Viscoelastic third-order nanofluid MHD flow for wire coating purpose inside canonical coating die with variable viscosity effect: numerical and analytical solutions

3区 物理与天体物理 Q1 Engineering
None Zeeshan, Haroon Ur Rasheed, Muhammad Naeem, None Ataullah
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引用次数: 0

Abstract

AbstractThe polyethene coating is frequently functionalized to cables or pipes for corrosion prevention, voltage differential, mechanical characteristics, and environmental legislation. The metal coating technique, in particular, is important in a variety of commercial applications. Coaxial extrusion, immersion, and electromagnetic application are examples of wire surface treatments. The wire coating procedure necessitates an increase in thermal performance. As a result, this research aims to determine how floating nanoparticles affect the mass and heat transport mechanisms of non-Newtonian fluid in the posttreatment for cable coating processes. For nanofluids, the Buongiorno model is used, including variable viscosity. The original mathematical formulation in terms of nonlinear ODEs for bvph2 is altered to first-order ODEs using similarity transformation. The data collection for the projected bvph2 is developed for variables related to the proposed model manipulating the velocity consuming the explicit bvph2 technique. The exercise, confirmation, and analysis processes of the ND-solve method are utilized to appraise the attained results of bvhp2 for numerous cases, and an assessment of the achieved consequences is executed with available statistics set to pattern the correctness and efficiency of the suggested algorithm for the scrutiny of non-Newtonian fluid problem connected bvph2. The prevailing uniformity of recommended conclusions with published findings designates the legitimacy of the structure, and the accurateness of 10−6 is also accomplished. The analytical findings of this investigation revealed that within the Reynolds modeling, the stress on the whole wire surface combined with shear forces at the surface predominates Vogel’s model. The contribution of nanomaterials upon force on the entire surface of wire and shear forces at the surface appears positive. A non-Newtonian feature can increase the capping substance’s velocity. This research could aid in the advancement of wire coating technologies. For the first instance, the significance of nanotechnology during wire coating evaluation is explored by utilizing Brownian motion with generation/absorption slip processes. For time-dependent viscosity, two alternative models are useful.KEYWORDS: Bvph2 and ND-solve solutionwire surface coatingpressurized coating dienanomaterialsthird-grade fluidNumerical and Analytical solutions AcknowledgementThe authors would like to thank the Deanship of Scientific Research at Umm Al-Qura University.Disclosure statementNo potential conflict of interest was reported by the author(s).
具有变黏度效应的典型涂覆模具内用于线材涂覆的粘弹性三阶纳米流体MHD流动:数值解和解析解
摘要聚乙烯涂层经常用于电缆或管道的防腐、电压差、机械特性和环保法规。特别是金属涂层技术,在各种商业应用中都很重要。同轴挤压、浸泡和电磁应用是电线表面处理的例子。线材涂层工艺需要提高热性能。因此,本研究旨在确定悬浮纳米颗粒如何影响电缆涂层后处理过程中非牛顿流体的质量和热传递机制。对于纳米流体,采用了包括可变粘度在内的Buongiorno模型。利用相似变换将bvph2的非线性ode的原始数学公式转化为一阶ode。预测bvph2的数据收集是针对与所提议的模型相关的变量开发的,该模型操纵使用显式bvph2技术的速度。利用nd -求解方法的练习、确认和分析过程来评估bvhp2在许多情况下获得的结果,并使用可用的统计集对所建议算法的正确性和效率进行评估,以审查与bvph2相关的非牛顿流体问题。推荐结论与已发表的研究结果的普遍一致性表明了结构的合法性,并且10−6的准确性也得到了实现。本研究的分析结果表明,在雷诺模型中,整个金属丝表面的应力与表面的剪切力结合在Vogel模型中占主导地位。纳米材料对金属丝表面受力和表面剪切力的贡献为正。非牛顿特征可以增加封盖物质的速度。该研究有助于线材涂层技术的发展。首先,利用具有产生/吸收滑移过程的布朗运动,探讨了纳米技术在线材涂层评价中的意义。对于随时间变化的粘度,有两种可供选择的模型是有用的。关键词:Bvph2和ND-solve溶液;线材表面涂层;加压涂层;薄膜材料;披露声明作者未报告潜在的利益冲突。
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来源期刊
Waves in Random and Complex Media
Waves in Random and Complex Media 物理-物理:综合
自引率
0.00%
发文量
677
审稿时长
3.0 months
期刊介绍: Waves in Random and Complex Media (formerly Waves in Random Media ) is a broad, interdisciplinary journal that reports theoretical, applied and experimental research related to any wave phenomena. The field of wave phenomena is all-pervading, fast-moving and exciting; more and more, researchers are looking for a journal which addresses the understanding of wave-matter interactions in increasingly complex natural and engineered media. With its foundations in the scattering and propagation community, Waves in Random and Complex Media is becoming a key forum for research in both established fields such as imaging through turbulence, as well as emerging fields such as metamaterials. The Journal is of interest to scientists and engineers working in the field of wave propagation, scattering and imaging in random or complex media. Papers on theoretical developments, experimental results and analytical/numerical studies are considered for publication, as are deterministic problems when also linked to random or complex media. Papers are expected to report original work, and must be comprehensible and of general interest to the broad community working with wave phenomena.
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