An Inverse, Decision-Based Design Method for Integrated Design Exploration of Materials, Products, and Manufacturing Processes

Author:

Nellippallil Anand Balu1,Rangaraj Vignesh2,Gautham B. P.3,Singh Amarendra Kumar4,Allen Janet K.5,Mistree Farrokh1

Affiliation:

1. Aerospace and Mechanical Engineering, University of Oklahoma, Norman, OK 73019 e-mail:

2. Industrial and Systems Engineering, University of Oklahoma, Norman, OK 73019 e-mail:

3. TCS Research, 54-B, Hadapsar Industrial Estate, Pune 411013, Maharashtra, India e-mail:

4. Materials Science and Engineering, Indian Institute of Technology Kanpur, Kanpur 208016, India e-mail:

5. School of Industrial and Systems Engineering, 202 W Boyd Street, Room 116-G, University of Oklahoma, Norman, OK 73019 e-mail:

Abstract

A material's design revolution is underway with a focus to design the material microstructure and processing paths to achieve certain performance requirements of products. A host of manufacturing processes are involved in producing a product. The processing carried out in each process influences its final properties. To couple the material processing-structure-property-performance (PSPP) spaces, models of specific manufacturing processes must be enhanced and integrated using multiscale modeling techniques (vertical integration) and then the input and output of the various manufacturing processes must be integrated to facilitate the flow of information from one process to another (horizontal integration). Together vertical and horizontal integration allows for the decision-based design exploration of the manufacturing process chain in an inverse manner to realize the end product. In this paper, we present an inverse method to achieve the integrated design exploration of materials, products, and manufacturing processes through the vertical and horizontal integration of models. The method is supported by the concept exploration framework (CEF) to systematically explore design alternatives and generate satisficing design solutions. The efficacy of the method is illustrated for a hot rod rolling (HRR) and cooling process chain problem by exploring the processing paths and microstructure in an inverse manner to produce a rod with specific mechanical properties. The proposed method and the exploration framework are generic and support the integrated decision-based design exploration of a process chain to realize an end product by tailoring material microstructures and processing paths.

Publisher

ASME International

Subject

Computer Graphics and Computer-Aided Design,Computer Science Applications,Mechanical Engineering,Mechanics of Materials

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