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用于生物医学应用的增材制造:关于分类、能源消耗及其自新冠疫情以来的重要作用的综述

Additive manufacturing for biomedical applications: a review on classification, energy consumption, and its appreciable role since COVID-19 pandemic.

作者信息

Rehman Mudassar, Yanen Wang, Mushtaq Ray Tahir, Ishfaq Kashif, Zahoor Sadaf, Ahmed Ammar, Kumar M Saravana, Gueyee Thierno, Rahman Md Mazedur, Sultana Jakia

机构信息

Department of Industry Engineering, School of Mechanical Engineering, Northwestern Polytechnical University, Xian, 710072 China.

Department of Industrial and Manufacturing Engineering, University of Engineering and Technology, Lahore, 54890 Pakistan.

出版信息

Prog Addit Manuf. 2022 Dec 27:1-35. doi: 10.1007/s40964-022-00373-9.

Abstract

The exponential rise of healthcare problems like human aging and road traffic accidents have developed an intrinsic challenge to biomedical sectors concerning the arrangement of patient-specific biomedical products. The additively manufactured implants and scaffolds have captured global attention over the last two decades concerning their printing quality and ease of manufacturing. However, the inherent challenges associated with additive manufacturing (AM) technologies, namely process selection, level of complexity, printing speed, resolution, biomaterial choice, and consumed energy, still pose several limitations on their use. Recently, the whole world has faced severe supply chain disruptions of personal protective equipment and basic medical facilities due to a respiratory disease known as the coronavirus (COVID-19). In this regard, local and global AM manufacturers have printed biomedical products to level the supply-demand equation. The potential of AM technologies for biomedical applications before, during, and post-COVID-19 pandemic alongwith its relation to the industry 4.0 (I4.0) concept is discussed herein. Moreover, additive manufacturing technologies are studied in this work concerning their working principle, classification, materials, processing variables, output responses, merits, challenges, and biomedical applications. Different factors affecting the sustainable performance in AM for biomedical applications are discussed with more focus on the comparative examination of consumed energy to determine which process is more sustainable. The recent advancements in the field like 4D printing and 5D printing are useful for the successful implementation of I4.0 to combat any future pandemic scenario. The potential of hybrid printing, multi-materials printing, and printing with smart materials, has been identified as hot research areas to produce scaffolds and implants in regenerative medicine, tissue engineering, and orthopedic implants.

摘要

诸如人类衰老和道路交通事故等医疗保健问题呈指数级增长,这给生物医学领域在定制化生物医学产品的供应方面带来了内在挑战。在过去二十年中,增材制造的植入物和支架因其打印质量和制造便利性而备受全球关注。然而,增材制造(AM)技术所固有的挑战,即工艺选择、复杂程度、打印速度、分辨率、生物材料选择和能耗,仍然对其使用造成了若干限制。最近,由于一种名为冠状病毒(COVID-19)的呼吸道疾病,全球都面临着个人防护设备和基本医疗设施供应链的严重中断。在这方面,本地和全球的增材制造制造商都打印了生物医学产品以平衡供需关系。本文讨论了增材制造技术在COVID-19大流行之前、期间和之后在生物医学应用中的潜力及其与工业4.0(I4.0)概念的关系。此外,本文还研究了增材制造技术的工作原理、分类、材料、加工变量、输出响应、优点、挑战和生物医学应用。讨论了影响生物医学应用增材制造可持续性能的不同因素,更侧重于对能耗的比较研究,以确定哪种工艺更具可持续性。该领域最近的进展,如4D打印和5D打印,对于成功实施I4.0以应对未来任何大流行情况都很有用。混合打印、多材料打印和智能材料打印的潜力已被确定为再生医学、组织工程和骨科植入物中生产支架和植入物的热门研究领域。

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The role of 3D printing during COVID-19 pandemic: a review.3D打印在新冠疫情期间的作用:综述
Prog Addit Manuf. 2021;6(1):19-37. doi: 10.1007/s40964-020-00159-x. Epub 2020 Nov 24.
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Recent Advances in 3D Printing of Biomedical Sensing Devices.生物医学传感设备3D打印的最新进展
Adv Funct Mater. 2022 Feb 23;32(9). doi: 10.1002/adfm.202107671. Epub 2021 Nov 25.
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Using industrial 4.0 technologies to combat the COVID-19 pandemic.利用工业4.0技术抗击新冠疫情。
Ann Med Surg (Lond). 2022 Jun;78:103811. doi: 10.1016/j.amsu.2022.103811. Epub 2022 May 20.
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Bioact Mater. 2021 Dec 30;15:214-249. doi: 10.1016/j.bioactmat.2021.12.027. eCollection 2022 Sep.
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Rheological Analysis of Bio-ink for 3D Bio-printing Processes.用于3D生物打印过程的生物墨水的流变学分析
J Manuf Process. 2022 Apr;76:708-718. doi: 10.1016/j.jmapro.2022.02.048. Epub 2022 Mar 5.
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Crit Rev Food Sci Nutr. 2023;63(25):7399-7422. doi: 10.1080/10408398.2022.2045896. Epub 2022 Feb 28.
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