色呦呦网址在线观看,久久久久久久久福利精品,国产欧美1区2区3区,国产日韩av一区二区在线

It is essential to carefully select the appropriate end milling blade shapes for hardened steel mold cavities. High-speed cutting has emerged as one of the top ten mold manufacturing technologies in recent years, introducing a new approach to mold processing. Among these technologies, high-speed machining of hardened steel has gained significant attention. Solid carbide tools are commonly used for rough and finish machining of mold cavities, with a focus on improving processing efficiency during rough and semi-finish machining. General-purpose end mills, such as ball-end mills and corner radius end mills, perform well under favorable conditions with small cutting parameters but may suffer from severe wear, chipping, or even breakage of the cutting edge under high feed rates, large cutting widths, and small cutting depths typical in the mold industry. Modern mold production demands that tools achieve maximum metal removal rates under high-speed machining conditions to improve efficiency, with much of the research focusing on cutting technology. This paper discusses the optimization of tool blade design to enhance performance and meet the requirements for high-efficiency machining.

Conventional end mills have the following drawbacks under high-efficiency cutting conditions:

1.To reduce cutting forces and facilitate chip evacuation, the end edges of corner radius end mills typically feature a concave design with a high edge at the tip and a low center. This means that only the tip participates in cutting during face milling, resulting in high stress and a tendency for chipping.

2.The cutting edge of ball-end mills exhibits both negative rake angles and low-speed cutting inefficiencies, leading to a low metal removal rate.

3.Cutting forces are primarily radial, with the main cutting forces directed along the X and Y axes, causing tool chatter under high-efficiency cutting conditions.

To address these issues, the tool’s end edge shape is optimized by incorporating an arc design for edge protection. The concave straight edge is replaced with an arc edge where the tip is lower and the center is higher. The benefits include:

1.Increased cutting edge length, reducing the cutting load per unit, and distributing the cutting allowance and cutting force across the entire edge shape.

2.The bottom arc design, with a larger radius and smaller main cutting angle, reduces cutting forces and cutting-induced vibrations.

End Mill Cutter Shape Design and Analysis

Taking a φ10 four-flute end milling cutter as an example, the optimized arc-shaped milling cutter blade outperforms conventional end mills (corner radius and ball-end mills) in terms of effective cutting edge shape and length Le (black thick line) at the same cutting depth (0.5mm), as shown in Figure 1 and Table 1. The arc-shaped milling cutter has the longest effective cutting edge length, followed by the ball-end milling cutter, with the corner radius end milling cutter having the shortest. To comprehensively evaluate the performance of arc-shaped milling cutters compared to conventional end mills under high-efficiency machining conditions, both cutting simulations and cutting experiments were conducted for comparison.

How to Select End Milling Cutter Shapes for Machining Hardened Steel Mold Cavities? 2

How to Select End Milling Cutter Shapes for Machining Hardened Steel Mold Cavities? 3

During the cutting simulation, both the end milling cutter and the workpiece were simplified and precisely configured to ensure accurate calculations. A 10mm section of the end mill was selected as the simulation cutting portion, with detailed settings applied only to the cutting edge area. The total rotation angle of the tool during simulation was set to 190°, ensuring complete data for tool entry and exit points. The cutting parameters were set based on relatively large values commonly used in the mold industry: vc= 120m/min,fz=0. 4mm /z,ap = 0. 5mm,ae =10mm. The workpiece material selected was hardened steel (SKD11, with a hardness of HRC58), and the tool material chosen was carbide. The milling method used was climb milling. The cutting simulation model and the cutting conditions are shown in Figure 2.

How to Select End Milling Cutter Shapes for Machining Hardened Steel Mold Cavities? 4

 

Comparison of Cutting Forces

Cutting force is a crucial indicator of cutting performance. Excessive cutting force significantly impacts tool life. The cutting forces in the X, Y, and Z directions were directly extracted using the AdvantEdge post-processing program, showing how cutting forces fluctuate over time (see Figure 3).

end milling cutter performance

From the figure, it is evident that the corner radius end milling cutter exhibits relatively stable cutting behavior. In contrast, the ball-end mill shows significant fluctuations in cutting force. This instability is attributed to the ball-end mill’s two-flute connection at the center, where long and short teeth alternate during milling. The variation in the number of active cutting edges leads to changes in the effective cutting edge length, resulting in substantial fluctuations in cutting force. The optimized arc-shaped end milling cutter initially encounters a larger cutting allowance when it begins to engage with the workpiece, resulting in higher cutting forces. As the cutting progresses deeper into the workpiece, the cutting allowance is uniformly removed radially along the tool, causing the cutting force to decrease and stabilize.

Comprehensive Comparison

The average values of the simulated cutting forces and cutting temperatures were calculated (see Table 1). It can be observed that the ball-end mill operates at a lower cutting temperature but experiences greater fluctuations in cutting force. The corner radius end milling cutter, with its shorter effective cutting edge, generates smaller cutting forces. The optimized arc-shaped end milling cutter produces higher cutting forces, predominantly in the axial direction.

Since the cutting edges involved in the process are concentrated on the end edges, they can be considered as simultaneously engaged in cutting. The resultant cutting force ftotalf_{total}ftotal? and the cutting force in the axial plane fxyf_{xy}fxy? per unit length of the cutting edge are shown in Table 2. The corner radius end mill exhibits the highest cutting force per unit length, indicating that under these conditions, the tool’s cutting edge experiences a higher cutting load, making it more prone to chipping and cutting vibrations. The optimized arc-shaped end milling cutter has the lowest cutting force per unit length, suggesting a more reasonable distribution of the cutting load.

How to Select End Milling Cutter Shapes for Machining Hardened Steel Mold Cavities? 5

Cutting Experiment Analysis

To comprehensively evaluate the cutting performance of the tools, the experiment was conducted to verify both cutting force and tool durability.

The experimental material, SKD11 with a hardness of HRC61, was the same as that used in the cutting simulation. The machining was performed on a MIKRON UCP1000 machining center using climb milling and dry cutting. The cutting process and parameters were consistent with those used in the cutting simulation.

How to Select End Milling Cutter Shapes for Machining Hardened Steel Mold Cavities? 6

Cutting Force Experiment

The cutting force sensor used was a Swiss Kistler 9265B three-component piezoelectric dynamometer, along with a charge amplifier and a corresponding data acquisition and processing system. After filtering, the cutting force values are shown in Table 3. The results indicate that the optimized arc-shaped end milling cutter generates a larger overall cutting force, but the cutting load per unit length is the smallest, consistent with the conclusions drawn from the cutting force simulation.

How to Select End Milling Cutter Shapes for Machining Hardened Steel Mold Cavities? 7

Cutting Performance Experiment for End Milling Cutter

Cutting hardened steel typically results in significant tool wear and short tool life, especially under high-efficiency cutting conditions, where differences in tool performance become more apparent. As shown in Figure 4, after machining a single groove (cutting length of 130mm), the optimized arc-shaped end mill exhibited normal wear, while the corner radius end mill and ball-end milling cutter both experienced edge chipping, leading to tool failure. The optimized arc-shaped end mill only showed edge chipping and failure after a cutting distance of 10 meters, which is more than ten times the tool life of conventional corner radius end mills and ball-end mills.

Analysis of Experimental Results

The experimental results indicate that cutting hardened steel leads to significant tool wear. Under high-efficiency cutting conditions, tools face extreme situations where only those that meet the machining demands can be used; otherwise, they are unsuitable. The optimized arc-shaped end milling cutter, with its modified blade shape, redistributes the cutting forces, reduces the cutting load per unit length on the effective cutting edge, and improves the tool’s cutting performance, thereby meeting the demands of high-efficiency cutting.

How to Select End Milling Cutter Shapes for Machining Hardened Steel Mold Cavities? 8

S? k?t lu?n

This study focused on modifying the tool blade shape to meet the high-efficiency cutting requirements for hardened steel. Through general cutting simulations and cutting experiments, the following conclusions were drawn:

1.Cutting simulations and cutting force experiments revealed that the optimized arc-shaped end mill generates greater cutting forces, particularly in the axial direction, compared to conventional corner radius and ball-end mills. However, it has a lower cutting force per unit length, with cutting temperatures comparable to those of the corner radius end mill.

2.Cutting experiments demonstrated that due to the modified blade shape, the cutting load per unit length of the cutting edge is reduced. As a result, the optimized arc-shaped end milling cutter outperforms conventional corner radius and ball-end mills under high-efficiency and heavy-load cutting conditions in mold manufacturing.

 

Tr? l?i

Email c?a b?n s? kh?ng ???c hi?n th? c?ng khai. Các tr??ng b?t bu?c ???c ?ánh d?u *

国产精品一区二区小视频-欧美亚洲国产精品激情在线-日韩免费视频一区二区三区视频-精品亚洲国产成av人片传媒| 91精品在线播放黑丝-在线观看精品国产自拍-av免费在线播放日韩-日韩av在线精品一区二区三区| 91精品啪在线观看国产91蜜桃-国产国拍亚洲精品av在线-日韩在线亚洲清纯av天堂-久久亚洲国产精品五月天| 国产特黄特色特级黄大真人片-综合激情五月三开心五月-欧美日韩不卡视频合集-成熟的妇人亚洲性视频| 密臀av免费在线观看-日韩欧美中文字幕美利坚-av黄色在线观看一区二区三区-日韩性做爰片免费视频看| 亚洲欧洲av一区二区久久-日本丰满熟妇中出在线-欧美一区二区三区人妻少妇-日韩成人av免费在线| 四虎最新在线观看视频-水蜜桃一二二视频在线观看免费-一区二区精品在线观看视频-成人高清在线播放视频| 日韩成人av在线影院-亚洲五月天久操视频在线观看-最新国产AV无码专区亚洲-欧美日韩大香蕉在线视频| 九九热视频这里免费看-一二三区无线乱码中文在线-粉嫩美女无套内射视频免费播放-国产麻豆一精品一男同| 国产在线精品一区二区中文-亚洲小说欧美另类激情-97碰久日韩视频在线观看-日本一道本高清不卡区| 国精品视频在线播放不卡-日韩av免费观看在线-亚洲这里只有精品在线观看-免费的精品一区二区三区| 久热视频在线免费观看-亚洲一区二区日韩综合久久-免费观看在线观看青青草视频-精品一区二区亚洲一区二区血炼| 日本在线观看一区二区免费-日本一区二区精品在线观看-老湿机午夜免费在线观看-成人在线永久免费观看| 国产熟女老阿姨毛片看爽爽-精品少妇人妻久久免费-韩国午夜福利片在线观看-西川结衣在线中文字幕| 日韩少妇黄色在线观看-国产精品视频不卡一区二区-国产成+人+亚洲+欧美+综合-欧美日韩亚洲大陆国产| 精品国产精品久久一区免费式-男女高清无遮挡免费视频-av男人的天堂一区二区三区-免费观看视频网站97| 日韩人妻少妇手机看片-高清av有码中文字幕在线-禁止18勿入国产精品视频-中文字幕精品乱码亚洲一区| 欧美日韩在线无卡免费播v-91麻精品国产91久久久久-中文字幕亚洲综合久久菠萝蜜-久久青青草原资源福利| 日韩欧美国产亚洲中文-亚洲国产av第一福利网-亚洲欧洲日韩一区二区三区-91精品国产福利线观看久久| 国产免费福利在线激情视频-自拍偷拍福利视频在线-国产亚洲一区二区三区在线播放-欧美国产日本高清不卡免费| 国产亚洲一区二区三区综合片-亚洲天堂日韩精品在线-有码视频在线观看日本专区-亚洲精品成人福利在线| 亚州一区二区五码在线观看-97在线视频免费公开-小明久久国内精品自线-人妻av天堂综合一区| 精品精品国产午夜福利区免费观看-日韩精品一区二区三区2020-一区二区三区精彩视频在线观看-亚洲第一香蕉视频在线| 日韩一卡二卡在线播放-亚洲国产精品懂色av-青青热久免费精品视频在-久久精品中文字幕一区二区三区| 蜜臀网站视频在线播放-四虎午夜福利视频在线观看-黄色国产精品福利刺激午夜片-亚洲精品国产成人av| 亚洲精品av一区二区日韩-日韩偷拍精品一区二区三区-亚洲欧美熟妇久久久久久-久草视频福利在线观看| 91精品国产色综合久久不88-黑人性做爰片免费视频看-房事插几下硬不起来了咋治疗-熟女乱一区二区三区四区| 国产亚洲精品首页在线播放-中文字幕国产av中文字幕-日本免费午夜福利视频-亚洲伦理一区二区三区四区| 亚洲国产国语对白在线视频-中文字幕中文字字幕码一区二区-毛片av在线免费观看-免费在线观看av毛片| 男人的精品天堂一区二区在线观看-婷婷久久香蕉毛片毛片-久久视频在线观看夫妻-亚洲国产一区久久yourpan| 青草精品在线视频观看-色呦呦在线观看中文字幕-国产一区二区日本在线观看-草青青在线视频免费观看| 亚洲自拍偷拍另类第一页-麻豆国产午夜在线精品-久久精品一区二区三区综合-日本最近中文字幕免费| 久久精品国产亚洲av麻豆甜-蜜桃亚洲精品一区二区三区-国产成a人亚洲精品无v码-午夜一区精品国产亚洲av| 日本老熟妇在线视频网-精品人妻在线一区二区三区视频-91亚洲国产成人精品福利-青青草免费手机直播视频| 看日本全黄色免费a级-丝袜美腿在线观看视频一区-亚洲av熟女国产一二三-国产日韩av一区二区三区蜜臀| 99久久精品视频在线-日韩精品免费完整版视频-精品久久久久久久亚洲婷婷综合-久久精品国产亚州av| 久久综合九色综合久久-在线看日韩欧美中文字幕-国产成人亚洲精品青草天美-91亚洲中文天堂在线观看| 国产成人精品一区二区日出白浆-亚洲女优大片在线观看-明星换脸av一区二区三区-四虎影院国产精品久久| 蜜臀精品国产亚洲av尤物-日韩人妻少妇中文字幕-赶碰97在线公开视频-亚洲欧美日韩天堂综合| 国产一级片内射在线视频-亚洲少妇无套内射激情-成人午夜性色福利视频-夜夜嗨视频无套实战丰满少妇| 久久精品亚洲精品毛片-国产精品白丝在线播放-日韩国产欧美综合第一页-亚洲三a免费观看网站|