Abstract

The windings insulation of electrical machines will remain a topic that is updated frequently. The criteria severity requested by the electrical machine applications increases continuously. Manufacturers and designers are always confronted with new requirements or new criteria with enhanced performances. The most problematic requirements that will be investigated here are the extremely long lifespan coupled to critical operating conditions (overload, supply grid instabilities, and critical operating environments). Increasing lifespan does not have a considerable benefit because the purchasing price of usual machines has to be compared to the purchasing price and maintenance price of long lifespan machines. A machine having a 40-year lifespan will cost more than twice the usual price of a 20-year lifetime machine. Systems which need a long lifetime are systems which are crucial for a country, and those for which outage costs are exorbitant. Nuclear power stations are such systems. It is certain that the used technologies have evolved since the first nuclear power plant, but they cannot evolve as quickly as in other sectors of activities. No-one wants to use an immature technology in such power plants. Even if the electrical machines have exceeded 100 years of age, their improvements are linked to a patient and continuous work. Nowadays, the windings insulation systems have a well-established structure, especially high voltage windings. Unfortunately, a high life span is not only linked to this result. Several manufacturers’ improvements induced by many years of experiment have led to the writing of standards that help the customers and the manufacturers to regularly enhance the insulation specifications or qualifications. Hence, in this publication, the authors will give a step by step exhaustive review of one insulation layout and will take time to give a detailed report on the standards that are linked to insulation systems. No standard can provide insurance about lifespan, nor do any insulation tests incorporate all of the operating conditions: thermal, mechanical, moisture and chemical. Even if one manufacturer uses the standards compliance to demonstrate the quality of its realization; in the end, the successful use in operation remains an objective test. Thereafter, both customer and manufacturers will use the standards while knowing that such documents cannot fully satisfy their wishes. In one 20-year historical review, the authors will highlight the duration in insulation improvements and small breakthroughs in standards writing. High lifespan machines are not the main interest of standards. A large part of this publication is dedicated to the improvements of the insulation wall to achieve the lifespan. Even if the choice of raw materials is fundamental, the understanding of ageing phenomena also leads to improvements.

Highlights

  • The asynchronous machines (AM) are electrical machines which are used in systems where reliability is set as the first requirement

  • Looking at the reliability of electrical machines, insulation is one of the most important elements: any fault in design or during manufacturing can result in a dramatic impact on the lifespan and it is not always possible to discover this during the factory acceptance tests

  • Two contradictory goals must be achieved during this process; mica tapes should be firmly clamped on the copper conductor to ensure continuity of the insulation and must be loose enough to allow the creeping of the epoxy resin

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Summary

Introduction

The asynchronous machines (AM) are electrical machines which are used in systems where reliability is set as the first requirement. The second domain of interest is about the systems which need an extremely long lifespan (40 years and more) In this field of interest, all ageing events are carefully investigated during the design and manufacturing stages. Looking at the reliability of electrical machines, insulation is one of the most important elements: any fault in design or during manufacturing can result in a dramatic impact on the lifespan and it is not always possible to discover this during the factory acceptance tests. The first chapter introduces the arrangement of elements in the insulation wall It introduces at the same time its dramatic impact on lifespan and provides the first analysis of standards. At the end of the publication, the last section focuses on several well-known issues which are still relevant

Environment Overview of Insulation Systems
One strand or multi-strand conductor
Design of High
Insulation System and its Aging
The Thermal Ageing in Front of Standards
Ageing Parameter Other Than Thermal Ageing in Front of Standards
Standards Evolutions and Experimental Aspects
The Defects and How to Find Them
Voltage endurance tests show an improvement in electrical
Knowledge Base and its Influence on Insulation Process
Partial Discharges Mechanism
26. Measured
Mechanical Vibrations and Temperature Glass Transition
Industrial Examples
Findings
Conclusions
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