3D printing applications in smart farming and food processing

被引:5
|
作者
Padhiary, Mrutyunjay [1 ]
Barbhuiya, Javed Akhtar [1 ]
Roy, Dipak [2 ]
Roy, Pankaj [1 ]
机构
[1] Assam Univ, Dept Agr Engn, TSSOT, Silchar 788011, Assam, India
[2] Tezpur Univ, Dept Elect & Commun Engn, Tezpur, Assam, India
来源
关键词
3D printing; Smart farming; Food processing; Personalized nutrition; Sustainable agriculture; DESIGN; TECHNOLOGIES; MECHANISM;
D O I
10.1016/j.atech.2024.100553
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Additive manufacturing, also known as 3D printing, is an amazing innovation with a wide range of uses in intelligent agriculture and food processing. Along with adjustable farming equipment and autonomous agricultural instruments like drones and robots, it offers real-time data on plant health, nutrient levels, and soil state. 3D printing has reinvented food processing by enabling personalized nutrition solutions, particularly in the field of medicinal nutrition. It also makes it possible to alter the textures and structures of food, creating novel sensory experiences and better-quality goods. 3D printing contributes to sustainable food production by reducing food waste (10-30 %) and using alternative protein sources. According to the study, AI and 3D-assisted IoT sensors can help increase yield by 10 % to 15 % while significantly reducing crop deterioration. They can also help reduce water usage by 20 % to 25 %, labor requirements by 20 % to 30 %, and overall power consumption by 20 %. However, high costs, complex technical and design knowledge, and limitations on production speed and scale are obstacles to broader use. It's also necessary to handle safety and regulatory concerns. 3D printing has a promising future in various fields thanks to advancements in bioprinting, multifunctional materials, blockchain, and artificial intelligence integration. These advancements could boost 3D printing's potential and result in higher output, more sustainable practices, and higher-quality products.
引用
收藏
页数:17
相关论文
共 50 条
  • [41] 3D Printing Smart Eyeglass Frames: A Review
    Tsegay, Filmon
    Ghannam, Rami
    Daniel, Nardos
    Butt, Haider
    ACS APPLIED ENGINEERING MATERIALS, 2023, 1 (04): : 1142 - 1163
  • [42] 3D Printing, Smart Cities, Robots, and More
    Hong, Jason
    Baker, Mary
    IEEE PERVASIVE COMPUTING, 2014, 13 (01) : 6 - 9
  • [43] Hybrid 3D Printing of Functional Smart Hinges
    Raymond, Lily
    Bandala, Erick
    Hua, Weijian
    Mitchell, Kellen
    Tsabedze, Thulani
    Leong, Kaitlin
    Zhang, Jun
    Jin, Yifei
    MACHINES, 2023, 11 (07)
  • [44] Processing technologies for geopolymers: 3D printing and mechanical processing
    Toniolo N.
    Bednarzig V.
    Roether J.A.
    Rost H.
    Boccaccini A.R.
    Keramische Zeitschrift, 2019, 71 (03) : 36 - 41
  • [45] SMART PROCESSING DEVELOPMENT ON 3D CERAMIC STRUCTURES FOR TERAHERTZ WAVE APPLICATIONS
    Miyamoto, Y.
    Chen, W.
    Kanaoka, H.
    Kirihara, S.
    ADVANCED PROCESSING AND MANUFACTURING TECHNOLOGIES FOR STRUCTURAL AND MULTIFUNCTIONAL MATERIALS, 2008, 28 (07): : 79 - 90
  • [46] Research Progress in Improving Processing Methods of 3D/4D Printing Natural Food
    Gu Z.
    Li M.
    Yu L.
    Liu Y.
    Zeng Z.
    Liu Y.
    Journal of Chinese Institute of Food Science and Technology, 2023, 23 (10) : 393 - 402
  • [47] 3D Printing Applications for Space Missions
    Wong, Julielynn Y.
    AEROSPACE MEDICINE AND HUMAN PERFORMANCE, 2016, 87 (06) : 580 - 582
  • [48] Reinforced 3D printing for biomedical applications
    Winkless, Laurie
    MATERIALS TODAY, 2015, 18 (01) : 6 - 7
  • [49] Designs and applications of electrohydrodynamic 3D printing
    Gao, Dajing
    Zhou, Jack G.
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2019, 5 (01)
  • [50] Applications of 3D printing in cardiovascular diseases
    Giannopoulos, Andreas A.
    Mitsouras, Dimitris
    Yoo, Shi-Joon
    Liu, Peter P.
    Chatzizisis, YiannisS.
    Rybicki, Frank J.
    NATURE REVIEWS CARDIOLOGY, 2016, 13 (12) : 701 - 718