亚洲欧美综合在线中文-无套内射在线观看theporn-无码中文av波多野吉衣迅雷下载-尤物yw午夜国产精品视频-综合一区无套内射中文字幕

Location:Home / News

News

Industry News

Durability and Performance Rating Procedures for Plastic Gears

Time:23 Jun,2025
<p style="text-align: center;"><img src="/ueditor/php/upload/image/20250623/1750670907806071.png" title="1750670907806071.png" alt="8.png"/></p><p style="text-align: justify;"><span style="font-family: arial, helvetica, sans-serif; font-size: 12px;">High-performance plastic gears are increasingly replacing metal gears in several applications due to the many advantages they exhibit. The main ones are lower weight, no need for lubrication, cheaper mass production, significantly better noise, vibration and harshness (NVH) behavior and chemical/corrosion resistance. Most plastic gears are produced by injection molding, which enables great design flexibility, e.g., joining several machine elements into one molded part, while gear geometry modifications like enlarged root rounding or altered profile shapes are also possible (Ref. 1).</span></p><p style="text-align: justify;"><span style="font-family: arial, helvetica, sans-serif; font-size: 12px;">Plastic gears have been used since the 1960s, when they were initially used for simple motion transmission applications. Over the years, with the development of new, improved plastic materials, technology started to make its way into power transmission applications. Until recently, plastic gear drives were employed for applications with power up to 1 kW; however, lately, there have been attempts to use high-performance plastics in gear drives exceeding the 10-kW mark.</span></p><p style="text-align: justify;"><span style="font-family: arial, helvetica, sans-serif; font-size: 12px;">Along with ever-increasing customer requirements, the NVH behavior of polymer gears is also gaining importance. One of the early studies of the acoustic performance of polymer gears was carried out by Hoskins et al. (Ref. 2), in which the researchers examined the influence of diverse materials used in polymer gears and different operational circumstances on the spectrum of sound frequencies. Parameters such as the texture of the surface, wear, and temperature, stemming from the interaction between tooth surfaces, were recognized as the factors affecting the intensity of sound energy. Trobentar et al. (Ref. 3) compared the acoustic behavior of polymer gears with different tooth profiles, i.e., involute and S-gears. The tooth profile of the S-gears had a convex addendum and concave dedendum, which resulted in a progressively curved (in the shape of the letter S) path of contact. The authors found that S-gears exhibit lower noise than involute gears, which can be attributed to the more favorable contact conditions. Polanec et al. (Ref. 4) studied the noise of coated POM polymer gears. Three physical vapor deposition (PVD) coatings were investigated, i.e., aluminum, chromium, and chromium nitrite. The study revealed that uncoated polymer gears exhibited the lowest sound pressure level, and hence no positive impact of the coating on the reduced noise could be confirmed. Furthermore, the coating started to peel off during operation, causing increased friction and meshing disturbances, which resulted in an increased sound-pressure level.</span></p><p style="text-align: justify;"><span style="font-family: arial, helvetica, sans-serif; font-size: 12px;">The broader adoption of polymer gears could be facilitated if standardized design methodologies were established and pertinent material information became accessible. Presently, there is a lack of a global norm that would formalize the calculations, design principles, and recommendations specific to polymer gears. Certain national standards on this topic do exist, for instance, BS 6168:1987 (Ref. 5), as well as the Japanese standard JIS B 1759:2013 (Ref. 6). The latter draws from ISO 6336:2006 (Ref. 7) with some adaptations detailed in Moriwaki et al.’s study (Ref. 8). Additionally, guidelines from diverse engineering associations are at one’s disposal. VDI 2376:2014 (Ref. 9), a successor to VDI 2545 (Ref. 10), was published in 2014, stands as the most comprehensive and commonly employed framework for polymer gear design. It encompasses evaluation techniques for the most recurrent failure modes in polymer gears. Fundamental material data for substances like POM and PA 66 are also encompassed. AGMA (Refs. 11,12) has also issued design guidelines, though these focus solely on potential materials and gear configurations, neglecting design models and essential material data crucial for polymer gear design. Tav?ar et al. (Ref. 13) introduced a holistic design optimization for polymer gears that encompasses all plausible failure modes. Efforts have also been made to incorporate machine-learning algorithms into gear design (Refs. 14,15), which have proven beneficial for evaluating non-standard gear designs. Nonetheless, a substantial database of existing instances is requisite to adequately train such models.</span></p><p style="text-align: justify;"><span style="font-family: arial, helvetica, sans-serif; font-size: 12px;">When compared to steel gears, polymer ones do also have some disadvantages. The most important ones are a lower load-bearing capacity, poorer thermal conductivity, less temperature stability, and poorer manufacturing precision. While the load-bearing capacity is the most important property, several studies have been conducted that relate to improving it, either with a special gear design (Refs. 1,16,17) or improved materials (Refs. 18,19,20). It is speculated that a significant contribution to the load-bearing capacity can also be applied with sufficient quality of the molded gears. While there are studies available discussing the effects of processing parameters (Ref. 21) and tool design on the geometric quality of injection-molded gears, there is a lack of systematic studies addressing these effects on the mechanical and thermal responses of polymer gears.</span></p><p style="text-align: justify;"><span style="font-family: arial, helvetica, sans-serif; font-size: 12px;">An extremely wide selection of different plastic materials is currently available on the market. A major limitation, however, is a huge gap in gear-specific material data on these materials, which is a problem that has been persisting for decades now. Providing a step towards a solution is the German guideline VDI 2736, which proposes design rating methods (Ref. 9) along with testing procedures (Ref. 22) to be followed to generate reliable data required in the gear rating process. This paper delves into the current state of the art in plastic gear testing, providing a comprehensive overview of testing methods and supplemented with case studies.</span></p><p><br/></p>
2017 © SUFUL bearing.ALL Right Reserved
logo
主站蜘蛛池模板: 亚洲а∨天堂男人色无码| 久久国产精品成人片免费| 日本无遮挡吸乳呻吟视频| 无码高潮少妇多水多毛| 一本久道中文无码字幕av| 色欲av巨乳无码一区二区| 欧美亚洲日韩国产网站| 青青草国产精品人人爱| 国产精品成人3p一区二区三区| 蜜芽av无码精品国产午夜| 国产精品免费观看调教网| 久久国产福利播放| 欧美最猛性xxxxx大叫| 综合久久久久久综合久 | www夜片内射视频在观看视频| 亚洲大色堂人在线视频| 免费纯肉3d动漫无码网站| 交换交换乱杂烩系列yy| 亚洲色无码专区在线观看| 极品老师腿张开粉嫩小泬| 欧美日韩亚洲国产综合乱| 国内精品久久久久久影院 | 国产大片黄在线观看私人影院| 人妻老妇乱子伦精品无码专区| 精品人妻va出轨中文字幕| 亚洲精品色在线网站| 午夜免费福利小电影| 日韩欧洲在线高清一区| 国产av高清无亚洲| 亚洲v欧美v国产v在线观看| 看成年全黄大色黄大片| 野花社区www高清视频| 婷婷色综合视频在线观看| 日韩av一区二区精品不卡| 99精品人妻无码专区在线视频区 | 中文字幕人妻熟在线影院| 色优久久久久综合网鬼色| 国产精品人成在线观看| 国产无遮挡又黄又爽网站| 国产欧美日韩久久久久| 99热精品国产三级在线|