基于多高斯光束理论的特殊场合液位测量回波压力模型

IF 1.5 4区 计算机科学 Q3 COMPUTER SCIENCE, SOFTWARE ENGINEERING Concurrency and Computation-Practice & Experience Pub Date : 2024-12-29 DOI:10.1002/cpe.8335
Bin Zhang, Yuejuan Wei, Shuqui Zang, Qing Li, Yan Qiang
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引用次数: 0

摘要

在航空、石油、化工等特殊生产领域,由于容器内的液体多为易燃、易爆、易挥发、腐蚀性混合物,因此液位的准确测量对生产过程的实时控制至关重要。本文提出了一种基于回波压力模型的特殊场地液位测量近似算法。根据该模型,构建了一套完整的横向入射超声测量系统,用于感应式液位检测技术的特殊应用,建立了回波压力的算法模型,提供了依靠回波压力特征曲线确定液位的方法。本研究模型将复杂的声场相互作用问题转化为回波压力计算,快速确定声场性能参数,并采用虚拟反射法计算不同状态下接收换能器的声压,降低了计算复杂度,最后通过仿真和实验验证了算法的有效性。结果与预期一致,表明该算法可以进一步应用于实际。
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An Echo Pressure Model Based on Mutil-Gaussian Beam Theory for Measuring the Liquid Level in Special Field

In aviation, petroleum and chemical industries and other special areas of production, since the liquid in containers mostly are flammable, explosive, volatile, and corrosive mixtures, the accurate measurement of the liquid level is essential to the real-time control and production process. In this study, an approximation algorithm based on echo pressure model for measuring the liquid level in special field is proposed in this paper. According to the model, a complete lateral incident ultrasonic measurement system is constructed for the inductive liquid level detection technology in special applications, an algorithm model of the echo pressure is established, which provides the determination of the liquid level relying on the characteristic curve of the echo pressure. The model in this study converts complex interaction problems of sound fields into the echo pressure calculation, which quickly determines performance parameters of sound fields, and a virtual reflection method is used to calculate the sound pressure of the receiving transducer in different states, which reduces computational complexity, finally, through the simulation and experiment, the algorithm is validated. The results are consistent with expectations, and the algorithm can be further applied in practice.

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来源期刊
Concurrency and Computation-Practice & Experience
Concurrency and Computation-Practice & Experience 工程技术-计算机:理论方法
CiteScore
5.00
自引率
10.00%
发文量
664
审稿时长
9.6 months
期刊介绍: Concurrency and Computation: Practice and Experience (CCPE) publishes high-quality, original research papers, and authoritative research review papers, in the overlapping fields of: Parallel and distributed computing; High-performance computing; Computational and data science; Artificial intelligence and machine learning; Big data applications, algorithms, and systems; Network science; Ontologies and semantics; Security and privacy; Cloud/edge/fog computing; Green computing; and Quantum computing.
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