一品二品三品中文字幕 I 亚洲欧美另类激情 I 久久99久久99小草精品免视看 I 成人黄色链接 I 午夜在线91 I 成人黄大片 I 99re久久资源最新地址 I 日韩免费高清 I 亚洲色大成网站www永久 I 亚洲欧美日韩国产成人精品 I 欧美成人一卡二卡三卡四卡 I 亚洲精品国产自在久久 I 91精品国产综合久久精品图片 I 777狠狠干 I 国产精品99久久久久久人免费 I 久久久免费看 I 天天干天天插天天操 I 狠狠婷婷色五月中文字幕 I 欧美40老熟妇色xxxxx I 亚洲国产精品嫩草影院 I 人人玩人人添人人澡欧美 I 91在线官网 I 欧美三区二区一区 I 亚洲精品456在线播放第一页 I 99re6在线视频 I 日韩一二三区在线 I 超碰p I 日本xx视频 I 日本黄视频免费在线观看 I 亚洲精品一

Milling and cutting of titanium alloy materials and its advantages

[ 信息發布:本站 | 發布時間:2019-08-23 | 瀏覽:1922 ]



In many aerospace applications, titanium and its alloys are replacing traditional aluminum alloys. Today, the aerospace industry consumes about 42 per cent of global production of titanium, and demand for Titanium is expected to continue to grow at double-digit rates between now and 2010. The new generation of aircraft needs to make full use of the performance provided by titanium alloys. Both commercial and military aircraft markets are promoting the demand for titanium alloys. New models such as the Boeing 787, Airbus A380, F-22 Raptor Fighter, and F-35 Joint Attack Fighter(also known as Lightning II) all use a large amount of titanium alloy material.

Advantages of Titanium Alloy Materials
Titanium alloy has high strength, high fracture toughness and good corrosion resistance and weldability. With the increasing use of composite structures in aircraft fuselage, the proportion of titanium-based materials used in fuselage will also increase, because titanium and composite materials are far better than aluminum alloys. For example: Compared with aluminum alloy, titanium alloy can increase the life of the fuselage structure by 60 %.
The extremely high intensite/density ratio of titanium alloys(up to 20:1, that is, weight can be reduced by 20 %) provides a solution for reducing the weight of large components(this is the main challenge for aircraft designers). In addition, the inherent high corrosion resistance of titanium alloys(compared with steel) can save the cost of daily operation and maintenance of aircraft.
Need for greater processing capacity
Because it is more difficult to process than ordinary alloy steel, titanium alloys are generally considered to be difficult to process materials. The metal removal rate of a typical titanium alloy is only about 25 % of that of most ordinary steel or stainless steel, so it takes about four times as long to process a titanium alloy workpiece.
In order to meet the increasing demand for titanium alloy processing in the aviation manufacturing industry, manufacturers need to increase their production capacity and therefore need to better understand the effectiveness of titanium alloy processing strategies. The processing of typical titanium alloy workpieces starts from forging until 80 % of the material is removed to obtain the final workpiece shape.
With the rapid growth of the aviation parts market, manufacturers have felt overwhelmed. In addition, the increased processing demand due to the low processing efficiency of titanium alloy workpieces has led to a significant tension in the processing capacity of titanium alloy. Some leading companies in the aviation manufacturing industry even openly question whether the existing machining capabilities can complete the processing tasks of all new titanium alloy workpieces. Since these workpieces are usually made of new alloys, it is necessary to change the processing methods and tool materials.
Titanium alloy Ti-6Al-4V
Titanium alloys have three different structural forms: α-titanium alloys, α-βtitanium alloys, and β-titanium alloys. Commercial pure titanium and α-titanium alloys can not be heat-treated, but usually have good weldability; Alpha-β-titanium alloys can be heat-treated, and most of them are also weldable; Beta and quasi-β-titanium alloys can be completely heat-treated and are generally weldable.
Most common α-β-titanium alloys used in turbine engines and fuselage components are Ti-6Al-4V(Allvac Ti-6 -4, Ti-6 -4). Ti-6 is used in this article to represent ATI Allvac. Titanium alloys, The company is a major supplier of titanium alloys(recently signed a $2.5 billion long-term supply contract with Boeing for titanium alloys). In addition, ATI Stellram, which cooperates with ATI Allvac to develop processing solutions, also uses these titanium alloy codes to describe processing requirements.
Ti-6 has excellent strength, fracture toughness and fatigue resistance, and can be made into various product forms. Ti-6 in the deactivated state can be widely used in structural parts. Through minor changes in chemical composition and different thermal mechanical treatment processes, Ti-6-4 can be used to produce components for various uses.
Titanium alloy Ti-5Al-5V-5Mo-3Cr
The Ti-5Al-5V-5Mo-3Cr(Ti-5-5-5-3) is a new titanium alloy with market influence. Compared with β-titanium alloys and α-β-titanium alloys, this quasi-β-titanium alloy can provide the fatigue fracture toughness required in applications that require higher tensile strength.
Compared with traditional titanium alloys(such as Ti-6 and Ti-10 -2 -3), The Ti-5-5-5-3's malleable shape, heat treatment and final tensile strength of up to 180 ksi(thousands of pounds per square inch) make it the most promising material for the manufacture of aircraft advanced components and landing devices.
Ti-5 -5 -3 can obtain excellent mechanical properties by dissolving heat treatment below the β-transition temperature or annealing above the β-transition temperature while appropriately controlling the grain size and precipitation in the microstructure. The β-transition temperature is the specific temperature of the compound, at which the alloy changes from an α-β microstructure to a full β-microstructure.
The change of chemical properties and microstructure makes it possible to obtain a wide range of performance combinations of titanium alloys, and thus it is widely used in aerospace components. The processing difficulty of Ti-5-5-5-3 has increased by about 30 % compared to Ti-6-4. Therefore, parts manufacturers applying this new alloy are committed to developing corresponding processing processes that do not shorten the tool life and do not extend the production cycle.
When processing titanium alloy, material hardness is a key factor. If the hardness value is too low(<UNK> 38HRC, titanium alloy will become sticky, cutting edge is easy to produce accumulation tumor. The titanium alloy with higher hardness value(> 38HRC) will wear off the tool material and wear the cutting edge. Therefore, the correct selection of machining speed, feed and cutting tool is crucial.


Requirements for cutting tools
In order to meet the requirements of production costs, processing quality and scheduled delivery, new workpiece materials and spare parts designs have increased the pressure on aviation parts manufacturers. The processing of these new materials has changed the requirements for cutting tools. Improving the metal removal rate, tool life, product quality, and the unbreakable life of the tool can be crucial for efficient and safe processing. "Hard to process" is a relative concept. Through the correct combination of cutting tools and processing parameters, efficient productivity can also be achieved.

In processing aero-grade titanium alloy workpieces, cutting tool manufacturers use methods such as increasing matrix density, designing special tool geometry, adopting accurate cutting edge grinding techniques, and developing new coating technologies to control cutting heat generated by the knife-work interface., The performance of the tool is greatly improved.
In milling process, one of the important characteristics of titanium alloy is very poor thermal conductivity. Due to the high strength and low thermal conductivity of titanium alloy materials, extremely high cutting heat can be generated during processing(up to 1200 °C if not controlled). Heat is not discharged with the cuttings or absorbed by the workpiece, but is concentrated on the cutting edge. Such high heat will greatly shorten the tool life.
With special processing technology, it is possible to improve the tool performance and life(using the correct processing technology to control the temperature, the temperature can be reduced to 250-300 °C).
Reduce heat generation
Cutting heat can be controlled by reducing the radial and axial engagement of the cutter and workpiece. For titanium alloys, the adjustment period for velocity, feed, radial, and axial joints is very short before the accumulation tumor is generated due to overheating. In order to achieve an appropriate tool life, only a maximum of 15 % of the "joint arc length" is required for the processing of titanium alloys. In contrast, the joint arc length is 50 % to 100 % when processing ordinary steel. Reducing the contact arc length can increase the cutting speed and improve the metal removal rate without losing the tool life.
The use of a cutting tool with a cutting angle of 45 ° or a thinning chip can increase the contact length of the cutting edge and the cutting chip, thereby reducing the local high temperature and extending the cutting edge life, while also allowing higher cutting speed.
Geometrical Design of Blade
When cutting titanium alloy, it is very important to use the circumferential grinding blade to minimize the cutting pressure and friction with the finished surface. The blade geometry must have a positive angle, but this is not enough to ensure the best performance. If a small initial angle of higher strength is used to enhance the first part of the cutting edge, then the use of a larger secondary angle(to obtain a larger positive and inverted edge) is the best geometric design for enhancing the pressure resistance of the blade and extending the tool life. In addition, minor passivation also helps to protect the cutting edge, but passivation dimensions must be coordinated with the cutting process and maintain strict tolerances. When processing titanium alloy, it is necessary to use sharp cutting edge to cut materials, but cutting edge too sharp can easily lead to collapse edge and shorten tool life. Proper passivation can protect the cutting edge from premature collapse. The correct geometrical parameters of the blade can reduce the stress and pressure on the tool material, so that the tool can obtain a longer life and improve the processing efficiency.
The cutting angle of the cutter body and blade must be positive to achieve progressive cutting effect and to avoid cutting the entire cutting edge impact and can not obtain the desired shear effect. If this is not done, the workpiece structure may be deformed, making processing impossible.
Concave milling and screw interpolation milling
In concave milling and spiral interpolation milling, internal cooling tools must be used, and if possible, a constant pressure coolant should be used, which is particularly important for deep concave cavity or deep hole processing.
When deep concave cavities are processed, the high density cemented carbide lengthening tool with a modular cutting head can improve rigidity and reduce deflection deformation, and obtain the best machining effect.
The function of the coolant is to remove the chip from the cutting area to avoid secondary cutting that may cause early failure of the tool. At the same time, the coolant also helps to reduce the temperature of the cutting edge, reduce the geometric deformation of the workpiece, and extend the tool life.
Spiral interpolation of milling holes with milling cutter can reduce the use of other tools(such as drills, etc.) in the cutter library. A diameter milling cutter can be used to process different sizes of aperture.
With the increasing application of titanium alloy in aerospace industry, the cutting technology supporting the high efficiency processing of titanium alloy is also developing continuously. The workshop or manufacturer that uses the most efficient processing technology will benefit first due to the large demand for the processing capacity of titanium alloy parts.
Internal integration produces new solutions
The combination of Allegheny Technologies, a multi-domain manufacturer whose business includes both metal smelting and metal cutting, gives the company an advantage in developing new methods of processing advanced materials such as titanium alloys.
ATI Stellram is a business unit of ATI Metalworking Products, a subsidiary of Allegheny Technologies. It is responsible for testing the processing performance of all new materials developed by ATI Allvac to determine the best blade design, tool geometry, Matrix and coating structure, and cutting parameters. This enables these new materials to be processed economically and efficiently before they are publicly available for sale. In addition, as a representative of Allvac, Stellram is a major aviation manufacturer and a leading supplier of aerospace machinery parts that can meet the common needs of both workpiece materials and cutting tools.
The comprehensive understanding of the inherent structure of materials gives ATI Stellram an advantage in the design of unique formulas for tool bases. One of its achievements is X-Graade technology, which ATI Stellram stated has proved to be a reliable solution for processing difficult materials. Through the research and development of X-Graade technology, a new hard alloy brand has been created that can effectively cut difficult materials at extremely high metal removal rates under unstable processing conditions.
X-Graade Blade Technology(Matrix and Coating)
The X-Graade blade uses a ruthenium / cobalt alloy matrix that can resist the generation and expansion of thermal cracks and achieve high metal removal rates. The matrix has a strong crystal binding matrix structure, which improves the toughness of the cutting edge. According to ATI Stellram, this matrix material combines with new tool geometry and coating to provide excellent tool combinations for processing aerospace alloys. The use of X-Graade blades can be achieved: 1. The metal removal rate is doubled; 2 The tool life has increased to three times; 3 The finish of the processing surface increased by 30 %.
The available X-Graade blades include three brands(X400, X500, and X700), each of which is designed for specific difficult cutting processes. They can use a standard blade type, and most of them can be installed in the blade groove of the standard blade body. However, ATI Stellram said that the best solution is to use specially designed tools to optimize the performance of the X-Graade blade. The tool slot design of these tools can achieve maximum sawdust, reinforced groove and optimal cooling. The two types of knives in this series include: 1 7710VR anti-turning button milling cutter: a patented locking system with round blades and preventing blade displacement during large feed cutting; 2 7792VX high feed milling cutter: Compared with traditional tools, the metal removal rate can be increased by 1 times. In addition to the surface milling by Gaojin, the 7792VX series of tools can also be used for milling cavities, milling slots, and milling. Since the cutting force is directly transmitted to the spindle along the shaft, the friction of the spindle can be reduced and the cutting stability can be improved.
Case study of aerospace titanium alloy parts processing
The following are two examples of the processing of aerospace titanium alloy parts using ATI Stellram tools and X-Graade blades.
(1) Examples of processing 1
Processed Parts: Titanium Alloy Overlay(Military)
Workpiece material: Ti-6Al-4V(Allvac Ti-6 -4 alloy)
Workpiece size: 110 "x 18"
Processing description: The ATI Stellram 7792VX high advance milling cutter with XDLT-D41 convertible blade was used to process the milling cutter, and the tool life of rough milling processing reached 156 minutes.
Milling cutter: C7792VXD12-A3.00Z5R; Number of slots: 5
Blade: XDLT120508ER-D41; Brand: X500(using X-Graade technology

主站蜘蛛池模板: 91在线无精精品一区二区 | 天天综合网久久 | 欧美精品一区二区三 | 欧美区在线观看 | 999视频在线观看 | 国产婷婷一区二区三区久久 | 精品久久久久久无码人妻蜜桃 | 在线播放www | 国产成人+综合亚洲+天堂 | 99国产精 | 69sex久久精品国产麻豆 | 欧美a级suv大全免费看 | 国产欧美日韩一区 | www丫丫国产成人精品 | 青娱乐精品视频 | 亚洲精品三级 | 亚洲精品天天影视综合网 | 在线免费精品视频 | 国产99re热这里只有精品 | 亚洲精品欧美一区二区三区 | 日本特黄特刺激一级猛片 | 奇米在线7777在线精品 | 国产揄拍国产精品人妻蜜 | 免费毛片a在线观看67194 | 在线观看成人无码中文av天堂不卡 | 久久久999成人 | 成人高潮片免费视频 | 欧美老少妇| 免费人成视频在线播放视频 | 狠狠色老熟妇老熟女 | 亚洲—本道中文字幕东京热 | 欧美成人精品三级一二三在线观看 | 99精品视频九九精品视频 | 天天爽夜夜爽精品视频婷婷 | 天天上天天干 | 丁香花在线视频观看免费 | 久久久久久久激情 | 亚洲天堂av在线免费观看 | 在线精品视频一区二区三区 | 天天看天天爽 | 欧美日韩999| 国产乱人伦中文无无码视频试看 | 黄色精品一区二区三区 | 中文字幕在线播放一区二区 | 韩国精品无码久久一区二区三区 | 日韩一区二区在线观看视频 | 一本色道无码道dvd在线观看 | 超碰2020 | 日本午夜三级视频 | 国产精品色悠悠 | 中文字幕777 | 国产精品一二三区久久狼 | 成人在线网站观看 | 色 综合 欧美 亚洲 国产 | 99久久99久久免费精品蜜臀 | 又爽又黄又无遮挡网站动态图 | 在线观看a网站 | 欧洲亚洲成人 | 国内精品久久久久伊人av | 主站蜘蛛池模板: 蛛词}| 亚洲成av人片在线观看无 | 久热精品视频天堂在线视频 | 老熟妇hd小伙子另类 | 一本久久伊人热热精品中文字幕 | 日本亚洲在线 | 午夜男人网 | 欧美在线观看成人 | 91精品啪啪| 精品综合在线 | 欧美aaaaaaa| 国产成人无码va在线播放 | 久久青青草原国产最新片完整 | 日韩和欧美一区二区 | 伊人影院在线免费观看 | 上海少妇高潮狂叫喷水了 | 玩弄人妻少妇精品视频 | 欧美日韩一二三 | 亚洲欧洲日产国码中文字幕 | 姑娘第4集在线观看免费播放 | 久久久久久亚洲国产 | 亚洲精品成人无限看 | 免费观看潮喷到高潮 | 日日夜夜天天综合 | 国产成人免费av一区二区午夜 | 午夜视频在线免费观看 | 国产欧美精品一区二区三区四区 | 欧美特级婬片毛多的少妇 | 97se亚洲国产综合自在线 | 人妻无码免费一区二区三区 | 国产日韩欧美 | 夜夜骑日日操 | av怡红院 | 人人妻人人妻人人片av | 国产v精品成人免费视频 | 超碰女 | 91av视频在线观看 | 美女福利在线视频 | 东京热无码人妻系列综合网站 | 蜜桃日本免费观看mv | 欧洲 亚洲 国产图片综合 | 亚洲自拍一区在线观看 | 亚洲欧美专区 | 亚洲欧美日韩久久一区二区 | 精品欧美一区二区在线观看 | 国产乱子伦高清露脸对白 | 在线不卡福利 | 亚洲中文字幕无码日韩精品 | 蜜臀久久精品久久久久久酒店 | 国产台湾无码av片在线观看 | 欧美专区在线 | 无码人妻精品一区二区三区66 | 最近更新中文字幕免费大全 | 亚洲高清精品视频 | 精品无码一区二区三区水蜜桃 | 97超碰人人澡人人 | 国产精品自在欧美一区 | 久久成人一区二区三区 | 亚洲精品无码不卡久久久久 | 黄色一级视频免费看 | 主站蜘蛛池模板: 蛛词}| 色猫咪av在线观看 | 伦理一区二区 | 香蕉久久夜色精品国产尤物 | 日本黄色网页 | 国产精品女主播主要上线 | 亚洲欧洲日韩在线电影 | 无码伊人久久大杳蕉中文无码 | 成年站免费网站看v片在线 岛国搬运工av在线播放 | 免费99精品国产人妻自在现线 | 9色在线| 一边啪啪一边呻吟av夜夜嗨 | 一本无码中文字幕在线观 | 亚洲国产精品久久久久秋霞影院 | 亚洲日本va午夜中文字幕 | 国产成人无码av在线影院 | 91在线视频免费观看 | 中文字幕亚洲精品日韩 | 久久国产欧美日韩精品 | 欧美日韩精品一区二区天天拍小说 | 亚洲国产精品无码成人片久久 | 国产成人免费97在线观看 | 高清偷自拍第1页 | 秋霞影院午夜丰满少妇在线视频 | 精品一区二区久久久久久久网站 | 96精品国产| 亚洲国产欧美中文手机在线 | 亚洲欧美激情国产综合久久久 | 辣+高h+浓+np+肉+黄在线 | 日韩无码在钱中文字幕在钱视频 | 四虎影视精品永久在线观看 | 性中国少妇熟妇xxxx农村 | 亚洲影视大全 | 国产吞精囗交免费视频网站 | 乌克兰性欧美精品高清 | 伊人久久一区二区 | 日韩欧美国产视频 | 亚洲视频一区 | 色哟哟18免费影视 | 一级黄色av片 | 欧美精品一二三四区 | 无码人妻一区二区三区精品视频 | 亚洲日本va中文字幕人妖 | 精品国产久九九 | 日韩a级影片 | 国产gv猛男gv无码男同网站 | 绯色av粉嫩av蜜臀av | 免费无码国产欧美久久18 | 国产成人精品无码片区 | 午夜精品影院 | 国产视频亚洲精品 | 久草视频一区二区 | 色噜噜狠狠色综合久夜色撩人 | 亚洲一区二区免费视频 | 奇米视频888战线精品播放 | 欧美放荡性医生videos | 亚洲免费在线看 | 自拍偷拍第1页 | 一本大道久久卡一卡二卡三乱码 | 又色又爽又黄的gif动态图 | 主站蜘蛛池模板: 蛛词}| 竹内纱里奈一88av在线 | 国产桃色无码视频在线观看 | 久久久久国产精品人妻aⅴ果冻 | 成年女人在线视频 | 亚洲真人无码永久在线观看 | 国产经典久久 | 日本少妇人妻xxxxx18 | 久久成人a毛片免费观看网站 | 国产超碰人人 | 成年黄页网站大全免费无码 | 日韩精品福利 | 精品成在人线av无码免费看 | 久久精品无码精品免费专区 | 久久国产乱子伦免费精品无码 | videsgratis欧美另类| 久久久www免费人成黑人精品 | 鲁大师在线视频播放免费观看 | 免费无码又爽又刺激网站 | 精品国产乱码久久久久久精东 | 中文字幕手机在线视频 | 亚洲人成网站色ww | 亚洲精品乱码8久久久久久日本 | 欧洲一区二区在线观看 | 97人妻无码一区二区精品免费 | 国产精品午夜福利视频234区 | 人妻无码久久中文字幕专区 | 国产高清乱理伦片中文小说 | 性chinese极品按摩 | 日日噜噜噜夜夜爽爽狠狠片 | 91精彩视频在线观看 | 亚洲成av人片在线观看wv | 久久精品国产久精国产一老狼 | 国产精品345在线播放 | 特黄特黄欧美亚高清二区片 | 国产精品theporn88 | 狠狠色老熟妇老熟女 | 国产欧美日韩三级 | 91亚洲免费视频 | 小13箩利洗澡无码免费视频 | 亚洲熟妇中文字幕五十中出 | 人人妻人人澡人人爽久久av | 亚洲免费鲁丝片 | 欧美高清在线精品一区 | 国产女人喷浆抽搐高潮视频 | 一级做a爰片毛片视频 | 中日韩va无码中文字幕 | 久热久草| 88国产精品久久现线拍久青草 | 波多野结衣高清一区二区三区 | jzzjzzjzz亚洲成熟少妇 | 午夜激情福利 | 免费一级特黄特色毛片久久看 | 久热国产区二三四 | 欧美日韩亚洲国产精品 | 亚洲男人天堂2022 | 久久人人艹| 国产美女极度色诱视频www | 五月天天天综合精品无码 | 天天射天天爱天天干 | 主站蜘蛛池模板: 蛛词}| 日韩 无码 偷拍 中文字幕 | 国产精品手机在线播放 | 日本丰满少妇做爰爽爽 | 毛片.com | 中国少妇肉体xxxx | 亚洲欧美熟妇综合久久久久 | 手机免费av片| 99精品欧美一区二区三区 | 精品国产综合成人亚洲区 | 天干夜天天夜天干天 | 亚洲色图国产精品 | 日日狠狠久久8888偷偷色 | 成人福利国产精品视频 | 伊在人亚洲香蕉精品区 | 一区二区三区在线免费看 | 日韩福利片午夜免费观着 | 国产女人高潮视频在线观看 | 国产免费拔擦拔擦8x高清在线 | 伊人五月天婷婷 | 国产女人高潮叫床免费视频 | 人妻丰满熟妇av无码区app | 成人久久毛片 | 国产做受蜜臀 | 精品无人乱码高清在线观看 | 国产又粗又猛又爽又黄的视频在线观看动漫 | 欧美羞羞视频在线观看 | 欧美50p| 中出精品| 精品久久久久久中文字幕人妻最新 | 欧日韩无套内射变态 | 视频一区二区在线播放 | 97久久超碰国产精品最新 | 福利逼站 | 国产在线 | 中文 | 狠狠色噜噜狠狠狠狠777米奇 | 欧洲多毛裸体xxxxx | 亚洲日韩av无码中文 | 国产精品毛片一区 | 精品av一区二区 | 久久久久免费看黄a片app | 91精品国自产拍天天拍 | 久久先锋男人av资源网站 | 久久你懂的 | 欧美黑人粗暴多交高潮水最多 | 中文无码乱人伦中文视频在线v | 国产真实的和子乱拍在线观看 | 欧美大片一区二区 | 中文字幕一区二区三区视频 | 日本男人的天堂 | 中文字幕第20页 | 亚洲综合色在线视频www | 日本成人黄色片 | 日本两性视频 | 狠狠色综合网丁香五月 | 免费手机av| 久久伊人五月天 | 欧美日韩中文在线字幕视频 | 亚洲a∨国产av综合av网站 | 性开放的女人aaa片 性插免费视频 |