环形水槽物理模拟的沉积学应用进展与发展趋势【水槽沉积模拟实验专辑】
- 收稿日期:
2023-10-08
- 网络出版日期:
2024-04-07
摘要: 【意义】水槽沉积模拟实验是模拟沉积物沉积过程、揭示其形成机理的有效手段之一,对水利工程、环境科学、沉积学及油气勘探等研究方向具有重要意义。环形水槽能够使流体在惯性力和剪切力的作用下发生持续流动,被近似认为在无限长的距离上搬运与沉积,因此可以从搬运距离和流体速度方面近似还原模拟环境流体,突破了传统水槽模拟的应用局限性。【进展】为满足不同应用场景的研究需求,环形水槽逐渐衍生出4种类型,包括常规环形水槽、底栖式原位环形水槽、小型环形水槽以及跑道式环形水槽。目前环形水槽物理模拟在泥沙特性、底形构造、沉降机制等方面取得了丰硕成果,而在沉积物理模拟领域却相对匮乏。随着技术设备的发展,相关沉积学物理模拟研究也取得了重要进展。其中,重力流沉积、细粒沉积物搬运的动力学机制以及潮汐与波浪沉积作用已经成为环形水槽沉积学物理模拟的重要研究对象。尽管如此,环形水槽物理模拟尚存在诸多不足,例如二次环流的影响、沉积物横向演化的追踪对比等问题将在后续研究中通过完善实验方案与提高测量精度进行优化。【结论与展望】总而言之,基于沉积学原理系统拓展环形水槽物理模拟在沉积学中的应用范围,将对基础沉积学理论的创新发展以及细粒沉积学、非常规油气沉积学等诸多方面做出相应的贡献。
Progress and Prospects in the Sedimentological Applications of Circular Flume Physical Simulation
- Received Date:
2023-10-08
- Available Online:
2024-04-07
Abstract: [Significance] The sedimentary simulation experiment in a circular flume is one of the effective means to simulate the sedimentary process and reveal its formation mechanism. It holds significant importance in research areas such as hydraulic engineering, environmental science, sedimentology, and oil and gas exploration. The circular flume can sustain continuous fluid flow under the influence of inertial and shear forces and is approximated as transporting and depositing over an infinite distance. Therefore, it can approximately replicate environmental fluid conditions in terms of transport distance and fluid velocity, overcoming the limitations of traditional flume simulations. [Progress] To meet the research needs of different application scenarios, circular flume have gradually evolved into four types, including conventional circular flume, in-situ circular flume, Mini circular tanks, and racetrack flume. Physical simulations in circular flume have achieved fruitful results in studying sediment characteristics, bedform morphology, and settling mechanisms, among other aspects. However, there is still a relative scarcity of research in sedimentary physical simulation. With the development of technology and equipment, research in sedimentary physical simulation has also made significant progress. Gravity flow sedimentation, the dynamics of fine-grained sediment transport, and tidal and wave sedimentation have become important research areas in physical simulation of circular flume. Nevertheless, there are several limitations in circular flume physical simulation, such as the influence of secondary circulation and the tracking of lateral sediment evolution, which will be optimized in subsequent research through improved experimental designs and enhanced measurement accuracy. [Conclusions and Prospects] In summary, expanding the application scope of circular flume physical simulation based on sedimentology principles will make significant contributions to the innovative development of fundamental sedimentology theory, as well as various aspects such as fine-grained sedimentology and unconventional petroleum sedimentology.