A System for Design Decisions Based on Reliability Block Diagrams

被引:0
|
作者
Gissler, Bob [1 ]
Shrivastava, Pankaj [1 ]
机构
[1] Halliburton Complet Tools, 445 Woodline Dr, Spring, TX 77380 USA
来源
2015 61ST ANNUAL RELIABILITY AND MAINTAINABILITY SYMPOSIUM (RAMS 2015) | 2015年
关键词
Reliability Modelling; Intelligent Completions; Design Decisions; Reliability Block Diagram;
D O I
暂无
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
A 'Reliability Block Diagram' (RBD) is a Design-for-Reliability (DfR) tool that is used for analysis of reliability allocation, availability, and maintainability. Furthermore, if applied systematically, RBD can also be used as an aid for making design decisions, especially during the improvement stage of a design. This paper discusses the application of RBD during the design improvement process of an electro-hydraulic control module. This electro-hydraulic control module provides the flow control capabilities which allow the well operator to optimize reservoir performance. The cost of failure of these control modules is very high as it directly effects the production and total losses could be millions of dollars. Therefore, this system is designed with reliability being paramount. RBD is an effective tool to perform system reliability analyses. When used as a design improvement decision tool, RBD is applied iteratively, and process steps for applying RBD in design decisions are described in detail in this paper. Once the RBD of the current system design was developed, the Reliability Importance (RI) metrics were evaluated to identify the relative importance of each subsystem with respect to the overall reliability of the system. RI is a valuable tool when used in this capacity to prioritize the design actions for reliability improvement. The Static RI diagram of the current design helped identify subassemblies with the highest RI index. The identified subassemblies then were prioritized for redesign to improve system reliability. Reliability improvement techniques considered for enhancing system reliability in this paper were (1) fault tolerance and (2) fault avoidance. Fault tolerance was achieved by redundancy, whereas fault avoidance was achieved by using high-quality and high-reliability components. Relatively, application of fault tolerance provides high reliability incremental vis-a-vis fault avoidance. However, fault tolerance methods generally are more expensive to use than fault avoidance methods, and thus, an RBD can be a vital tool in determining whether to improve the system reliability by fault tolerance, fault avoidance, or both. For each design alternative, an associated RBD was developed to capture system interactions, and system reliability was estimated. The electro-hydraulic control module presented here will demonstrate how RBDs are applied for both fault tolerance and fault-avoidance techniques. This paper highlights a successful application of RBD as a decision-making tool for design upgrades of a complex system.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] GSPN Based Reliability Design for Intellectualized System
    Jiang, Chunyang
    Li, Guoqi
    Bao, Xiaohong
    MATERIALS AND PRODUCT TECHNOLOGIES, 2010, 118-120 : 891 - 895
  • [32] Dependability Evaluation with Dynamic Reliability Block Diagrams and Dynamic Fault Trees
    Distefano, Salvatore
    Puliafito, Antonio
    IEEE TRANSACTIONS ON DEPENDABLE AND SECURE COMPUTING, 2009, 6 (01) : 4 - 17
  • [33] A probabilistic design system for reliability-based design optimization
    I. Kaymaz
    C.A. McMahon
    Structural and Multidisciplinary Optimization, 2004, 28 : 416 - 426
  • [34] A probabilistic design system for reliability-based design optimization
    Kaymaz, I
    McMahon, CA
    STRUCTURAL AND MULTIDISCIPLINARY OPTIMIZATION, 2004, 28 (06) : 416 - 426
  • [35] Reliability analysis based on binary decision diagrams
    Zhou, Jinglun
    Sun, Quan
    Journal of Quality in Maintenance Engineering, 1998, 4 (02): : 150 - 161
  • [36] Obtaining system block diagrams based on bond graph models and application of bondsim tools
    Antic, D.
    Vidojkovic, B.
    1600, Int. Assoc. of Science and Technology for Development (21):
  • [37] Block Diagrams
    不详
    GEOGRAPHICAL TEACHER, 1925, 13 (03): : 247 - 247
  • [38] Application of the Monte-Carlo-Simulation for Determining the Reliability of complex Systems in the early Development Phase based on Block Diagrams by using the Example of a Braking System
    Plinke, Fabian
    Braasch, Andreas
    Althaus, Dirk
    Meyna, Arno
    TECHNISCHE ZUVERLASSIGKEIT 2011: ENTWICKLUNG UN BETRIEB ZUVERLASSIGER PRODUKTE, 2011, 2146 : 133 - 144
  • [40] Traceable security by design decisions for automation systems through function-based diagrams and security libraries
    Fluchs, Sarah
    Tastan, Emre
    Trumpf, Tobias
    Horch, Alexander
    Drath, Rainer
    Fay, Alexander
    AT-AUTOMATISIERUNGSTECHNIK, 2023, 71 (09) : 759 - 778