Challenges in Multiscale Modeling of Polymer Dynamics
Проблемы многомасштабного моделирования динамики полимеров
2013-06-13
SCID: 54.1/wzvu4rdj
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coarse-graining methodsmultiple-scale-bridging methodsmultiscale modelingpolymer dynamicssystematic coarse-graining
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Abstract (AI)
The mechanical and physical properties of polymeric materials originate from the interplay of phenomena at different spatial and temporal scales. As such, it is necessary to adopt multiscale techniques when modeling polymeric materials in order to account for all important mechanisms. Over the past two decades, a number of different multiscale computational techniques have been developed that can be divided into three categories: (i) coarse-graining methods for generic polymers; (ii) systematic coarse-graining methods and (iii) multiple-scale-bridging methods. In this work, we discuss and compare eleven different multiscale computational techniques falling under these categories and assess them critically according to their ability to provide a rigorous link between polymer chemistry and rheological material properties. For each technique, the fundamental ideas and equations are introduced, and the most important results or predictions are shown and discussed. On the one hand, this review provides a comprehensive tutorial on multiscale computational techniques, which will be of interest to readers newly entering this field; on the other, it presents a critical discussion of the future opportunities and key challenges in the multiscale modeling of polymeric materials and how these methods can help us to optimize and design new polymeric materials.
Key Findings
1
For each technique the paper presents fundamental equations, key results or predictions, and a discussion of strengths and limitations relevant to polymer property prediction.
2
Multiscale computational techniques for polymers can be categorized into three groups: (i) coarse-graining for generic polymers, (ii) systematic coarse-graining, and (iii) multiple-scale-bridging methods.
3
Polymeric material properties arise from interactions across multiple spatial and temporal scales, necessitating multiscale modeling techniques.
4
The review identifies future opportunities and key challenges in multiscale polymer modeling aimed at optimizing and designing new polymeric materials.
5
This work critically compares eleven multiscale computational techniques, assessing their ability to link polymer chemistry rigorously to rheological material properties.
Research Object
Polymeric materials (multiscale models of polymers)
Research Subject
Multiscale computational modeling techniques evaluated for linking polymer chemistry to rheological and mechanical properties, including their capabilities, predictions, limitations, and challenges
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2013-06-13
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