SAE J2293/2_201402
Current
The latest, up-to-date edition.
Energy Transfer System for Electric Vehicles - Part 2: Communication Requirements and Network Architecture
Hardcopy , PDF
English
26-02-2014
1. SCOPE
2. REFERENCES
3. DEFINITIONS
4. ABBREVIATIONS AND ACRONYMS
5. SYSTEM DEFINITION AND CONTEXT
6. FUNCTIONAL SYSTEM REQUIREMENTS
7. SYSTEM ARCHITECTURE
8. VALIDATION
9. DATA DICTIONARY
10. NOTES
APPENDIX A - PROPOSED CHANGES TO SAE J2178 IN
SUPPORT OF SAE J2293-2
Specifies requirements for Electric Vehicles (EV) and the off-board Electric Vehicle Supply Equipment (EVSE) used to transfer electrical energy to an EV from an Electric Utility Power System (Utility) in North America.
DocumentType |
Standard
|
Pages |
197
|
ProductNote |
STABILIZED VERSION IS NOW AVAILABLE
|
PublisherName |
SAE International
|
Status |
Current
|
Supersedes |
SAE J2293 establishes requirements for Electric Vehicles (EV) and the off-board Electric Vehicle Supply Equipment (EVSE) used to transfer electrical energy to an EV from an Electric Utility Power System (Utility) in North America. This document defines, either directly or by reference, all characteristics of the total EV Energy Transfer System (EV-ETS) necessary to insure the functional interoperability of an EV and EVSE of the same physical system architecture. The ETS, regardless of architecture, is responsible for the conversion of AC electrical energy into DC electrical energy that can be used to charge the Storage Battery of an EV, as shown in Figure 1.The different physical ETS system architectures are identified by the form of the energy that is transferred between the EV and the EVSE, as shown in Figure 2. It is possible for an EV and EVSE to support more than one architecture.This document does not contain all requirements related to EV energy transfer, as there are many aspects of an EV and EVSE that do not affect their interoperability. Specifically, this document does not deal with the characteristics of the interface between the EVSE and the Utility, except to acknowledge the Utility as the source of energy to be transferred to the EV.The functional requirements for the ETS are described using a functional decomposition method. This is where requirements are successively broken down into simpler requirements and the relationships between requirements are captured in a graphic form. The requirements are written as the transformation of inputs into outputs, resulting in a model of the total system.Each lowest level requirement is then allocated to one of four functional groups (FG) shown in Figure 2. These groups illustrate the variations of the three different system architectures, as the functions they represent will be accomplished either on an EV or within the EVSE, depending on the architecture. Physical requirements for the channels used to transfer the power and communicate information between the EV and the EVSE are then defined as a function of architecture. System architecture variations are referred to as follows:aType A—Conductive AC System Architecture—J2293-1—6.2.1bType B—Inductive System Architecture —J2293-1—6.2.2cType C—Conductive DC System Architecture—J2293—6.2.3The requirements model in Section 6 is not intended to dictate a specific design or physical implementation, but rather to provide a functional description of the system’s expected operational results. These results can be compared against the operation of any specific design. Validation against this document is only appropriate at the physical boundary between the EVSE and EV. See Section 8.
SAE J1773_201406 | SAE Electric Vehicle Inductively Coupled Charging |
SAE J1773_201406 | SAE Electric Vehicle Inductively Coupled Charging |
SAE J2178/1_201104 | Class B Data Communication Network Messages - Detailed Header Formats and Physical Address Assignments |
SAE J1772_201602 | SAE Electric Vehicle and Plug in Hybrid Electric Vehicle Conductive Charge Coupler |
NFPA 70 : 2017 | NATIONAL ELECTRICAL CODE |
SAE J1798_200807 | Recommended Practice for Performance Rating of Electric Vehicle Battery Modules |
SAE J2178/4_201104 | Class B Data Communication Network Messages - Message Definitions for Three Byte Headers |
SAE J1715_201410 | Hybrid Electric Vehicle (HEV) and Electric Vehicle (EV) Terminology |
SAE J2178/2_201104 | Class B Data Communication Network Messages - Part 2: Data Parameter Definitions |
SAE J2178/3_201105 | Class B Data Communication Network Messages - Part 3 - Frame IDs for Single-Byte Forms of Headers |
SAE J1850_201510 | Class B Data Communications Network Interface |
Access your standards online with a subscription
Features
-
Simple online access to standards, technical information and regulations.
-
Critical updates of standards and customisable alerts and notifications.
-
Multi-user online standards collection: secure, flexible and cost effective.