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Retrocommissioning and Energy Efficiency - Applying this Concept to the Paper Machine Vacuum System

机译:改造和节能-将这一概念应用到造纸机真空系统

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Paper machine vacuum systems have a reputation of being somewhat difficult to understand, troubleshoot and optimize. Problems associated with these vacuum systems often are not identified. This leads to the statement, "You can get the sheet to the reel with a poorly operating vacuum system". Besides the ongoing efforts to maintain and optimize all of the papermaking processes, consider that the vacuum system can have as much, or more, connected horsepower as the entire paper machine. This can be from 700 hp on a small, specialty machine, to 7000+ hp on a large linerboard machine. Paper machines and supporting processes are designed and installed based on expected ranges of production rates using specific furnishes, headbox consistency, chemistry, refining, retention, fabric design, etc. The configuration of the paper machine is determined based on mutually agreed criteria for these and other variables. The vacuum system is designed and installed to satisfy these production specifications. During the years and decades following installation, many of these operating variables can be, and are altered. However, the vacuum system consists of significant hardware and piping which usually experiences little modification. Retrocommissioning describes the process to identify and correct less-than-optimal performance within the vacuum system, without retrofitting or replacement of significant components. Concurrent to the optimization process is the ability to achieve significant energy reduction. Experience with Retrocommissioning of vacuum systems usually provides energy reduction of 10 - 15% of existing operating power. Some systems have had the potential to remove 20 - 25% of operating power. This presentation will explain the procedures of Retrocommissioning, as applied to the vacuum system, and includes case studies to emphasize the positive results from optimization.
机译:造纸机真空系统的声誉有些难以理解,故障排除和优化。与这些真空系统相关的问题通常未被发现。这导致了这样的陈述:“您可以使用运行不佳的真空系统将薄片拿到卷轴上”。除了维护和优化所有造纸过程的持续努力外,还要考虑到真空系统可以具有与整个造纸机相同或更多的连接马力。小型专业机器的功率为700 hp,大型挂面纸板机器的功率为7000+ hp。造纸机和辅助工艺是根据预期的生产率范围,使用特定的配料,流浆箱浓度,化学成分,精制,保留,织物设计等来设计和安装的。造纸机的配置是根据共同商定的标准确定的,其他变量。真空系统的设计和安装可满足这些生产规范。在安装后的数十年中,许多这些操作变量都是可以更改的。但是,真空系统由重要的硬件和管道组成,通常很少改动。翻新调试描述了在不翻新或更换重要组件的情况下识别和纠正真空系统中性能欠佳的过程。与优化过程同时进行的是实现大幅降低能耗的能力。真空系统改造的经验通常可将能耗降低现有运行功率的10-15%。一些系统有可能消除20%到25%的运行功率。本演讲将解释应用于真空系统的逆向调试程序,并包括案例研究以强调优化的积极结果。

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