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Changes in Quality Characteristics of Commercial Milk with Different Physical Treatments during Storage

  • Choi, Jinyoung (Division of Food Science and Culinary Arts, Shinhan University) ;
  • Kim, Youngsung (Division of Food Science and Culinary Arts, Shinhan University) ;
  • Kwon, Taeeun (Division of Food Science and Culinary Arts, Shinhan University)
  • Received : 2017.12.18
  • Accepted : 2018.02.23
  • Published : 2018.02.28

Abstract

In this study, the fatty acid content and quality characteristics of the massless enegy treated commercial milk products stored at $30^{\circ}C$ were investigated. The pH of pasteurized milk decreased significantly. UHT milk showed also significant decrease in pH to 4.70~5.72 on the 8th day of storage which was higher than control even there was no significant differences. The acidity of pasteurized milk decreased significantly from the 2nd day of storage to 0.13~0.65% in treatments and control and control was 0.94% at the 8th day of storage and 0.35% in the treatment of ultra high temperature milk. The solid content of pasteurized milk was $7.5^{\circ}Bx$ at 1 day after storage, which showed significant differences from the $11.2^{\circ}Bx$ in the treatment. Pasteurized milk showed more bacterial growth in the treatment than in the control. After 4 days of storage, there was no bacterial count in pasteurized milk but it increased significantly $1.9{\times}10^8$ and $4.5{\times}10^6$ each in UHT milk. Lactic acid bacteria were detected in the curd $2.0{\times}10^6$ in the control and $2.0{\times}10^8$ in the treatment at the 4th day. Palmitic acid content in the saturated fatty acid was the highest at 35.4~41.4% in both pasteurized and ultra high temperature milk. In the UHT milk, linolenic acid was significantly increased to 3.8% in the treatment compared with 2.9% in the control at the 4th day of storage. Therefore, commercial ultra high temperature milk with physical treatment to increase beneficial bacteria showed significant difference compared to the control after 5 days of storage in this experiment.

Keywords

References

  1. Antonio, J. T., Marta, C., Jordi, S., Ramon, G. & Buenaventura, G. (2002). Application of high-hydrostatic pressure on milk and dairy products, a review. Innovative Food Science and Emerging Technologies, 3, 295-307. https://doi.org/10.1016/S1466-8564(02)00049-8
  2. Cho, M. J., Kim, O. J., Kyue, I. S., Kim, M. S., Kim, B. S., Kim, Y. J., Moon, S. H., Park, J. H., Park, H. O., Lee, G. J., Lee, M. K., Choi, E. Y., Choi, J. Y., & Han, J. S. (2017). Principle of cook. Kyomoon, Seoul, Korea, 329-330.
  3. Choi, S. H., Choi. J. J., Lee, S. B., & Yoon, Y. H. (2004). Resazurin reduction time test to determine post-pasteurization contamination and shelf life of market milk. Journal of Animal Science and Technology, 46(6), 999-1006. https://doi.org/10.5187/JAST.2004.46.6.999
  4. Choi, S. Y., & Yoon, S. (1997). pH, titratable acidity, glucose content, viable cell counting and sensory evaluation of Bifidobacterium longum ATCC 15707 containing milk and soymilk during cold storage. Korean Journal of Food Science and Technology, 29(1), 115-119.
  5. Jeong, S. J., Noh, B. S., Joo, J. C., Lee, M. H., & Park, S. Y. (2011). Quantitative descriptive analysis and principal component analysis for sensory attributes of commercial milk preserved at different temperature. Korean Journal of Dairy Science and Technology, 29(2), 25-35.
  6. Jeong, C. I., Kim, K. T., Cho, N. Y., Jeong, M. J., Oh, H. S., & Lee, K. (2002). Comparison of the keeping quality of UHT pasteurized milks in Korea. Journal of Animal Science & Technology, 22(3), 247-251.
  7. Hong, E. J., Noh, B. S., & Park, S. Y. (2010). Analysis of the different heated milks using electronic nose. Korean Journal Food Science Technology, 30(5), 831-839.
  8. Ki, K. S., Lim, D. H., Park, S. M., Lim, H. J., Park, S. B., Kim, T. I., Jeong, S. G., Baek, K. S., Kwon, E. K., & Lee, S. Y. (2015). Physicochemical properties of organic milk and conventional milk from Chungnam and Jeonbuk, Korea. Korean Journal of Food Science and Technology, 47(3), 359-363. https://doi.org/10.9721/KJFST.2015.47.3.359
  9. Kim, S. S., & Kim, J. W. (1993). Effects of pre-heat treatments on milk protein and microorganism aspects in raw milk. Journal of Agricultural Science, 20(2), 153-166.
  10. Kim, C. H., Baek, S. C., & Jeong, Y. H. (2002). Changes of lactulose content during heat treatment of milk. Korean Journal for Food Science of Animal Resources, 22(1), 50-54.
  11. Kim, H. S., Cheon, J. H., Kim, H. S., Lee, S. K., Kim, D. H., Lee, J. H., Lim, J. H., Song, K. Y., Kim, Y. J., Kang, I. B., Jeong D. N., Park, J. H., Jang H. S., & Seo, G. H. (2016). Assessment of various factors influencing the composition of cow's milk produced by organic and conventional methods. J. Milk Sci. Biotechnol, 34(1), 21-35. https://doi.org/10.22424/jmsb.2016.34.1.21
  12. Ko, S. H., Han, Y. S., Yoon, H. G., Jang, S. S., Myoung, K. S., Kim, S. A., Shim, J. H., Park, S. Y., Lee, H. J., & Lee, K. Y. (2014). Quality characteristics of ice creams using Tarak. Culinary Science & Hospitality Research, 20(6), 91-101. https://doi.org/10.20878/cshr.2014.20.6.008008008
  13. Ko, Y, T., & Kang, J. H. (1999). Shelf life of freeze dried product of lactic acid bacteria fermented food prepared from milk or egg white. Korean Journal of Food Science and Technology, 31(5), 1349-1356.
  14. Lee Y. Y., & Park, S. K. (1998). Distribution of indicator organisms and influence of storage temperature and period in commercial animal foods. Journal of Food Hygiene and Safety, 13(4), 430-440.
  15. Lee, Y. C., & Shin, D. B. (1985). Studies on preservation of concentrated milk by freeze - Flow process. Korean Journal of Food Science and Technology, 17(6), 500-505.
  16. Lee, J. E., Choi, E. J., Park, S. Y., Jeon, K. Y., Jang, J. Y., Oh, Y. J., Lim, S. K., Kim, T. H., Lee, J. H., Park, H. W., Kin, H. J., Jeon, J. T., & Choi, H. J. (2014). Effects of high pressure treatment on the microbiological and chemical properties of milk. Korean Journal of Microbiology and Biotechnology, 42(3), 267-274. https://doi.org/10.4014/kjmb.1405.05007
  17. Nam, E. S., & Park, S. I. (2011). A study on a school milk program for elementary school students in Seoul. Culinary Science & Hospitality Research, 17(4), 121-139. https://doi.org/10.20878/cshr.2011.17.4.009
  18. Noh, B. S., Kim, S. S., Jang, P. S., Lee, H. K., Park, W. J., Song, K. B., Lee, H. S., Lee, S. B., & Hwang, K. T. (2017). Food processing & preservation. Shinkwang, Seoul, Korea, 329-330.
  19. Park, J. G., Seong, S. J., & Om, A. S. (2016) Effect of heat sterilization on milk nutrition by hydrodynamic cavitation - Vitamin A, B2, calcium, phosphorus, magnesium, zinc, fat, Culinary Science & Hospitality Research, 22(8), 219-225. https://doi.org/10.20878/cshr.2016.22.8.019019019
  20. Park, S. Y. (2006). Fatty acid compositions and physicochemical properties of feta cheese made from bovine milk. Journal of Animal Science and Technology, 48(4), 611-622. https://doi.org/10.5187/JAST.2006.48.4.611
  21. Shin, J. C., Lee, J. G., You, J. G., You, Y. J., & Park, G. I. (1972). Analysis of the fatty acid composition of cow's milk fat by gas liquid chromatogrohy with temperature programming. Korean Journal of Food Science and Technolog, 4(3), 213-223.
  22. Yoon, T. H., Lim, K. J., Kim, Y. S., Han, Y. S., & Jeong, Y. G. (1982). Fatty acid composition of human and cow's milk. Journal of the Korean Society of Food Science and Nutrition, 11(1), 15-20.