首页> 外文会议>2002 Engineering Technology Conference on Energy, Feb 4-5, 2002, Houston, Texas >INVESTIGATION OF THE MANUFACTURABILITY OF SMART COMPOSITE PIPING STRUCTURES USING LIFE CYCLE COST MODELING AND UNCERTAINTY ANALYSIS
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INVESTIGATION OF THE MANUFACTURABILITY OF SMART COMPOSITE PIPING STRUCTURES USING LIFE CYCLE COST MODELING AND UNCERTAINTY ANALYSIS

机译:生命周期成本建模和不确定性分析研究智能复合管结构的可制造性

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FRP composites are finding increasing use in the civilian applications such as highways, bridges, pipes etc. This analysis focuses on the FRP piping systems used in the Petrochemical industries under extreme conditions. Due to the high operational and maintenance costs involved with pipes made from traditional materials, there is a need to develop a smart inspection system that replaces or eliminates the traditional inspection and maintenance techniques, providing continuous and reliable monitoring of the structure. Smart FRP pipes have an embedded smart sensor system incorporated in them, providing continuous and reliable monitoring of the pipe structure. This helps in preventing catastrophic failure of pipes thereby reducing the costs involved with the pipe failure. Smart FRP systems have a very high initial investment cost, and therefore a cost comparison model is needed in order to justify their use against traditionally used materials. A Life Cycle Cost (LCC) comparison model has been developed in this paper, which shows that despite high initial investment costs, large savings could be made in the operational and maintenance costs with the use of Smart FRP pipes. This cost model Calculates the life cycle costs of Steel, FRP and Smart FRP pipes, and determines the alternative with the lowest life cycle cost. To deal with an uncertainty associated with the cost factors, used in calculating the LCC of the three alternatives, an uncertainty analysis has been performed. An computer spreadsheet has been programmed in order to perform the LCC and Uncertainty Analysis. This analysis has laid down the basic foundations for a larger cost model, wherein; several other alternatives materials and factors could be included. This would further help in widening the scope of use of Smart Structures in various industries. Certain aspects of the data used in this analysis may be disputable, however for the purpose of modeling and procedural demonstration, the gathered and available information was used to perform our analysis. Therefore, use of this data outside of the scope and context of this report is not warranted.
机译:FRP复合材料正在民用领域(例如高速公路,桥梁,管道等)中得到越来越多的使用。本分析着重于极端条件下石化行业中使用的FRP管道系统。由于由传统材料制成的管道涉及高昂的运营和维护成本,因此需要开发一种智能检查系统,以取代或消除传统的检查和维护技术,从而提供对结构的连续可靠监控。智能FRP管道中集成了嵌入式智能传感器系统,可对管道结构进行连续可靠的监控。这有助于防止管道的灾难性故障,从而减少与管道故障有关的成本。智能FRP系统的初始投资成本非常高,因此需要一种成本比较模型,以证明其可与传统使用的材料相对应。本文开发了一个生命周期成本(LCC)比较模型,该模型表明,尽管初始投资成本很高,但使用Smart FRP管道可以节省运营和维护成本。该成本模型计算钢管,FRP和Smart FRP管道的生命周期成本,并确定生命周期成本最低的替代方案。为了处理与成本因素相关的不确定性(用于计算三个替代方案的LCC),已进行了不确定性分析。已对计算机电子表格进行了编程,以执行LCC和不确定性分析。该分析为更大的成本模型奠定了基础。可以包括其他几种替代材料和因素。这将进一步有助于扩大智能结构在各个行业中的使用范围。此分析中使用的数据的某些方面可能会引起争议,但是出于建模和过程演示的目的,已收集和可用的信息用于执行我们的分析。因此,不保证在本报告的范围和上下文之外使用此数据。

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