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A mechanistic model for the prediction of cutting forces in the face-milling of ductile spheroidal cast iron components for wind industry application

机译:预测球墨铸铁零件球磨面铣削中切削力的机械模型

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摘要

Among renewable energy sources, wind energy has received considerable impulse in the last decade. Not only the number of manufactured wind turbines is raising, but also the overall size of the components is increasing, for improved energy harvesting. The increase of hub dimensions implies the need for larger, tailor built, milling machines, with impact on production costs and the possibility of local production. Within this scope, accurate prediction of process loads during the machining operations plays a central role with respect to the exploration of design solutions and processing strategies while maintaining the necessary product quality. For this purpose a mechanistic model, based on the unified cutting mechanics theory, was developed for the prediction of cutting forces in face milling using inserted cutters, for the machining of ductile spheroidal cast iron. Ductile cast iron alloys are particularly prone to generate segmented chips. The applicability range of the fundamental model, the shear plane model underlying the unified mechanics of cutting, was studied for this phenomenon. A method was proposed to analyse chip segmentation and extract relevant data for the model implementation. Through experimental validation, it was proved that mechanistic models are a reliable option for modelling machining operation even under chip segmentation conditions.
机译:在过去的十年中,在可再生能源中,风能受到了很大的推动。不仅制造的风力涡轮机的数量在增加,而且部件的整体尺寸也在增加,以改善能量收集。轮毂尺寸的增加意味着需要更大,量身定制的铣床,这会影响生产成本和本地生产的可能性。在此范围内,在探索加工解决方案和加工策略的同时保持所需产品质量的过程中,准确预测加工过程中的过程负荷起着核心作用。为此,建立了基于统一切削力学理论的机械模型,用于预测使用插入式铣刀进行平面铣削时的切削力,用于加工球墨铸铁。球墨铸铁合金特别容易产生切屑。对于这种现象,研究了基本模型的适用范围,即作为统一切削力学基础的剪切平面模型。提出了一种分析芯片分割并提取相关数据用于模型实现的方法。通过实验验证,即使在切屑分割条件下,机械模型也是建模加工操作的可靠选择。

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