热虹吸极限对干钻锥度热虹吸钻头设计的影响

Nkosana Ignetious Ncaba, Nyuytifo Emmanuel Wiykiynyuy, T. Jen, K. Ukoba
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摘要

本文着重研究了热虹吸极限对干钻锥度热虹吸钻头设计的影响。尽管已经寻求了其他方法,如最少量的润滑,但金属加工液的有害影响仍然存在。然而,本研究的重点是热虹吸钻头的设计、制造和测试,以消除钻井作业中金属加工液的使用。该方法包括锥形热虹吸钻头的设计、热虹吸钻头的分析、热虹吸钻头的制造和测试。利用SolidWorks软件对反向锥形热虹吸管进行了虚拟设计和应力分析。为满足热虹吸的设计要求,研制了一种高速钢钻头。然后在机械车间内通过火花侵蚀的方法使用电火花加工制造热虹吸管。设计了一个反向锥形热虹吸管,以提高钻头的最佳性能。反向锥形热虹吸管规格包括直径20毫米的钻头,长度140毫米,蹼厚7毫米,长度114毫米的锥形热虹吸管大直径6.48毫米,小直径2.5毫米。最优位置应力分析表明,锥形热虹吸钻头在切削距离为38.4 MPa时承受Von Mises应力,最优温度为372℃。最佳位置应力分析表明,最大锥度直径为17 MPa,最佳温度为433℃。研制了热虹吸钻头,并与干钻和金属加工液钻头进行了对比试验。结果表明,对于干钻和热虹吸钻井工艺,钻头尖端的钻头峰值温度降低了约40%。
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Effect of Thermosyphon Limits on Design of A Taper Thermosyphon Drill for Dry Drilling Operation
This paper focused on the effect of thermosyphon limits on the design of a taper thermosyphon drill for dry drilling operation. Although, other methods such as minimum quantity lubrication have been sought but the harmful effects of metal working fluids persist. This study however focuses on the design, fabrication and testing of a thermosyphon drill for eliminating the use of metal working fluids in drilling operations. The methodology included the design of a taper thermosyphon drill, analysis of the thermosyphon drill, manufacturing and testing of the thermosyphon drill. A virtual design and stress analysis of the reversed tapered thermosyphon was done using SolidWorks software. A high speed steel drill bit was manufactured to suit the design requirements of the thermosyphon. The thermosiphon was then fabricated within the machine shop floor using Electric Discharge Machining through method of spark erosion. A reverse tapered thermosyphon was designed to improve the optimal performance of the drill. The reversed tapered thermosyphon specification includes a 20 mm diameter drill, a length of 140 mm and web thickness 7mm, with a taper thermosyphon of 6.48 mm large diameter and 2.5 mm small diameter on a length of 114 mm. The optimal position stress analysis shows that the tapered thermosyphon drill experienced a Von Mises Stress of 38.4 MPa for the cutting distance from the drill tip and 372°C for the optimal temperature. The optimal position stress analysis also showed a Von Mises Stress of 17 MPa for the largest taper diameter and 433°C for the optimal temperature. The thermosyphon drill bit was manufactured and tested against the dry drill and metal working fluid drill bit. The results displayed a reduction in drill bit peak temperatures on the drill bit tip of about 40% for the dry drilling and thermosiphon drilling processes.
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