Abstract

PurposeA scalable life cycle inventory (LCI) model of a permanent magnet electrical machine, containing both design and production data, has been established. The purpose is to contribute with new and easy to use data for life cycle assessment (LCA) of electric vehicles by providing a scalable mass estimation and manufacturing inventory for a typical electrical automotive traction machine. The aim of this article (part II of two publications) is to present the manufacturing data with associated collection procedures, from material constituents to complete motor. Another objective is to explain the gate-to-gate system boundaries and the principles for linking the LCI model upstream, to database data, in order to create a full cradle-to-gate dataset.MethodsData for design and production of electrical machines has been compiled from books, scientific papers, benchmarking literature, expert interviews, various specifications, factory records, and a factory site visit. For the manufacturing part, new primary data was collected directly from industry, with a motor factory and a steel mill in Sweden as main contributors, and from technical literature. Other LCA publications were used, if presented in sufficient detail to be disaggregated and revised, to match the gaps of the model. The data represents the current level of technology and targets high-volume manufacturing to the largest extent possible. Also, flows crossing the system boundary have a recommended link to Ecoinvent data, or a request for an attentive selection of input data, depending on the user’s object of study. A distinction was made between the regular and an extended system boundary, wherein the processing of some smaller subparts was accounted for through proposals of ready-made Ecoinvent activities for production efforts.Results and discussionAn extensive new dataset representing electrical machine manufacturing is presented, and, together with the estimation of motor mass and configuration of article part I, it forms a comprehensive scalable LCI model of a typical automotive electric traction motor. New production data includes a complete motor factory, electrical steel production, and the fabrication of a neodymium-dysprosium-iron-boron (Nd(Dy)FeB) magnet. In addition, smaller, new datasets cover the composition of silicon steel, the making of electrolytic iron, enameling of copper wire, and die casting of aluminum.ConclusionsSuccessful data generation required “data building” from multiple sources and access to expert support. Transparent, well-explained, and disaggregated data records were found to be crucial for LCA data validation and usefulness.

Highlights

  • 1.1 BackgroundLife cycle assessment (LCA) of electrified vehicles for road transport, for example, plug-in hybrid or fully electric passenger cars, is an active research area where many case studies are conducted and published (Hawkins et al 2012; Nordelöf et al 2014)

  • Responsible editor: Zbigniew Stanislaw Klos. Preamble This series of two articles presents a new scalable life cycle inventory (LCI) data model of an electrical automotive traction machine, available to download from the CPM database of the Swedish Life Cycle Center

  • As a consequence, linked flows for input of rare earth oxides (REOs) to the LCI model are recommended as optional, and users of the model are urged to take extra care in linking the REOs to upstream inventory data and to evaluate different options for input each time the model is used

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Summary

LCI METHODOLOGY AND DATABASES

A scalable life cycle inventory of an electrical automotive traction machine—Part II: manufacturing processes. This article is published with open access at Springerlink.com

Methods
Results and discussion
Conclusions
Background
The purpose of a scalable life cycle inventory model
Aim and content of the article series
Data collection
Linking the model to Ecoinvent
Representativeness of studied manufacturing procedures
Upstream data and the processing of rare earth elements included in the model
Fabrication of magnets
General processing of steel and copper
Electrical steel making
Aluminum die casting
Overview and building services
Producing the stator package
Building the rotor package
Housing parts and final assembly
Discussion and conclusions
Findings
Accessing the LCI model file and model report
Full Text
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