An analytical approach for the determination of helical gear tooth geometry

IF 2.6 Q1 ENGINEERING, MULTIDISCIPLINARY Journal of Engineering Design and Technology Pub Date : 2023-03-15 DOI:10.1108/jedt-08-2022-0446
O. Mohammed
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引用次数: 1

Abstract

Purpose This paper aims to present an analytical approach for the determination of helical gear tooth geometry and introduces the necessary parameters. Tooth geometry including tooth chamfer, involute curve, root fillet, helix as well as tooth microgeometry can be obtained using the presented approach. Design/methodology/approach The presented analytical approach involves deriving the equivalent equations at the transverse plane rather than the normal plane. Moreover, numerical evaluation of microgeometry modifications is presented for tooth profile, tooth lead and flank twist. Findings An analytical approach is presented and equations are derived and explained in detail for helical gear tooth geometry calculation, including tooth microgeometry. Method 1, which was presented by Lopez and Wheway (1986) for obtaining the root fillet, is examined and it is proven that it does not work accurately for helical gears, but rather it works perfectly in the case of spur gears. Changing the normal plane parameters in Method 1 to the transverse plane ones does not give correct results. Two alternative methods, namely, Methods 2 and 3, are developed in the current research for the calculation of the tooth root fillet of helical gears. The presented methods and also the numerical evaluation presented for microgeometry modification are examined against the geometry obtained from Windows LDP software. The results show very good agreement, and it is feasible to apply the approach using the presented equations. Originality/value In the gear design process, it is important to model the correct gear tooth geometry and deliver all related dimensions and calculations accurately. However, the determination of helical gear tooth geometry has not been presented adequately by equations to facilitate gear modelling. The detailed helical gear tooth root has been enveloped using software tools that can simulate the cutter motion. Deriving those equations, presented in this article, provides gear design engineers and researchers with the possibility to model helical gears and perform design calculations in a structured, applicable and accurate method.
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一种确定斜齿轮齿形的解析方法
目的提出了一种确定斜齿轮齿形的解析方法,并介绍了必要的参数。利用该方法可以获得齿面几何形状,包括齿面倒角、齿面渐开线曲线、齿根圆角、齿螺旋以及齿面微几何形状。设计/方法学/方法所提出的解析方法包括在横切面而不是法平面上推导等效方程。此外,还对齿形、齿前导和齿侧扭转的微几何变形进行了数值计算。提出了一种分析方法,推导了斜齿轮齿形计算公式,并对其进行了详细说明。方法1,这是由Lopez和Wheway(1986)提出的,用于获得根圆角,进行了检查,并证明了它不能准确地为斜齿轮工作,而是在正齿轮的情况下完美地工作。将方法1中的法向平面参数更改为横向平面参数不会得到正确的结果。对于斜齿轮齿根圆角的计算,目前的研究提出了方法2和方法3两种替代方法。并以Windows LDP软件获取的几何图形为对照,对所提出的微几何修正方法和数值评价方法进行了检验。计算结果吻合较好,表明该方法可以应用于所提出的方程。在齿轮设计过程中,重要的是建模正确的齿轮齿的几何形状,并提供所有相关的尺寸和计算准确。然而,斜齿轮齿的几何形状的确定还没有充分提出的方程,以方便齿轮建模。利用能够模拟刀具运动的软件工具对斜齿轮的齿根进行了详细的包络。推导这些方程,在本文中提出,提供齿轮设计工程师和研究人员的可能性,以模拟斜齿轮和执行设计计算在一个结构化的,适用的和准确的方法。
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来源期刊
Journal of Engineering Design and Technology
Journal of Engineering Design and Technology ENGINEERING, MULTIDISCIPLINARY-
CiteScore
6.50
自引率
21.40%
发文量
67
期刊介绍: - Design strategies - Usability and adaptability - Material, component and systems performance - Process control - Alternative and new technologies - Organizational, management and research issues - Human factors - Environmental, quality and health and safety issues - Cost and life cycle issues - Sustainability criteria, indicators, measurement and practices - Risk management - Entrepreneurship Law, regulation and governance - Design, implementing, managing and practicing innovation - Visualization, simulation, information and communication technologies - Education practices, innovation, strategies and policy issues.
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