and S.E. Lee. 2006. Thin layer drying model of green rice. Journal of Biosystems Engineering 31(5):410-415.   DOI
7 Han, J. W., D. H. Keum W. Kim L. A. Duc S. H. Cho and H. Kim. 2010. Circulating concurrent-flow drying simulation of rapeseed. Journal of biosystems engineering 35(6):401-407.   DOI
8 Henderson, S. M. and S. Pabis. 1961. Grain drying theory. I: Temperature effect on drying coefficients. Journal of Agricultural Engineering Research 6:169-174.
9 Kameoka, T. 1988. Thin layer drying characteristics rough rice(1). Journal of the Japanese Society of Agricultural Machinery 50(3):69-76.
10 Karathanos, V. T. 1999. Determination of water content of dried fruits by drying kinetics. Journal of Food Engineering 39:337-344.   DOI
11 Keum, D. H and C. W. Park. 1997a. Equilibrium moisture contents and thin layer drying equation of cereal grains and mushrooms(I). Journal of the Korean Society for Agricultural Machinery 22(1):11-20 (In Korean).
12 Kim, Y. H., H. S. Choi. J. K. Kwon, K. H. Cho, H. S. Yoon and D. S. Kim. 2008. A study on the improvement of the circulation dryer for rapeseed. Journal of biosystems engineering 33(6):390-395 (In Korean).   DOI
13 Keum, D. H. and C. W. Park. 1997b. Thin layer drying equations of short grain rough rice. Proceedings of the Korean society for agricultural machinery conference 2(2):149-154 (In Korean).
14 Keum, D. H., H. Kim and N. U. Hong. 2002. Equilibrium moisture contents and thin layer drying equations of cereal grains and mushrooms (II) -for oak mushroom (Lentinus edodes)-. Journal of the Korean Society for Agricultural Machinery 27(3):219-226 (In Korean).
15 Keum, D. H., H. Kim and S. J. Hong. 2002. Far-infrared ray drying characteristics of rough rice(1)-thin layer drying equation-. Journal of the Korean Society for Agricultural Machinery 27(1):45-50
16 Kim, H., D. H. Keum and O. W. Kim. 2004. Low temperature thin layer drying model of rough rice. Journal of Biosystems Engineering 29(6):495-500 (In Korean).   DOI
17 Kim, H., D. H. Keum. O. W. Kim and J. W. Han. 2003. Thin layer drying of rough rice by low temperature. Proceedings of the Korean society for agricultural machinery conference 7(2):220-225 (In Korean).
18 Lewis, W. K. 1921. The rate of drying of solid materials. Industrial Engineering Chemistry Research 13:427-432.   DOI
19 Overhults, D. D., G. M. White, H. E. Hamilton and I. J. Ross. 1973. Drying soybeans with heated air. Transactions of the ASAE 16(1):112-113.   DOI
20 Page, C. 1949. Factors influencing the maximum rate of drying shelled corn in layers. M.S. Thesis, Purdue University, W. Lafayette, IN, USA.
21 Thompson, T. L., 1967. Predicted performances and optimal designs of convection grain dryers. Ph.D. thesis, Purdue University, W. Lafayette, IN, USA.
22 Palacios, T. R., L. B. Potes, R. A. Montenegro and S. A. Giner. 2004. Peanut drying kinetics: determination of the effective diffusivity for in-shell and shelled peanuts by applyinga short-time analytical model to measured data Proceeding sof the 14th International Drying Symposium B:1448-1455.
23 Sacilik, K., R. Keskin and A. K. Elicin. 2006. Mathematical modelling of solar tunnel drying of thin layer organic tomato. Journal of Food Engineering 73:231-238.   DOI
24 Sharaf-Eldeen, Y. I., J. L. Blaisdell and M. Y. Hamdy. 1980. A model for ear corn drying. Transactions of the ASAE 5:1261-1265.
25 Sokhansanj, S., W. Zhijie, D. Yajas and T. Kameoka. 1986. Equilibrium relative humidity-moisture content of rapeseed (canola) from $5^{\circ}C$ to $25^{\circ}C$. Transactions of the ASAE 29(3):837-839.   DOI
26 Temple, S. J. and A. J. B. Boxtel. 1999. Thin layer drying of black tea. Journal of Agriculture and Engineering Research 74:167-176.   DOI
27 Basunia, M. A and T. Abe. 1998. Thin-layer drying characteristics of rough rice at low and high temperature. Drying Technology 16(3-5):579-595.   DOI
28 Verma, L. R., R. A. Bucklin, J. B. Endan and F. T. Wratten. 1985. Effects of drying air parameters on rice drying models. Transactions of the ASAE 28:296-301.   DOI
29 Wang, C. Y. and R. P. Singh. 1978. A single layer drying equation for rough rice. Transactions of the ASAE, Paper No. 3001, St. Joseph, MI, USA.
30 ASAE S352.2. 2004. Moisture measurement -Unground grain and seeds. ASAE standards 51st Edition 582-583.
31 Basunia, M. A. and T. Abe. 2005. Thin-layer re-wetting of rough rice at low and high temperatures. Journal of Stored Products Research 41:163-173.   DOI
32 Brooker, D. B., F. W. Bakker-Arkema and C. W. Hall. 1974. Drying Cereal Grains. The AVI Publishing Company Inc., Westport, Connecticut.
33 Cassells, J. A., L. P. Caddick, J. R. Green and R. Reuss. 2003. Isotherms for Australian canola varieties. Proceedings of the Australian Postharvest Technical Conference 59-63.
34 Correa, P. C., J. H. Martins and D. Christ. 1999. Thin layer drying rate and loss of viability modelling for rapeseed (Canola). Journal of Agricultural Engineering Research 74(1):33-39.   DOI
35 ANSI/ASAE S448.1. 2004. Thin-layer drying of agricultural crops. ASAE standards 51st Edition 598-600.
36 Akpinar, E.K., C. Sarsilmaz and C. Yildiz. 2004. Mathematical modeling of a thin-layer drying of apricots in a solar energized rotary dryer. International Journal of Energy Research 28:739-752.   DOI