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Applying Prescriptive Analytics to Enhance Asset Value in a Complex Operating Environment

机译:应用规定的分析在复杂的操作环境中提高资产价值

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A number of industries have been transformed by the wave of digital innovations, big data, analytics and computing; more recently, the power industry has begun to selectively apply these digital technologies to drive better economic outcomes for existing and greenfield power plants. These disruptive technologies are arriving at a time when the power industry is encountering dramatic market dynamics resulting from changes in fuel prices, increases in renewables coming on line, and changes in the regulatory environment. The challenges of managing power generation plants have become more complex—complicated system interactions, more co-optimization demands, and more operating profile flexibility. This convergence offers power producers an opportunity to embrace technology to re-position the competitiveness of their plant operations. This paper demonstrates how today’s power operators can use a modern ecosystem to provide on-going operational productivity—protecting against downside risk while constantly pursuing upside opportunities and increasing economic value while reducing total cost. The paper will cover a brief history of big data and applied analytics usage in power plants today, as well as the dynamics in the industry that have created new operational complexities. We present a maturity model that provides a roadmap for end users to advance through different stages of applied analytics to drive incremental and sustained productivity. We then discuss the obstacles to implementing this maturity model while specifically recommending how to progress to prescriptive analytics within the Industrial Internet architecture, moving from business applications in the cloud down to the controls layer.
机译:有多种行业已被数字创新,大数据,分析和计算浪潮改变;最近,电力行业已开始选择性地应用这些数字技术,以推动现有和绿地发电厂的更好的经济结果。这些破坏性技术是在电力行业遇到巨大的燃料价格变化导致的巨大市场动态的时候到达,可再生能源增加以及监管环境的变化。管理发电厂的挑战已经变得更复杂复杂的系统交互,更加共同优化需求,以及更多的操作型材灵活性。这种融合为电力生产商提供了拥抱技术来重新定位其植物业务竞争力的机会。本文演示了今天的电力运营商如何使用现代生态系统来提供持续的运营生产力 - 防止下行风险,同时不断追求上行机会,并降低经济价值,同时降低总成本。本文将介绍今天发电厂的大数据和应用分析用法的简要历史,以及创造了新的运营复杂性的行业的动态。我们提出了一个成熟的模型,为最终用户提供了一种路线图,以通过应用分析的不同阶段推进,以推动增量和持续的生产率。然后,我们讨论实现此成熟度模型的障碍,同时特别推荐如何在工业互联网架构中的规范分析进入,从云中的业务应用程序向下移动到控制层。

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