daohang fenxiangbox searchbox qikanlogonew daohangnew searchboxnew navrightzone footerzone paper

Three-Dimensional Architecture of Engineering Multiphase Metals AITranslate

vienna university of technology; vienna university of technology
AITranslate
Publisher: Elsevier
Share Citation Information Add to Favorites

    Scan to share on WeChat or Moments

Use WeChat scan.
Share with WeChat friends or Moments

Abstract AITranslate

The thermomechanical properties of multiphase metals are determined by a combination of the properties of the microstructural phases and the internal architecture formed by them. The latter must be described using three-dimensional techniques in cases where the phases are distributed nonuniformly, have complex morphologies, form interconnected structures, and present contiguity between those structures. Furthermore, all these morphological aspects may change during service exposure. One of these techniques is X-ray tomography, which has experienced an increased interest from materials scientists during the past decade owing to the advances in spatial and time resolution to reveal nondestructively the internal structure of materials. The present review summarizes the main features of this technique in regard to its capabilities to image metal-based engineering materials three dimensionally. Special emphasis is put on the contributions of X-ray tomography to understand the relationships between architecture and thermomechanical properties with specific examples for lightweight metals, cast iron, steel, and metal matrix composites.

KeyWords AITranslate

Xray tomography light metals cast iron steel slab metal matrix composites
No data

Basic Information:

DOI:https://doi.org/10.1146/annurev-matsci-070511-155109

Chinese Library Classification Number:

Citation Information:

The thermomechanical properties of multiphase metals are determined by a combination of the properties of the microstructural phases and the internal architecture formed by them. The latter must be described using three-dimensional techniques in cases where the phases are distributed nonuniformly, have complex morphologies, form interconnected structures, and present contiguity between those structures. Furthermore, all these morphological aspects may change during service exposure. One of these techniques is X-ray tomography, which has experienced an increased interest from materials scientists during the past decade owing to the advances in spatial and time resolution to reveal nondestructively the internal structure of materials. The present review summarizes the main features of this technique in regard to its capabilities to image metal-based engineering materials three dimensionally. Special emphasis is put on the contributions of X-ray tomography to understand the relationships between architecture and thermomechanical properties with specific examples for lightweight metals, cast iron, steel, and metal matrix composites.

quote

GB/T 7714-2015 [1] Guillermo Requena, H. Peter Degischer. Annual Review of Materials Research, 2012(42). DOI:10.1146/annurev-matsci-070511-155109.
MLA [1] Guillermo Requena, and H. Peter Degischer. Annual Review of Materials Research, no. 42, 2012, https://doi.org/10.1146/annurev-matsci-070511-155109.
APA [1] Guillermo Requena, & H. Peter Degischer. (2012). Annual Review of Materials Research(42). https://doi.org/10.1146/annurev-matsci-070511-155109
IEEE [1] Guillermo Requena and H. Peter Degischer, Annual Review of Materials Research, no. 42, 2012, doi: 10.1146/annurev-matsci-070511-155109. keywords: {Xray tomography;light metals;cast iron;steel slab;metal matrix composites}