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Food 3D-printing Technology and Its Application in the Food Industry

식품 3D-프린팅 기술과 식품 산업적 활용

  • Received : 2016.11.03
  • Accepted : 2016.12.05
  • Published : 2017.02.28

Abstract

Foods are becoming more customized and consumers demand food that provides great taste and appearance and that improves health. Food three-dimensional (3D)-printing technology has a great potential to manufacture food products with customized shape, texture, color, flavor, and even nutrition. Food materials for 3D-printing do not rely on the concentration of the manufacturing processes of a product in a single step, but it is associated with the design of food with textures and potentially enhanced nutritional value. The potential uses of food 3D-printing can be forecasted through the three following levels of industry: consumer-produced foods, small-scale food production, and industrial scale food production. Consumer-produced foods would be made in the kitchen, a traditional setting using a nontraditional tool. Small-scale food production would include shops, restaurants, bakeries, and other institutions which produce food for tens to thousands of individuals. Industrial scale production would be for the mass consumer market of hundreds of thousands of consumers. For this reason, food 3D-printing could make an impact on food for personalized nutrition, on-demand food fabrication, food processing technologies, and process design in food industry in the future. This article review on food materials for 3D-printing, rheology control of food, 3D-printing system for food fabrication, 3D-printing based on molecular cuisine, 3D-printing mobile platform for customized food, and future trends in the food market.

Keywords

References

  1. Adhikari B, Howes T, Bhandari BR, Truong, V. 2000. Experimental studies and kinetics of single drop drying and their relevance in drying of sugar-rich foods: a review. Int. J. Food Prop. 3:323-351. https://doi.org/10.1080/10942910009524639
  2. Bhandari BR, Datta N, Howes T. 1997. Problems associated with spray drying of sugar-rich foods. Dry. Technol. 15: 671-684. https://doi.org/10.1080/07373939708917253
  3. Bhandari BR, Howes T. 1999. Implication of glass transition for the drying and stability of dried foods. J. Food Eng. 40: 71-79. https://doi.org/10.1016/S0260-8774(99)00039-4
  4. Bhandari BR, Roose YH. 2003. Dissolution of sucrose crystals in the anhydrous sorbitol melt. Carbohydr. Res. 338: 361-367. https://doi.org/10.1016/S0008-6215(02)00466-4
  5. Brick J. Hershey offers personal 3D printing of chocolate treats. Available from: http://www.psfk.com/2015/01/cocojet-custom-printhershey.html. Accessed Oct. 15, 2016.
  6. Campanella OH, Peleg, M. 1987. Determination of the yield stress of semi-liquid foods from squeezing data. J. Food Sci. 52: 214-217. https://doi.org/10.1111/j.1365-2621.1987.tb14008.x
  7. Charm S.E. 1962. Determination of shear stress rate behavior in foods in the presence of a yield stress. J. Food Sci. 28: 107-113.
  8. Chawla NV, Davis DA. 2013. Bringing big data to personalized healthcare: a patient-centered framework. J. Gen. Int. Med. 28: 660-665.
  9. De Kee D, Turcotte G, Fildey K. 1980. New method for the determination of yield stress. J. Texture Stud. 10: 281-288. https://doi.org/10.1111/j.1745-4603.1980.tb00254.x
  10. Diaz JV, Noort MWJ, Van BKJC. 2015. Method for the production of an edible object by powder bed (3d) printing and food products obtainable therewith. PCTWO201515897A1.
  11. Fli, Liu GY, Wang YH, Zhang X, Zhao X, Gao ZY. 2015. Food 3D printing prototyping apparatus comprises storage tank connected to extruded material unit, where bottom of storage tank is connected to buffer tank via conveying pipe, and buffer tank is placed on heating or cooling unit. China patent NO. 201520233891U.
  12. Glicksman M. 1982. Functional properties of hydrocolloids. In: Food Hydrocolloids vol. I, M. Glicksmaneds, CRC Press, New York, pp. 50-57.
  13. Goncalves EV, da Silva Lannes SC. 2010. Chocolate rheology. Cienc. Technol. Aliment. 30: 845-851. https://doi.org/10.1590/S0101-20612010000400002
  14. Grood JPW, Grood PJ, Tillie LWM. 2013. Method and device for dispensing a liquid. US patent NO. 20110121016A1.
  15. Hao L, Mellor S, Seaman O, Henderson J, Sewell N, Sloan M. 2010. Material characterisation and process development for chocolate additive layer manufacturing. Virt. Phys. Prototyp. 5: 57-64. https://doi.org/10.1080/17452751003753212
  16. Haque MK, Roose YH. 2006. Differences in the physical state and thermal behavior of spray-dried and freeze-dried lactose and lactose/protein mixtures. Innov. Food Sci. Emerg. Technol. 7: 62-73. https://doi.org/10.1016/j.ifset.2004.12.004
  17. Hull CW. 1986. Apparatus for production of three-dimensional objects by stereolithography. US patent NO. 4575330.
  18. Kim HJ. 2014. Liquid material cartridge for three-dimensional printer used in e.g. food industry, has extruding device moved forward and backward and top and bottom by Y-axis motor and Z-axis drive motor arranged in frame lower portion respectively. Korea patent NO. 201415725A.
  19. Lipton J, Arnold D, Nigl F, Lopez N, Lipson H. 2010. Multimaterial food printing with complex internal structure suitable for conventional structure suitable for conventional post-processing. In: 21st Annual International Solid Freeform Fabrication Symposium-an Additive Manufacturing Conference. August 9-11, Austin, TX, USA, pp. 809-815.
  20. Luisel R, Huang S, Mao Q, Xu T, Zhang J, Chen S, Guo J, Emilio S, VICTOR D, XAVIER O. 2014. Additive manufacturing printer system for printing e.g. food product, has processor that provides controller with position coordinates for movement of tool, instructions for exchange of capsule holders, and adjustment of heating device. China patent NO. 201480038848A.
  21. Malone E, Lipson H. 2007. Fab@Home: the personal desktop fabricator kit. Rapid Prototyp. J. 13: 245-255. https://doi.org/10.1108/13552540710776197
  22. Michail N. 2013. Biozoon's 3D printed smooth foods target Europe's elderly. Available from: http://www.foodnavigator.com/Market-Trends/Biozoon-s-3D-printed-smooth-foods-target-Europes-elderly. Accessed Oct. 15, 2016.
  23. Missaire F. Qiu C-G. Rao MA. 1990. Yield stress of structured and unstructured food suspensions. J. Texture Stud. 21: 479-490. https://doi.org/10.1111/j.1745-4603.1990.tb00495.x
  24. Norman J, Madurawe RD, Moore CM, Khan M. A, Khairuzzaman A. 2017. A new chapter in pharmaceutical manufacturing: 3D-printed drug products. Adv. Drug Del. Rev. 108: 39-50. https://doi.org/10.1016/j.addr.2016.03.001
  25. OfoliRY. Steffe JF. 1992. Some observations on the use of slit rheometry for characterizing the primary normal stress difference of extrudates. J. Food Eng. 18: 145-157.
  26. Open NASA. 2016. 3D food printer in space. Available from: http://www.open.nasa.gov/innovation-space/3d-food-printer-inspace/3Dfood printer in space. Accessed Oct. 15, 2016.
  27. Roose YH. 2010. Glass transition temperature and its relevance in food processing. Annu. Rev. Food Sci. Technol. 1: 469-496. https://doi.org/10.1146/annurev.food.102308.124139
  28. Shirazi SFS, Gharehkhani S, Mehrali M, Yarmand H, Metselaar, HSC.Adibkadri, N, Osman NAA. 2015. A review on powderbased additive manufacturing for tissue engineering: Selective laser sintering and inkjet 3D printing. Sci. Technol. Adv. Mater. 16: 033502. https://doi.org/10.1088/1468-6996/16/3/033502
  29. Slade L, Levine H. 1994. Water and glass transition-dependence of the glass transition on composition and chemical structure : special implication for flour functionality in cookie baking. J. Food Eng. 22: 143-188. https://doi.org/10.1016/0260-8774(94)90029-9
  30. Sun J, Zhou W, Huang D, Fuh JY, Hong GS. 2015. An overview of 3D printing technologies for food fabrication. Food Bioprocess Technol. 8: 1605-1615. https://doi.org/10.1007/s11947-015-1528-6
  31. Wei HH, Xu SR, Wei JY, Wei TH. 2015. Edible 3D print material, comprises main material and auxiliary material, where main material comprises starch, water, free sugar, pentosan and protein and auxiliary material comprises methyl cellulose, enzyme and cyclic oligosaccharides. China patent NO. 2015278915A.
  32. Yang J, Wu L, Liu J. 2001. Rapid prototyping and fabrication method for 3-D food objects, US Patent, NO. 6280785.
  33. Yang F, Zhang M, Bhandari B. 2015. Recent development in 3D food printing. Crit. Rev. Food Sci. Nut. Published online 19 Oct 2015.
  34. Yoo B. Rao MA. Steff JF. 1995. Yield stress of food dispersions with the vane method at controlled shear rate and shear stress. J. Texture Stud. 26: 1-10. https://doi.org/10.1111/j.1745-4603.1995.tb00780.x
  35. Zoran A, Coelho M. 2011. Cornucopia: the concept of digital gastronomy. Leonardo 44: 425-431. https://doi.org/10.1162/LEON_a_00243

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