Thermal-induced buoyant water jet discharge under shallow coastal water conditions

Q1 Chemical Engineering International Journal of Thermofluids Pub Date : 2024-09-16 DOI:10.1016/j.ijft.2024.100857
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引用次数: 0

Abstract

A novel discharge dispersion model is developed to simulate the complex three-dimensional flow behaviour of thermal-induced buoyant water jets under current-wave coexisting conditions. The model solved the governing fluid flow and energy equations for two immiscible and incompressible phases (water and air) which were weakly coupled by applying the Boberbeck-Boussinesq approximation. Different turbulence models, such as k−ε multiphase, k-ω SST, k-ω SST-multiphase, k-ω SST-stable, and realizable k−ε were applied. Extensive verification of the model's performance is conducted by comparing the developed model results against a diverse range of analytical and experimental data. First, a series of simulations are carried out to evaluate the performance of the model in reproducing the results of the wave hydrodynamic and interactions with the submerged trapezoid bar. This is followed by numerically replicating the experimental results of a vertical non-buoyant submerged jet under current-only and current-wave environments. Finally, the potency of the coupled hydro-thermal algorithm is assessed by validating against different thermal-induced buoyant submerged jet experimental tests. For this purpose, numerical prediction of the developed model is tested against physical experiments for a series of tests for thermal-induced buoyant submerged horizontal jets in stationary water and inclined thermal-induced buoyant water jet under the influence of current-wave environments. Results showed that the k-ω SST-multiphase provides the best agreement with the laboratory measured data in terms of flow, temperature distribution field, plume trajectory and dilution. The findings confirmed that the developed model can be used as a reliable tool in precisely modelling characteristic of thermal-induced buoyant water jet in shallow coastal waters.

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沿海浅水条件下的热诱导浮力水射流排放
建立了一个新颖的放电分散模型,用于模拟在水流-波浪共存条件下热浮力水射流的复杂三维流动行为。该模型求解了两相(水和空气)不可溶解和不可压缩的流体流动和能量方程,并通过应用 Boberbeck-Boussinesq 近似法进行了弱耦合。应用了不同的湍流模型,如 k-ε 多相模型、k-ω SST 模型、k-ω SST 多相模型、k-ω SST 稳定模型和可实现的 k-ε 模型。通过将开发的模型结果与各种分析和实验数据进行比较,对模型的性能进行了广泛验证。首先,进行了一系列模拟,以评估模型在再现波浪流体力学结果以及与水下梯形杆相互作用结果方面的性能。随后,对水流环境和水流-波浪环境下垂直非浮力水下射流的实验结果进行了数值复现。最后,通过对不同的热诱导浮力水下射流实验测试进行验证,评估了水热耦合算法的有效性。为此,针对静止水中的热诱导浮力沉没式水平射流和水流-波浪环境影响下的倾斜热诱导浮力水射流的一系列试验,将所开发模型的数值预测与物理试验进行了对比测试。结果表明,k-ω SST 多相模型在流量、温度分布场、羽流轨迹和稀释方面与实验室测量数据的一致性最好。研究结果证实,所开发的模型可作为一种可靠的工具,用于精确模拟浅海沿岸水域热致浮力水射流的特征。
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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