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Jing Zhang

Bio: Jing Zhang is an academic researcher from Shandong Agricultural University. The author has contributed to research in topics: Submarine pipeline. The author has an hindex of 1, co-authored 1 publications receiving 19 citations.

Papers
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TL;DR: In this paper, a numerical and experimental study of the local scour of the piggyback pipe under steady current was conducted and the influence of prominent factors such as pipe diameter, inflow Reynolds number, and gap between the main and small pipes, on the maximum scour depth was examined and discussed in detail.
Abstract: As a new type of submarine pipeline, the piggyback pipeline has been gradually adopted in engineering practice to enhance the performance and safety of submarine pipelines. However, limited simulation work and few experimental studies have been published on the scour around the piggyback pipeline under steady current. This study numerically and experimentally investigates the local scour of the piggyback pipe under steady current. The influence of prominent factors such as pipe diameter, inflow Reynolds number, and gap between the main and small pipes, on the maximum scour depth have been examined and discussed in detail. Furthermore, one formula to predict the maximum scour depth under the piggyback pipeline has been derived based on the theoretical analysis of scour equilibrium. The feasibility of the proposed formula has been effectively calibrated by both experimental data and numerical results. The findings drawn from this study are instructive in the future design and application of the piggyback pipeline.

29 citations


Cited by
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TL;DR: In this paper, a huge level of uncertainty due to effective parameters on the scour depth prediction was introduced, and the authors showed that scouring phenomena below a pipeline exposed to waves is intrinsically a stochastic process.
Abstract: Scouring phenomena below a pipeline exposed to waves is intrinsically a stochastic process There is a huge level of uncertainty due to effective parameters on the scour depth prediction an

36 citations

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TL;DR: In this paper, the joint effect of solitary waves and background currents on the pipelines is numerically studied by using a numerical wave tank developed with a free surface tracking approach and the immersed boundary method.

30 citations

Journal ArticleDOI
TL;DR: In this article, the effect of the extreme wave on a bridge with or without air vent on the bridge is investigated, in which the authors used a Numerical Wave Tank (NWT) to simulate fluid and structure interaction.

22 citations

Journal ArticleDOI
TL;DR: In this paper, the effect of tsunami-like wave on the seawall and sandy bed is analyzed by the coupling model of fluid and sediment modules, where the free surface of the fluid module is captured using VOF technology and the sediment transport module contains the calculation methods of sediment drift, precipitation and suspension.

22 citations

Journal ArticleDOI
Enjin Zhao, K. Qu, Lin Mu, Simon Kraatz, Bing Shi 
01 Jan 2019-Water
TL;DR: In this article, a tsunami-like wave generated based on a real-world tsunami wave profile recorded during a 2011 tsunami in Japan has been applied to study the impacts of tsunami waves on submarine pipelines, although the hydrodynamic characteristics and wave properties drastically differ from those of real world tsunami waves.
Abstract: Submarine pipelines have been extensively used for marine oil and gas extraction due to their high efficiency, safety, and low price. However, submarine pipelines are vulnerable to extreme waves (i.e., tsunami waves). Previous research has often used solitary waves as a basis for studying the impacts of tsunami waves on submarine pipelines, although the hydrodynamic characteristics and wave properties drastically differ from those of real-world tsunami waves. This paper numerically investigates the hydrodynamic characteristics of tsunami waves interacting with submarine pipelines, but instead uses an improved wave model to generate a tsunami-like wave that more closely resembles those encountered in the real-world. The tsunami-like wave generated based on a real-world tsunami wave profile recorded during a 2011 tsunami in Japan has been applied. Given the same wave height, simulation results show that peak hydrodynamic forces of the tsunami-like wave are greater than those of the solitary wave. Meanwhile, the duration of the acting force under the tsunami-like wave is much longer than that of the solitary wave. These findings underline the basic reasons for the destructive power of tsunamis. It is also noted that the hydrodynamic forces of the pipeline under the tsunami-like wave increase with wave height, but will decrease as water depth increases. In addition to the single pipeline, the complicated hydrodynamic characteristics of pipelines in tandem arrangement have been also numerically studied. It is believed that the findings drawn from this paper can enhance our understanding of the induced forces on submarine pipelines under extreme tsunami waves.

20 citations