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Experimental Study on a Snake-Type Vibration Cutting Method for Cutting Force and Cutting Heat Reductions

机译:蛇型振动切削法切削力降低切削热的实验研究

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摘要

Cutting is the foundation of manufacturing in industry. The main cutting objects include metals, ceramics, glasses, compositions, and even biological materials such as tissues and bones. The special properties of each material such as hardness, ductility, brittleness, and heat conductivity lead to either a large cutting force or a high cutting temperature. Both of these factors result in poor machinability due to rapid tool wear or break or unsatisfactory surface integrity of the material finishing surface using the conventional cutting (CC, conventional cutting) types. In nature, snakes have their own way of reducing heat accumulation on their body when moving on the hot desert surface. They move forward along an “S”-type path, so that the bottom of their body separates from the desert intermittently. In this way, the separation interval both reduces the cutting heat accumulations and effectively achieves cooling by allowing the air to go through. In addition, the acceleration of Odontomachus monticola’s two mandibles when striking a target can reach 71,730 g m/s2 within 180 ms, which can easily break the target surface by the transient huge impact. Therefore, based on a snake’s motion on the desert surface and Odontomachus monticola’s striking on the target surface, respectively, an ultrasonic-frequency intermittent cutting method, also called “snake-type” vibration cutting (SVC, snake-type vibration cutting), was proposed in this study. First, its bionic kinematics were analyzed, then the SVC system’s design was introduced. Finally, cutting experiments were conducted on a common and typical difficult-to-cut material, namely titanium alloys. Cutting force, cutting temperature, and the surface integrity of the material finishing surface were measured, respectively. The results demonstrated that, compared to conventional cutting methods, SVC achieved a maximum of 50% and 30% reductions of cutting force and cutting temperature, respectively. Moreover, the surface integrity was improved both in surface roughness and residual stress state.
机译:切割是工业制造的基础。主要切割对象包括金属,陶瓷,玻璃,合成物,甚至是生物材料,例如组织和骨骼。每种材料的特殊性能(例如硬度,延展性,脆性和导热性)都会导致较大的切削力或较高的切削温度。由于使用常规切削(CC,常规切削)类型的快速工具磨损或断裂或材料精加工表面的表面完整性不令人满意,这两个因素都导致可加工性差。在自然界中,蛇在炎热的沙漠表面上移动时有自己的减少热量蓄积的方式。他们沿着“ S”型路径前进,因此他们的身体底部间歇性地与沙漠分开。这样,分离间隔既减少了切削热量的积聚,又通过允许空气通过而有效地实现了冷却。此外,撞击目标时,芒齿龙牙s的两个下颌骨的加速度在180毫秒内可以达到71,730 g m / s 2 ,这很容易因瞬态巨大冲击而破坏目标表面。因此,分别基于蛇在沙漠表面上的运动和刺蛇怪在目标表面上的撞击,采用了超声波频率间断切割方法,也称为“蛇型”振动切割(SVC,蛇型振动切割)。在这项研究中提出。首先,分析其仿生运动学,然后介绍SVC系统的设计。最后,对常见且典型的难切割材料(即钛合金)进行了切割实验。分别测量切削力,切削温度和材料精加工表面的表面完整性。结果表明,与传统的切削方法相比,SVC分别使切削力和切削温度分别降低了50%和30%。此外,在表面粗糙度和残余应力状态下均改善了表面完整性。

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