Abrasive waterjet (AWJ) cutting is one of the most recently developed nontraditional manufacturing technologies. It has been increasingly used in industry owing to its various distinct advantages over the other cutting technologies. However, many aspects of this technology require to be fully understood in order to increase its capability and cutting performance as well as to optimize the cutting process.ududThis thesis contains an extensive literature review on the investigations of the various aspects in AWJ machining. It shows that while considerable work has been carried out, very little reported research has been found on the AWJ contouring process although it is a common AWJ cutting application. Because of the very nature of the AWJ cutting process, the changing nozzle traverse direction involved in AWJ contouring results in kerf geometrical or shape errors. A thorough understanding of the AWJ contouring process is essential for the reduction or elimination of these shape errors. It also shows that a lack of understanding of the AWJ hydrodynamic characteristics has limited the development of cutting performance models that are required for process control and optimization.ududAccordingly, a detailed experimental investigation is presented in this thesis to study the various cutting performance measures in AWJ contouring of an 87% alumina ceramic over a wide range of process parameters. For a comparison purpose, the study also considers AWJ straight-slit cutting. The effects of process parameters on the major cutting performance measures in AWJ contouring have been comprehensively discussed and plausible trends are amply analysed. It finds that the taper angles on the two kerf walls are in different magnitudes in AWJ contouring. The kerf taper on the outer kerf wall increases with the arc radius (or profile curvature), while that on the inner kerf wall decreases. Moreover, the depth of cut increases with an increase in arc radius and approaches the maximum in straight cutting for a given combination of parameters. The other process variables affect the AWJ contouring process in a way similar to that in straight cutting. The analysis has provided a guideline for the selection of process parameters in the AWJ contouring of alumina ceramics.ududIn order to predict the cutting performance in process planning and ultimately optimize the cutting process, mathematical models for the major cutting performance measures in both straight-slit cutting and contouring are developed using a dimensional analysis technique. The models are then verified by assessing both qualitatively and quantitatively the model predictions with respect to the corresponding experimental data. It shows that the models can adequately predict the cutting performance measures and form the essential basis for developing strategies for selecting the optimum process parameters in AWJ cutting.ududTo achieve an in-depth understanding of the jet dynamic characteristics such as the velocity and pressure distributions inside a jet, a Computational Fluid Dynamics (CFD) simulation is carried out using a Fluent6 flow solver and the simulation results are validated by an experimental investigation. The water and particle velocities in the jet are obtained under different input and boundary conditions to provide an insight into the jet characteristics and a good understanding of the kerf formation process in AWJ cutting. Various plausible trends and characteristics of the water and particle velocities are analysed and discussed, which provides the essential knowledge for optimizing the jet performance through optimizing the jetting and abrasive parameters.ududMathematical models for the water and particle velocity distributions in an AWJ are finally developed and verified by comparing the predicted jet characteristics with the corresponding CFD simulation data. It shows that the jet characteristics models can yield good predictions for both water and particle velocity distributions in an AWJ. The successful development of these jet dynamic characteristics models is an essential step towards developing more comprehensive mathematical cutting performance models for AWJ cutting and eventually developing the optimization strategies for the effective and efficient use of this advanced manufacturing technology.
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机译:磨料水射流(AWJ)切割是最新开发的非传统制造技术之一。由于其相对于其他切割技术的各种独特优势,已在工业中得到越来越多的使用。但是,为了提高其性能和切削性能以及优化切削过程,必须充分理解这项技术的许多方面。 ud ud本文包含有关AWJ加工各个方面研究的广泛文献综述。 。结果表明,尽管已进行了大量工作,但AWJ轮廓加工虽然是一种常见的AWJ切削应用,但很少有报道的研究。由于AWJ切割过程的本质,在AWJ轮廓加工中所涉及的不断变化的喷嘴移动方向会导致切缝几何或形状误差。彻底了解AWJ轮廓加工对于减少或消除这些形状误差至关重要。这也表明,缺乏对AWJ流体动力特性的了解,限制了过程控制和优化所需的切削性能模型的开发。 ud ud因此,本文进行了详细的实验研究,以研究各种切削性能在广泛的工艺参数下,可以测量87%氧化铝陶瓷的AWJ轮廓。为了进行比较,研究还考虑了AWJ直缝切割。已经全面讨论了工艺参数对AWJ轮廓加工中主要切削性能指标的影响,并对可能的趋势进行了分析。发现在AWJ轮廓中两个切口壁上的锥角大小不同。外部切口壁上的切口锥度随弧半径(或轮廓曲率)而增加,而内部切口壁上的切口锥度则减小。而且,对于给定的参数组合,切削深度随着弧半径的增加而增加,并且在直线切削中接近最大值。其他工艺变量以与直线切割类似的方式影响AWJ轮廓加工。该分析为氧化铝陶瓷AWJ轮廓中工艺参数的选择提供了指导。 ud ud为了预测工艺规划中的切削性能并最终优化切削工艺,在这两种方法中,主要切削性能指标均采用数学模型使用尺寸分析技术开发了直缝切割和轮廓加工。然后通过相对于相应的实验数据定性和定量评估模型预测来验证模型。结果表明,该模型可以充分预测切削性能指标,并为制定AWJ切削过程中选择最佳工艺参数的策略提供了必要的基础。 ud ud可以深入了解射流动力学特性,例如速度和速度。射流内部的压力分布,使用Fluent6流动求解器进行了计算流体动力学(CFD)仿真,并通过实验研究验证了仿真结果。在不同的输入和边界条件下获得射流中的水和颗粒速度,以提供对射流特性的深入了解,并更好地了解AWJ切割中的切缝形成过程。分析和讨论了水和颗粒速度的各种可能趋势和特征,这为通过优化喷射和磨料参数来优化喷射性能提供了基本知识。 ud udAWJ中水和颗粒速度分布的数学模型是通过将预测的射流特性与相应的CFD模拟数据进行比较,最终开发并验证了该数据。结果表明,射流特征模型可以对AWJ中的水和颗粒速度分布产生良好的预测。这些喷气动力特性模型的成功开发是为AWJ切割开发更全面的数学切割性能模型,并最终为有效,高效地使用这种先进制造技术而开发优化策略的重要一步。
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