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Analysis of Temperature and Probability Distribution Model of Frozen Storage Warehouses in South Korea

국내 식품냉동창고 온도분포 실태 및 확률분포모델 분석

  • Park, Myoung-Su (Department of Food and Nutrition, Kunsan National University) ;
  • Kim, Ga-Ram (Department of Food and Nutrition, Kunsan National University) ;
  • Bahk, Gyung-Jin (Department of Food and Nutrition, Kunsan National University)
  • 박명수 (군산대학교 식품영양학과) ;
  • 김가람 (군산대학교 식품영양학과) ;
  • 박경진 (군산대학교 식품영양학과)
  • Received : 2018.12.20
  • Accepted : 2019.04.05
  • Published : 2019.04.30

Abstract

This study aimed to generate a probability distribution model based on temperature data of frozen food storage facility as input variables for microbial risk assessment (MRA). We visited 8 food-handling businesses to collect temperature data from their cold storage warehouses. The overall mean temperature inside the storage facilities was $-20.48{\pm}3.08^{\circ}C$, with 20.4% of the facilities having above $-18^{\circ}C$, with minimum and maximum temperature values of -10.3 and $-25.80^{\circ}C$ respectively. Temperature distributions by space locations of natural and forced convection were $-22.57{\pm}0.84$ and $-17.81{\pm}1.47^{\circ}C$, $-22.49{\pm}1.05$ and $-17.94{\pm}1.44^{\circ}C$, and $-22.68{\pm}1.03$ and $-18.08{\pm}1.42^{\circ}C$ in the upper (2.4~4 m), middle (1.5~2.4 m), and lower (0.7~1.5 m) shelves, respectively. Probability distributions from the temperature data were obtained using the program @RISK. Statistical ranking was determined using goodness of fit to determine the probability distribution model. Our results show that a log-normal distribution [5.9731, 3.3483, shift (-26.4281)] is most appropriate for relative MRA conduction.

본 연구는 국내 냉동보관창고 보관온도에 대한 조사자료를 활용하여, 온도분포를 추정하였고 이를 미생물 위해 평가(microbial risk assessment; MRA)의 입력변수로 활용할 수 있도록 적정 확률분포 모델을 제시하였다. 조사에 참여한 8곳의 냉동보관창고에서 측정된 공간상의 온도는 최저 $-25.8^{\circ}C$, 최고 $-10.3^{\circ}C$, 평균 $-20.48{\pm}3.08^{\circ}C$이었으며, $-18^{\circ}C$이상의 냉동창고 비율은 20.4%로 조사되었다. 공간별 온도분포는 자연대류를 이용하는 냉동창고의 경우 상단(2.4~4 m) $-22.57{\pm}0.84^{\circ}C$, 중단(1.5~2.4 m) $-22.49{\pm}1.05^{\circ}C$, 하단(0.7~1.5 m) $-22.68{\pm}1.03^{\circ}C$, 최고온도차이는 $1.78^{\circ}C$이었으며, 강제대류를 이용하는 냉동창고의 온도분포는 상단(2.4~4 m) $-17.81{\pm}1.47^{\circ}C$, 중단(1.5~2.4 m) $-17.94{\pm}1.44^{\circ}C$, 하단(0.7~1.5 m) $-18.08{\pm}1.42^{\circ}C$, 최고온도차이는 $0.94^{\circ}C$로 조사되었다. 보관온도는 냉동창고 모든 공간에서 온도가 일정하게 유지되는 것이 아니라 편차가 존재하는 것으로 나타났다. 이상의 수집된 온도자료는 @RISK를 이용, 적합성 검정(GOF: A-D, K-S test)을 수행하여, MRA에서 활용할 수 있는 국내 냉동보관창고 온도분포에 대한 가장 적합한 확률분포모델로 Lognormal [5.9731,3.3483, shift(-26.4281)]이 선정하였다.

Keywords

References

  1. Koo, K.H.: Recent technology of refrigeration and thawing method in food industry. Bull. Food Technol., 4, 731-741 (2009).
  2. Park, S.H., Kim, K.S., Yoo, Y.A., Lee, J.K., Jung, S.K., Han, K.Y., Kim, M.S.: Antibiotic resistance patterns of Enterococcus spp. isolated from commercial frozen foods. J. Fd Hyg. Safety., 25, 122-128 (2010).
  3. Bahk, G.J.: The analysis of food safety incidents from 1998 to 2008 in Korea. J. Fd Hyg. Safety., 24, 162-168 (2009).
  4. Korea Consumer Agency.: Frozen food hygiene is inadequate. (2001).
  5. Ministry of Food and Drug Safety.: The monitoring for microbial changes in food by temperature control at retail shop. (2007).
  6. Choi, E.J., Chung, Y.B., Kim, J.S., Chun, H.H.: Effects of freezing and thawing treatments on natural microflora, inoculated Listeria monocytogenes and Campylobacter jejuni on chicken breast. J. Fd Hyg. Safety., 31, 42-50 (2016). https://doi.org/10.13103/JFHS.2016.31.1.42
  7. Codex: Standard for quick frozen blocks of fish fillet, minced fish flesh and mixtures of fillets and minced fish flesh. (2014).
  8. Ministry of Food and Drug Safety.: Korean Food Code, Korea. (2018).
  9. Kang, S.J., Kim, O.S., Son, S.H., Yoo, H.M., Lee, J.W., Jung, S.Y., Cho, A.Y., Yoon, K.S.: A study on consumer's recognition of frozen processed food and contamination levels of frozen seafoods. J. East Asian Soc. Dietary Life., 18, 873-883 (2008).
  10. Shim K.B., Hong G.P., Choi M.J., Min S.G.: Effect of high pressure freezing and thawing process on the physical properties of pork. Korean J. Food Sci. Ani. Resour., 29, 736-742 (2009). https://doi.org/10.5851/kosfa.2009.29.6.736
  11. Tiganitasa, A., Zeakia, N., Gounadakib, A.S., Drosinosa, E.H., Skandamis, P.N.: Study of the effect of lethal and sublethal pH and aw stresses on the inactivation or growth of Listeria monocytogenes and Salmonella Typhimurium. Food microbiol., 134, 104-112 (2009). https://doi.org/10.1016/j.ijfoodmicro.2009.02.016
  12. Choi M.S., Choi J.A., Kim M.H., Bahk G.J.: The comparison and distribution of temperatures established in display stands and food surfaces for cold and frozen foods in large discount stores in Korea. J. Fd Hyg. Safety., 26, 308-314 (2011).
  13. Park, M.S., Bahk, G.J.: Current state for temperature management of cold and frozen food transportation vehicles in Jeonbuk province. J. Fd Hyg. Safety., 32, 107-113 (2017). https://doi.org/10.13103/JFHS.2017.32.2.107
  14. Ackerley, N., Sertkaya, A., Lange, R.: Food transportation safety: characterizing risks and controls by use of expert opinion. Food Prot. Trends., 30, 212-222 (2010).
  15. Oh, D.H., Rahman, S.M.E., Kim, J.M., Bahk, G.J.: The statistics probability analysis of pork-cutting processing conditions for microbial risk assessment. J. Fd Hyg. Safety., 24, 63-68 (2009).
  16. Bahk, G.J.: Statistical probability analysis of storage temperatures of domestic refrigerator as a risk factor of foodborne illness outbreak. Kor. J. Food Technol., 42, 373-376 (2010).
  17. Franz, E., Tromp, S.O., Rijgersberg, H.: Quantitative microbial risk assessment for Escherichia coli O157:H7, Salmonella, and Listeria monocytogenes in leafy green vegetables consumed at salad bars. J. Food Prot., 73, 274-285 (2010). https://doi.org/10.4315/0362-028X-73.2.274
  18. Son, H., Luis, R., Muhammad, M.: Numerical simulation of temperature and velocity in a refrigerated warehouse. Int. J. Refrg., 33, 1015-1025 (2010). https://doi.org/10.1016/j.ijrefrig.2010.02.010
  19. Leygonie, C., Britz, T.J., Hoffman, L.C.: Impact of freezing and thawing on the quality of meat: Review. Meat Sci., 91, 93-98 (2012). https://doi.org/10.1016/j.meatsci.2012.01.013
  20. Cardoso, G.P., Dutra, M.P., Fontes, P.R., Ramos, A.L.S., Gomide, L.A.M., Ramos, E.M.: Selection of a chitosan gelatin-based edible coating for color preservation of beef in retail display. Meat Sci., 114, 85-94 (2016). https://doi.org/10.1016/j.meatsci.2015.12.012
  21. Lee, Y.S., Ha, J.H., Park, K.H., Lee, S.Y., Choi, Y.J., Lee, D.H., Park, S.H., Moon, E.S., Ryu, K., Shin, H.S., Ha, S.D.: Survey on storage temperature of domestic major chilled foods in refrigerator. J. Fd Hyg. Safety., 23, 304-308 (2008).
  22. Kobayashi, R., Kimizuka, N., Watanabe, M., Suzuki, T.: The effect of supercooling on ice structure in tuna meat observed by using X-ray computed tomography. Int. J. Refrig., 60, 270-277 (2015). https://doi.org/10.1016/j.ijrefrig.2015.07.011
  23. Ministry of Food and Drug Safety.: Pre-request programs in HACCP. (2011).
  24. Kim, J.D.: Effect of frost and Defrost on the operating characteristics of refrigeration system. The J. of the Koeran Soc. for Power Syst. Eng., 14, 5-10 (2010).
  25. Evans, J.A.: Frozen food science and technology. Blackwell Publishing. Oxford, UK. (2008).
  26. Ho, S.H., Rosario, L., Rahman, M.M.: Numerical simulation of temperature and velocity in a refrigerated warehouse. Int. J. Refrig., 29, 692-699 (2010). https://doi.org/10.1016/j.ijrefrig.2005.12.011
  27. Runsey, I.: Temperature and air distribution in refrigerated warehouses - A new dimension to energy savings. Food safety, Food supply, Food solutions 213. GDS Publishing. (2008).
  28. Chourasia, M.K., Goswami, T.K.: Simulation of effect of stack dimensions and stacking arrangement on cool-down characteristics of potato in a cold store by computational fluid dynamics. Biosyst. Eng., 96, 503-515 (2007). https://doi.org/10.1016/j.biosystemseng.2006.12.010
  29. Kim, T.W., Choi, J.H., Bahk, G.J., Oh, D.H.: Exposure assessment of microbiological risk factors from edible ices. J. Fd Hyg. Safety., 24, 226-231 (2009).