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

End mills’ manufacturing predominantly adhere to the traditional two-dimensional design and the linear “design-trial production-trial cutting” model. This approach is fraught with drawbacks: it is difficult to accurately depict the three-dimensional contours of the end milling cutter in two-dimensional drawings; the complexity of its structure and the variety of its dimensions necessitate the use of expensive five-axis CNC tool grinders for precise finishing, leading to high costs and long cycles for the trial production of individual products. Moreover, to fully grasp performance data, it is essential to simulate actual machining conditions and conduct cutting tests throughout the tool’s entire lifecycle, a process that is both time-consuming and costly. This traditional model has undoubtedly become a heavy shackle on the efficiency of end milling cutter development, failing to meet the needs of modern cutter research and development.

Embracing the trend of three-dimensional parametric design technology, we have shifted to a new model of “parametric design (CAD) – grinding simulation (CAE) – cutting simulation analysis (CAE).” Designers no longer need to physically manufacture prototypes; instead, they can create the three-dimensional solid model of the tool by adjusting geometric parameters. Subsequently, cutting simulation technology is used to evaluate the performance of the design parameters, thereby optimizing the structural parameters of the tool. This transformation has significantly reduced research and development costs and cycles, injecting formidable competitiveness into tool manufacturing companies. Therefore, delving into the research of tool parametric design technology is of self-evident significance.

 

Techniques and Research Status Related to the Parametric Design of end milling?Cutters

The parametric design of integral end milling?cutters refers to the automatic and rapid generation of a three-dimensional solid model of the end milling?cutter by inputting structural dimension parameters such as the tool’s front angle, back angle, helix angle, diameter, and cutting edge length. To achieve the three-dimensional parametric design of end milling?cutters within a computer, it is necessary to first establish a mathematical description model of the cutter’s structural features. By employing theories and methods related to computational geometry, computer graphics, and Boolean operations, the modeling, display, and storage of the end milling?cutter in the computer are realized. Finally, the development of the parametric design software system is completed through the creation of a user interface and database. Therefore, the main research content of the parametric design of integral end milling?cutters includes the establishment of mathematical models and the software implementation.

The mathematical modeling of integral end milling?cutters involves using mathematical expressions of points, lines, or surfaces to describe the dimensional structure and topological relationships of each spatial structure of the end milling?cutter. The description method will directly determine the precision of the end milling?cutter model and the ease of software implementation. Currently, research on the mathematical modeling of end milling?cutters primarily includes structures such as bar stock, helical cutting edges, and chip flute cross-section lines.

Bar Stock Mathematical Model

As the manufacturing blank for integral end milling?cutters, the bar stock determines the basic structural parameters of the cutter, such as diameter and cutting edge length, as well as the selection of the tool holder. The mathematical model of the bar stock mainly includes two parts: the detailed modeling of the shank and the modeling of the cutter’s rotational contour. By dividing the end milling?cutter body into the shank, neck, and working parts (including the stem and head), and considering the features of the cutter’s shank (taper shank, straight shank, presence or absence of a positioning slot) and head features (rounded, ball-end, chamfered), a general mathematical model for the end milling?cutter bar stock is obtained based on the universal rotational body mathematical model, as shown in Figure 1.

cu?i nhà máy

 

Helical Cutting Edge Mathematical Model

The helical cutting edge curve of an integral end milling?cutter can alter the chip flow direction, increase the actual cutting rake angle, and extend the length of the cutting edge involved in cutting simultaneously, thereby improving the surface machining quality of the workpiece and the tool life. Therefore, the design of the cutting edge curve plays a crucial role in the design of end milling?cutters. The cutting edge curve of an integral end milling?cutter mainly consists of two parts: the peripheral cutting edge curve and the bottom cutting edge curve (for ball-end mills).

 

The helical cutting edges of end milling?cutters mainly come in three forms:

1.Constant pitch helical cutting edges, where the helix angle with the generatrix is a constant value, and the helix angle with the axis is also a constant value.

2.Based on the concept of helical motion, the method for establishing the geometric equations of constant pitch helices is discussed.

3.Using the velocity method and according to the theory of generalized helical motion of points and lines on any rotational surface, a generalized helix angle mathematical model is proposed, which relates the tangential velocity of a point undergoing helical motion to the angle between the generatrix of the rotating body, as well as the generalized helical line mathematical model. Furthermore, the mathematical models for constant pitch, constant helix angle, and general helical cutting edge curves on conical, spherical, and planar surfaces are derived, as shown in Figure 2.

 

What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 2

From Figure 2, the general mathematical model for the helical cutting edge can be obtained:

What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 3

where p(x) can be determined based on the shape of the milling cutter’s outer contour, and p(x) takes different values depending on the type of helix:

What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 4

For equal-pitch cutting edges,?P is the pitch, and φ0 is the initial angle.

What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 5

β is the angle between the helix and the generator of the cutter’s rotational body.

The bottom cutting edge curve of a ball-end end milling?cutter mainly includes three forms: straight cutting edge, equal helix angle edge, and orthogonal helical edge (equal pitch edge).

① A straight cutting edge refers to the cutting edge along the axial direction of the cutter’s ball-end portion being in a “straight line” shape. The straight cutting edge has a simple shape and is easy to sharpen, but during machining, it tends to have poor cutting stability due to sudden engagement and disengagement, and the cutting speed at the top of the edge is zero, which can lead to the formation of built-up edge at the top of the cutting edge. Therefore, in actual production, the bottom cutting edge of ball-end end milling?cutters often uses a helical cutting edge, as shown in Figure 3.

What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 6

Based on the first fundamental form of the spherical surface, the equation for the equal helix angle helical cutting edge on the ball-end portion is obtained:

 

What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 7

Where R? is the parameter and β is the helix angle. When the cutting edge curve is at the top of the ball-end mill, i.e., R = R?, the above equation does not hold, and a separate smooth curve that connects to the vertex needs to be designed.

What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 8

An orthogonal helical cutting edge refers to the intersection line between the orthogonal helical surface formed by the straight generatrices always perpendicular to the axis of the mill and the spherical surface. Based on the equation of the spherical surface and the equation of the orthogonal helical surface, the equation for the orthogonal helical cutting edge is obtained:
What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 9

Here, β represents the helix angle of the circumferential cutting edge, θ is the parameter, with 0 ≤ θ ≤ tanβ.

 

Mathematical Model of Radial Section Lines for end milling?Cutters

 

The actual chip flute of a end milling?cutter is produced by the grinding wheel moving in a helical path around the cutter’s axis, resulting in a space helical surface. The shape of the radial section line is influenced by the shape of the grinding wheel, its relative position and posture to the cutter, and the relative motion trajectory, making it difficult to precisely describe the section line shape with a mathematical model.

 

To simplify the calculation, during the parametric modeling of the cutter, the chip flute section line is divided into several parts: the cutting face, the flute bottom, the transition face, and the back face. The cutting face is simplified to a straight line segment, the flute bottom and the transition face are simplified to two arcs, and the back face is simplified to a straight line segment. Among these, the arc representing the flute bottom is tangent to the straight line segment of the cutting face, the core circle, and the transition face. The transition face is tangent to both the arc of the flute bottom and the straight line segment of the back face, as shown in Figure 4.

What is the Three-Dimensional Parametric Design of Cemented Carbide End Mills? 10

 

Research Status of Parametric Design Software for Integral end milling?Cutters

Parametric design software for integral end milling?cutters requires a user-friendly human-machine interface as well as the capability to display and store three-dimensional models of the cutters. Currently, there are mainly two development approaches: secondary development technology based on existing 3D CAD software and development technology based on the OpenGL graphics interface.

By utilizing the secondary development interfaces provided by software such as UG, SolidWorks, CATIA, Pro/Engineer, and AutoCAD, and calling library functions for modeling, transformation, and Boolean operations, the parametric design of end milling?cutters can significantly reduce the programming difficulty of the software system. To date, universities such as Shandong University, Southwest Jiaotong University, Northwestern Polytechnical University, Harbin University of Science and Technology, Xihua University, Northeastern University, and Xiamen University have conducted extensive research on the parametric design of end milling?cutters based on secondary development technology of 3D CAD software.

Parametric Design of Cutters Based on UG Secondary Development Technology

Shandong University has established a parametric design system for solid carbide end milling?cutters based on the grinding and manufacturing process of the cutters. They used UG/Open MenuScript to create system menus, UG/Open UIStyler to create a user interface in the UG style, and UG/Open GRIP along with UG/Open API for secondary development functions to create the three-dimensional solid model of the end milling?cutter. They compiled the program using VC++ and completed the development. Subsequently, they studied the modeling methods for detailed structures such as the tip radius and relief grooves and completed the development of two-dimensional engineering drawings. They also established three-dimensional models for milling cutters with unequal pitch. Northeastern University, based on the theory of helical lines and helical surfaces, completed the parametric design of end milling?cutters and forming cutters for machining chip flutes after classifying and analyzing the characteristics of CNC helical milling cutters. Northwestern Polytechnical University conducted parametric design for indexable cutters and flat-end end milling?cutters. Harbin University of Science and Technology established mathematical models for the helical lines and chip flute section lines of ball-end end milling?cutters and carried out parametric design for integral ball-end end milling?cutters. Xiamen University added a model for relief grooves, achieving the design of tapered ball-end milling cutters.

Parametric Design of Cutters Based on SolidWorks Secondary Development Technology

Xihua University and others, to meet the needs of Zigong Cemented Carbide Co., Ltd., have developed an object-oriented three-dimensional parametric cutter CAD system using SolidWorks as the development platform and VC++ as the development tool. By utilizing SolidWorks API for secondary development functions, combining dynamic link library technology, Oracle database technology, and ADO (ActiveX Data Objects) database connection technology, and based on the cross-sectional model of end milling?cutters, they have achieved parametric design for chip flutes, four-edge ball-end end milling?cutters, and indexable ball-end end milling?cutters.

Parametric Design of Cutters Based on CATIA Secondary Development Technology

Southwest Jiaotong University, with the assistance of CATIA/API functions and OLE Automation technology, has chosen Visual Basic (VB) as the development tool to develop a parametric design system for end milling?cutters. This system can realize parametric design for five major types of end milling?cutters, including ball-end end milling?cutters, conventional end milling?cutters, CNC end milling?cutters, high-speed end milling?cutters, and end mills. It can also achieve parametric modeling of solid blanks, cylindrical teeth, ball teeth, end teeth, transition teeth, and other detailed cutter structures.

Parametric Design of Cutters Based on AutoCAD Secondary Development Technology:

Northeastern University has chosen VB as the development tool for secondary development of AutoCAD, completing the development of standardized CAD/CAPP software. This software uses a method of disassembly and simplification, modularizing the structural features of end milling?cutters, and achieving computer-aided design for titanium alloy machining end milling?cutters through the invocation of various sub-modules.

Parametric Design of Cutters Based on Pro/E Secondary Development Technology

Lanzhou University of Technology has used the Pro/Toolkit tool for secondary development of Pro/E. Based on the mathematical models of the cutting edge curve, peripheral flute surface, peripheral relief surface, relief groove surface, and the main spiral?slot, relief surface, and spiral secondary groove surface of the ball-end end milling?cutter, they have achieved parametric design of the ball-end end milling?cutter by using surface merging, arraying, and solidification techniques. Tianjin University of Technology and Shanghai Jiao Tong University have established a parametric design system for two-tooth ball-end end milling?cutters, which includes design tools for the cutter body, chip flute, peripheral relief angle, end tooth rake angle, standard Gash, and end tooth relief angle.

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 *

久久夜色国产精品亚洲-国产视频一区二区三区免费观看-亚洲一区二区成人在线观看-日韩精品一区二区三区在线视频| 亚洲av一区二区三区av-国产av一区二区三区香蕉-久久超碰免费欧美人妻-九一精品人妻一区二区三区| 亚洲黄色一级二级三级在线观看-成年人手机视频在线观看-都市激情校园春色亚洲一区-九九久久免费视频一区二区三区| 日本厕所偷拍美女尿尿视频-婷婷国产一区综合久久精品-欧美一日韩成人在线视频-四虎精品视频免费在线观看| 亚洲av优女天堂熟女美女动态-激情免费视频一区二区三区-一区二区三区国产日韩av-最新国产内射在线免费看| 天堂av免费资源在线观看-青春草在线视频播放免费观看网站-亚洲精品中文字幕久久桃色-亚洲成人有码免费在线| 一区二区在线观看黑人-久久久精品人妻一区二区三区综合-成人内射国产免费观看-四虎在线免费视频观看| 亚洲欧美日韩另类影院-亚洲一区二区三区精品春色-精品人妻久久一品二品三品-人妻有码av中文字幕久久午夜| 国产黄色带三级在线观看-国产精品色内内在线观看播放-一区二区三区视频在线观看-精品一区三区视频在线观看| 国内自拍偷拍视频91-日本成人熟女一区二区三区-国产l精品国产亚洲区久久-久久精品成人中文字幕| 尤物视频在线观看精品-日韩午夜男女爽爽影院-日本少妇下面好紧水多影片-国产亚洲精品视频在线网| 成年深夜在线观看视频-成人国产av精品在线-av乱亚洲一区二区三区-亚洲精品综合一区二区在线| 成人久久一区二区三区精品-日本伦理在线一区二区三区-全亚洲最大黄色在线网站-国产免费午夜福利片在线| 久久精品国产亚洲av麻豆看片-内射后入高潮在线视频-亚洲精品一区三区三区在线-亚洲乱码一区二区三区视色| 成人深夜视频免费在线观看-国产极品裸体av在线激情网-欧美色区国产日韩亚洲区-中文字幕番号免费观看| 人妻日韩人妻中文字幕-日韩情色中文字幕在线-日韩av大全在线观看-日韩少妇高潮视频免费看| 91九色中文在线播放-日韩中文字幕熟女人妻-成人黄色一级在线观看-日本一区二区三区视频在线| 蜜桃臀欧美日韩国产精品-最近欧美日韩一区二区-亚洲综合成人一区二区三区-免费五十路熟妇在线视频| 亚洲香蕉久久一区二区三区四区-国产夫妻内射一级一片-成人午夜福利片免费观看-一区二区三区四区黄色网| 蜜臀视频在线观看一区二区三区-少妇人妻偷人精品系列-天美传媒国产精品果冻-色综合久久综合欧美综合网| 国产视频深夜在线观看-在线播放亚洲欧洲亚洲-不卡日韩av在线播放-国产午夜视频在线观看| 国产做国产爱免费视频-男人免费视频一区二区在线播放-精品一区二区三区蜜桃麻豆-成年人免费看国产视频| 蜜桃视频大全免费观看-国产高清不卡一区二区-亚洲av综合av东京热三区-无套内射激情国产av| 亚洲综合另类精品小说-国产不卡一区二区三区观看评价-亚洲中文字幕有码道一-一个成人永久免费视频| 69精品人妻一区二区三区蜜桃久-国产粉嫩清纯美女在线观看-国产成人高清视频免费-国产日韩精品一区二区三区四区| 看女人毛茸茸下面视频-日本一区二区黄色高清电影-隔壁人妻偷人中字免费-亚洲中国美女精品久久久| 在线观看91精品国产性-国产中文字幕精品免费-免费日韩毛片在线观看-精品人妻暴躁一区二区三区| 亚洲av午夜福利精品一区二区-久久精品国产亚洲熟女-亚洲综合五月婷婷六月丁香-久久国内精品自在自线91| 精品国产一区二区三区色搞-国产极品尤物精品视频-亚洲中文字幕乱码亚洲-午夜日本福利在线观看| 一本久道热线在线视频-精品人妻在线中文字幕-亚洲av成人av天堂色多多-国产牛奶粉哪个品牌好| 欧美日韩精品视频免费下载-中文字幕一区二区三区伦理-一级特黄大片亚洲高清-午夜欧美日韩精品久久久久| 国产丝袜爆操在线观看-亚洲老熟妇日本五十六十路-亚洲av乱码久久亚洲精品-综合激情四射亚洲激情| 久久久精品国产亚洲av高清涩受-国产精品一区二区三区成人-欧美日韩国产精品视频一区二区三区-大陆美女阴户特写毛片| 黑人精品视频一区二区三区-在线播放免费av大片-在线免费观看日韩精品-日本av在线观看一区二区三区| 青草黄色成人中文视频-国产剧情av在线大学生-日韩av在线一卡二卡三卡-国产成人午夜福利影院| 亚洲欧美日韩久久精品专区-99午夜福利一区二区-亚洲国产毛片一区二区三区-人妻自拍视频在线播放| av成人在线免费观看-亚洲av黄片免费观看-亚洲综合精品天堂夜夜-久久国产精品久久国产精品| 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| 美性中文网美性综合网-亚洲最大黄色网在线观看-自偷精品视频三级自拍-97精品伊人久久大香| 华人精品在线免费观看-国产熟女精品一区二区三区-国产成人午夜视频网址-女女同性女同一区二区三区九色| 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|