CHAPTER 16. Dry Powder Coating of Pharmaceutical Solid Dosages

Jesse Zhu, Zhehao Jing, Qingliang Yang, Yingliang Ma, Kwok Chow, Kai-Yu Shi
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引用次数: 3

Abstract

Derived from powder coating of metals, pharmaceutical dry powder coatings have received great attention in the past ten years, owing to their striking potential to replace the organic solvent coating and aqueous coating used in the current pharmaceutical industry. After several initial trials of dry coating, electrostatic dry powder coating was developed and has attracted more attention due to its high coating efficiency and low overall cost. In this technology, coating powders containing coating polymers, pigments, and other excipients are directly sprayed onto the surface of the solid dosage forms without using any organic solvent or water. The deposited coating powders are cured to form a coating film. This dry powder coating technology has many advantages compared to organic solvent coating and aqueous coating. It eliminates the limitations caused by the organic solvent in solvent coating such as environmental issues and health problems. It also surpasses aqueous coating due to its shorter processing time and much greatly reduced energy consumption, leading to a lower overall cost. Specifically, electrostatic powder coating utilizes electrical attraction to promote the movement of coating powders towards the dosage forms, resulting in an enhanced coating powder adhesion, uniformity and coating efficiency, making it more promising compared to other dry coating technologies. This technology has already been developed and applied to various solid dosage forms successfully.
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第十六章。固体制剂的干粉涂层
医药干粉涂料是由金属粉末涂料发展而来的,在过去的十年中受到了广泛的关注,因为它具有取代目前医药工业中使用的有机溶剂涂料和水性涂料的巨大潜力。干式涂料经过几次初步试验后,静电干粉涂料得到了发展,并因其涂装效率高、综合成本低而受到越来越多的关注。在该技术中,不使用任何有机溶剂或水,直接将含有涂层聚合物、颜料和其他赋形剂的涂层粉末喷涂到固体剂型的表面。将沉积的涂层粉末固化形成涂层膜。这种干粉涂料技术与有机溶剂涂料和水性涂料相比具有许多优点。它消除了有机溶剂对溶剂型涂料造成的环境问题和健康问题等限制。它也优于水性涂料,因为它的加工时间更短,大大降低了能耗,导致更低的总成本。具体来说,静电粉末涂料是利用电吸引力来促进涂层粉末向剂型运动,从而提高涂层粉末的附着力、均匀性和涂层效率,与其他干式涂层技术相比,具有更大的发展前景。该技术已成功开发并应用于各种固体剂型。
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Chapter 7. Integrating Remediation and Resource Recovery of Industrial Alkaline Wastes: Case Studies of Steel and Alumina Industry Residues Chapter 8. Conclusions Chapter 11. Applications of Engineered Nanomaterials in the Recovery of Metals from Wastewater Chapter 6. An Exploration of Key Concepts in Application of In Situ Processes for Recovery of Resources from High-volume Industrial and Mine Wastes Chapter 5. Adding Value to Ash and Digestate (AVAnD Project): Elucidating the Role and Value of Alternative Fertilisers on the Soil–Plant System
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