Prognostics and Health Management: A Practical Approach to Improving System Reliability Using Condition-Based Data
暫譯: 預測與健康管理:基於狀態數據提升系統可靠性的實用方法
Douglas Goodman, James P. Hofmeister, Ferenc Szidarovszky
- 出版商: Wiley
- 出版日期: 2019-06-17
- 售價: $4,950
- 貴賓價: 9.5 折 $4,703
- 語言: 英文
- 頁數: 384
- 裝訂: Hardcover - also called cloth, retail trade, or trade
- ISBN: 1119356652
- ISBN-13: 9781119356653
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商品描述
A comprehensive guide to the application and processing of condition-based data to produce prognostic estimates of functional health and life.
Prognostics and Health Management provides an authoritative guide for an understanding of the rationale and methodologies of a practical approach for improving system reliability using conditioned-based data (CBD) to the monitoring and management of health of systems. This proven approach uses electronic signatures extracted from conditioned-based electrical signals, including those representing physical components, and employs processing methods that include data fusion and transformation, domain transformation, and normalization, canonicalization and signal-level translation to support the determination of predictive diagnostics and prognostics.
Written by noted experts in the field, Prognostics and Health Management clearly describes how to extract signatures from conditioned-based data using conditioning methods such as data fusion and transformation, domain transformation, data type transformation and indirect and differential comparison. This important resource:
- Integrates data collecting, mathematical modelling and reliability prediction in one volume
- Contains numerical examples and problems with solutions that help with an understanding of the algorithmic elements and processes
- Presents information from a panel of experts on the topic
- Follows prognostics based on statistical modelling, reliability modelling and usage modelling methods
Written for system engineers working in critical process industries and automotive and aerospace designers, Prognostics and Health Management offers a guide to the application of condition-based data to produce signatures for input to predictive algorithms to produce prognostic estimates of functional health and life.
商品描述(中文翻譯)
一份全面的指南,介紹如何應用和處理基於條件的數據,以產生功能健康和壽命的預測估算。
《預測學與健康管理》提供了一個權威的指南,幫助理解使用基於條件的數據(CBD)來監控和管理系統健康的實用方法的基本原理和方法論。這種經過驗證的方法使用從基於條件的電信號中提取的電子簽名,包括代表物理元件的信號,並採用包括數據融合和轉換、領域轉換、正規化、標準化和信號級翻譯等處理方法,以支持預測診斷和預測的確定。
由該領域的知名專家撰寫的《預測學與健康管理》清楚地描述了如何使用數據融合和轉換、領域轉換、數據類型轉換以及間接和差異比較等條件化方法從基於條件的數據中提取簽名。這本重要的資源:
- 將數據收集、數學建模和可靠性預測整合於一本書中
- 包含數值範例和問題及其解答,幫助理解算法元素和過程
- 提供來自專家小組的相關資訊
- 遵循基於統計建模、可靠性建模和使用建模方法的預測學
《預測學與健康管理》專為在關鍵過程行業工作的系統工程師以及汽車和航空航天設計師撰寫,提供了應用基於條件的數據以生成輸入預測算法的簽名的指南,從而產生功能健康和壽命的預測估算。
作者簡介
Douglas Goodman is Founder and Chief Engineer of Ridgetop Group, Inc., Arizona, USA.
James P. Hofmeister is Distinguished Engineer, Advanced Research Group, Ridgetop Group, Inc., Arizona, USA.
Ferenc Szidarovszky, Ph.D, is Senior Researcher, Advanced Research Group, Ridgetop Group, Inc., Arizona, USA.
作者簡介(中文翻譯)
道格拉斯·古德曼是美國亞利桑那州Ridgetop Group, Inc.的創始人及首席工程師。
詹姆斯·P·霍夫梅斯特是美國亞利桑那州Ridgetop Group, Inc.的卓越工程師,隸屬於先進研究小組。
費倫茨·西達羅夫斯基博士是美國亞利桑那州Ridgetop Group, Inc.的高級研究員,隸屬於先進研究小組。