首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >A New Index to Evaluate the Potential Damage of a Surge Event: The Surge Severity Coefficient
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A New Index to Evaluate the Potential Damage of a Surge Event: The Surge Severity Coefficient

机译:评估电涌事件潜在损害的新指标:电涌严重性系数

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Industrial compressors suffer from strong aerodynamic instability that arises when low ranges of flow rate are achieved; this instability is called surge. This phenomenon creates strong vibrations and forces acting on the compressor and system components due to the fact that it produces variable time-averaged mass flow and pressure. Therefore, surge is dangerous not only for aerodynamic structures but also for mechanical parts. Surge is usually prevented in industrial plants by means of anti-surge systems, which act as soon as surge occurs; however, some rapid transients or system upsets can lead the compressor to surge anyway. Despite the fact that surge can be classified as mild, classic, or deep, depending on the amplitudes and frequency of the fluctuations, operators are used to simply referring to surge, without making a distinction between the three main classes. This is one of the reasons why, when surge occurs in industrial plants, it is a common practice to stop the machine to perform inspections and check if any damage occurred. Obviously, this implies maintenance costs and time, during which the machine does not operate. On the other hand, not all surge events are dangerous in terms of damage, and they can be tolerated by the mechanical structures of the compressor; thus, in these cases, inspections would not be required. Unfortunately, a method for establishing the potential damage of a surge event is not available in literature. In order to fill this gap, this paper proposes a final formulation of a surge severity index, which was only preliminarily formulated by the authors in a previous work. The preliminary form of this coefficient demonstrated some limitations, which are overcome in this paper. The surge severity index derives from an energy-force based analysis. The coefficient demonstration is carried out in this paper by means of (i) the application of the Buckingham's Pi-theorem, and (ii) a careful analysis of the causative and restorative factors of surge. Finally, some simple practical evaluations are shown by means of a sensitivity analysis, using simulation results of an existing model, to effectively further highlight the consistency of this coefficient for industry.
机译:当达到低流量范围时,工业压缩机会遭受强烈的空气动力学不稳定性。这种不稳定性称为电涌。由于这种现象会产生随时间变化的平均质量流量和压力,因此会在压缩机和系统组件上产生强烈的振动和作用力。因此,喘振不仅对于空气动力学结构而且对于机械零件都是危险的。通常在工厂中通过防电涌系统来防止电涌,该系统在电涌发生时立即起作用。但是,某些快速瞬变或系统故障可能导致压缩机反而喘振。尽管可以根据波动的幅度和频率将电涌分为轻度,经典或深部,但操作员习惯于简单地指代电涌,而没有在三个主要类别之间进行区分。这是为什么在工厂发生喘振时,通常的做法是停止机器进行检查并检查是否有损坏,这是原因之一。显然,这意味着在机器不运行期间的维护成本和时间。另一方面,并​​不是所有的喘振事件在损害方面都是危险的,并且压缩机的机械结构可以容忍它们。因此,在这种情况下,将不需要检查。不幸的是,文献中没有一种用于确定电涌事件的潜在损害的方法。为了填补这一空白,本文提出了喘振严重性指数的最终公式,该公式仅由作者在先前的工作中初步提出。该系数的初步形式表现出一些局限性,本文已克服了这些局限性。喘振严重性指数来自基于能量的分析。本文的系数论证是通过(i)白金汉Pi定理的应用,以及(ii)仔细分析电涌的成因和恢复因素来进行的。最后,使用现有模型的仿真结果,通过敏感性分析显示了一些简单的实际评估,以有效地进一步突出该系数在工业上的一致性。

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