MES Lab. - Materials, Mechanical, Automation and Industrial Engineering, CAD CAM & Design
Go Back   MES Lab. (Be Professional!) - Diễn đàn của Cộng đồng Kỹ thuật Vật liệu - Cơ khí - Tự động hóa - Kỹ thuật Công nghiệp Việt Nam > :::: CƠ KHÍ - TỰ ĐỘNG HÓA - CÔNG NGHIỆP :::: > ..:: CAD / CAM / CNC / CAE ::.. > Các phần mềm khác

Trả lời
 
Ðiều Chỉnh Xếp Bài
Old 31-08-2009, 12:56 PM   #1
KHAI1980
Hội viên
 
Tham gia ngày: Sep 2008
Bài gởi: 33   (View Stats)
Đã cảm ơn: 1
Được cảm ơn 44 lần trong 17 Bài viết
KHAI1980 is on a distinguished road
Chưa có đánh giá  0 score     
Default Sescoi WorkNC G3 19.10

CATIA File Conversion?
CATIA V5 and V6 can directly use the CATIA V4 models, but changes in the CATIA data structure requires data conversion from CATIA V4 to V5/V6. This is due to both a change in geometric kernel between CATIA V4 and CATIA V5, and changes in the CAD data structure between CATIA V5 and CATIA V6 - wikipedia.org
Sescoi WorkNC G3 19.10
Posted By : joshin | Date : 30 Aug 2009 1654 | Comments : 1
Sescoi WorkNC G3 19.10

Sescoi WorkNC G3 19.10
Windows | 2008 | 530 MB | Multilingual
http://pixhost.ws/pictures/995076
WorkNC CAM/CAD is the premier automatic toolpath generation software for surface or solid models in mold, die and tooling businesses.

WorkNC is a complementary CAM software product which enhances all design and manufacturing systems by providing amazing improvements in automatic features, reliability and ease of use.

The automatic features of WorkNC allow novice CAM operators to automatically set up toolpaths in just a few minutes. Experienced users of all CAM systems quickly appreciate the profitable and unique benefits WorkNC provides. Used either directly on the shop floor or in your CAD room, WorkNC's reliability and quality are unsurpassed!

WorkNC G3 stands for 'third generation' and signifies the arrival of the software's third completely new user interface along with expanded and enhanced functionality.

Famed for its easy and quick programming, WorkNC delivers considerable time savings compared to many other CAM systems.

http://rapidshare.com/files/27333276...9_10.part1.rar
http://rapidshare.com/files/27330298...9_10.part2.rar
http://rapidshare.com/files/27331699...9_10.part3.rar
http://rapidshare.com/files/27336493...9_10.part4.rar
http://rapidshare.com/files/27338499...9_10.part5.rar
http://rapidshare.com/files/27340590...9_10.part6.rar

SolidWorks - History & Market
SolidWorks was introduced in 1995 as a competitor to CAD programs such as Pro/ENGINEER, I-DEAS, Unigraphics, and CATIA. SolidWorks Corporation was founded in 1993 by Jon Hirschtick, who recruited a team of engineers to build a company that developed 3D CAD software, with its headquarters at Concord, Massachusetts, and released its first product, SolidWorks 95, in 1995. In 1997 Dassault Systèmes, best known for its CATIA CAD software, acquired the company and currently owns 100% of its shares. SolidWorks was headed by John McEleney from 2001 to July 2007, and is now headed by Jeff Ray. Solidworks Corp. has sold over a million licenses of Solidworks worldwide. The Sheffield Telegraph comments that Solidworks is the world's most popular CAD software. Its user base ranges from individuals to large companies, and covers a very wide cross-section of manufacturing market segments. Commercial sales are made through an indirect channel, which includes dealers and partners throughout the world. Directly competitive products to SolidWorks include Pro/ENGINEER, Solid Edge, and Autodesk Inventor.
www.meslab.org
KHAI1980 is offline   Trả Lời Với Trích Dẫn
Những người đã CẢM ƠN KHAI1980 vì bài viết hữu ích:
changtraithaibinh_hd (30-01-2010)
Trả lời

Bookmarks


Trao đổi Logo & Liên kết - xin liên hệ: info@meslab.org . Hotline: 097 969 2810
Ðang đọc: 1 (0 thành viên và 1 khách)
 
Result Thống Kê - MES Lab. (Be Professional!) - Diễn đàn của Cộng đồng Kỹ thuật Vật liệu - Cơ khí - Tự động hóa - Kỹ thuật Công nghiệp Việt Nam
All Forums | Bảng Tin | Hiệp Hội | Vật Liệu | Cơ Khí | CAD CAM | Sinh Viên | Việc Làm
Please wait...
Please wait...
Ðiều Chỉnh
Xếp Bài

Quyền Hạn Của Bạn
You may not post new threads
You may not post replies
You may not post attachments
You may not edit your posts

BB code is Mở
Smilies đang Mở
[IMG] đang Mở
HTML đang Tắt

Chuyển đến

Chủ đề giống nhau
Ðề tài Người Gởi Chuyên mục Trả lời Bài mới
Hỏi về WorkNC? CHUDINHTHI Lập trình CNC 15 06-07-2009 10:24 AM
Ai biết về worknc? CHUDINHTHI Các phần mềm khác 1 02-05-2009 10:30 PM
có bác nào có tài liệu hướng dẫn dùng worknc? CHUDINHTHI MasterCAM 0 24-04-2009 08:59 PM
Ai biết worknc 17,03? CHUDINHTHI MasterCAM 0 04-04-2009 04:31 PM

free counters

Múi giờ GMT. Hiện tại là 08:57 PM.
Powered by: vBulletin v3.x.x Copyright ©2000-2010, Jelsoft Enterprises Ltd.
vBCredits v1.4 Copyright ©2007 - 2008, PixelFX Studios
Bản quyền nội dung thuộc MES Lab. Vui lòng ghi rõ nguồn MES LAB. và LINK đến bài trích dẫn

Scroll to read all of the content - For Students who want to learn Engineering English Site Keywords in English:
machine, cnc, tools, engineering, cad cam, solidworks, pro engineer, catia, mastercam, inventor, mold, cae, materials, heat treat, mechanics, alloys, materials, steels, industry, machining, casting, machine, model, 3d, stl, scanner, laser, ptc, catia, cimatron, visi, solidcam, mold, die, jobs, software, metallurgy, iscar, mori seiki, mazak, cutting, edm, cae, sodick, automobile, sandvik, shipbuilding, aerospace, technique, experiment, fixture, valve, fluid, airplane, lathe, milling, automation, sensor, robot, industry, design, product, factory, equipment, welding, weld, machine element, pipe, astm, aisi, rfid, steel, standard, sae, jis, din, gost, gb, afnor, iron, metal, processing, forming, shaping, rolling, punching, drawing, chill, foundry, crucible, furnace, materials, ferrous, data, ceramic, polymer, composite, organic, semiconductor, superconductor, english, free, grammar, nano, biomaterials, manufacture, manufacturing,a ssembly, instrument, measurement, QC, QA, quality control, quality assurance, ergonomic, Vericut, Artcam, delcam, unigraphic, nx, pdm, plm, npd, siemens, spaceclaim, vericut, autocad, development, research, scholarship, autodesk, mechatronics, ebooks, free, download, career, recruitment, mechanical, study, student, solutions, services, maintenance, expert, scientist, engineer, surface, dfx, dwg, bearing, meter, plant, component, market
This Month's reference reading for better English skills:
Mechanical Engineering:
Many mechanical engineering companies, especially those in industrialized nations, have begun to incorporate computer-aided engineering (CAE) programs into their existing design and analysis processes, including 2D and 3D solid modeling computer-aided design (CAD). This method has many benefits, including easier and more exhaustive visualization of products, the ability to create virtual assemblies of parts, and the ease of use in designing mating interfaces and tolerances. Other CAE programs commonly used by mechanical engineers include product lifecycle management (PLM) tools and analysis tools used to perform complex simulations. Analysis tools may be used to predict product response to expected loads, including fatigue life and manufacturability. These tools include finite element analysis (FEA), computational fluid dynamics (CFD), and computer-aided manufacturing (CAM). Using CAE programs, a mechanical design team can quickly and cheaply iterate the design process to develop a product that better meets cost, performance, and other constraints. No physical prototype need be created until the design nears completion, allowing hundreds or thousands of designs to be evaluated, instead of a relative few. In addition, CAE analysis programs can model complicated physical phenomena which cannot be solved by hand, such as viscoelasticity, complex contact between mating parts, or non-Newtonian flows As mechanical engineering begins to merge with other disciplines, as seen in mechatronics, multidisciplinary design optimization (MDO) is being used with other CAE programs to automate and improve the iterative design process. MDO tools wrap around existing CAE processes, allowing product evaluation to continue even after the analyst goes home for the day. They also utilize sophisticated optimization algorithms to more intelligently explore possible designs, often finding better, innovative solutions to difficult multidisciplinary design problems. Computer Aided Design - CAD:
Computer-Aided Design is one of the many tools used by engineers and designers and is used in many ways depending on the profession of the user and the type of software in question. There are several different types of CAD. Each of these different types of CAD systems require the operator to think differently about how he or she will use them and he or she must design their virtual components in a different manner for each. There are many producers of the lower-end 2D systems, including a number of free and open source programs. These provide an approach to the drawing process without all the fuss over scale and placement on the drawing sheet that accompanied hand drafting, since these can be adjusted as required during the creation of the final draft. 3D wireframe is basically an extension of 2D drafting. Each line has to be manually inserted into the drawing. The final product has no mass properties associated with it and cannot have features directly added to it, such as holes. The operator approaches these in a similar fashion to the 2D systems, although many 3D systems allow using the wireframe model to make the final engineering drawing views. 3D "dumb" solids (programs incorporating this technology include AutoCAD and Cadkey 19) are created in a way analogous to manipulations of real world objects. Basic three-dimensional geometric forms (prisms, cylinders, spheres, and so on) have solid volumes added or subtracted from them, as if assembling or cutting real-world objects. Two-dimensional projected views can easily be generated from the models. Basic 3D solids don't usually include tools to easily allow motion of components, set limits to their motion, or identify interference between components. 3D parametric solid modeling require the operator to use what is referred to as "design intent". The objects and features created are adjustable. Any future modifications will be simple, difficult, or nearly impossible, depending on how the original part was created. One must think of this as being a "perfect world" representation of the component. If a feature was intended to be located from the center of the part, the operator needs to locate it from the center of the model, not, perhaps, from a more convenient edge or an arbitrary point, as he could when using "dumb" solids. Parametric solids require the operator to consider the consequences of his actions carefully. Some software packages provide the ability to edit parametric and non-parametric geometry without the need to understand or undo the design intent history of the geometry by use of direct modeling functionality. This ability may also include the additional ability to infer the correct relationships between selected geometry (e.g., tangency, concentricity) which makes the editing process less time and labor intensive while still freeing the engineer from the burden of understanding the model’s design intent history. These kind of non history based systems are called Explicit Modellers. The first Explicit Modeling system was introduced to the world at the end of 80's by Hewlett-Packard under the name SolidDesigner. This CAD solution, which released many later versions, is now sold by PTC as "CoCreate Modeling" Draft views are able to be generated easily from the models. Assemblies usually incorporate tools to represent the motions of components, set their limits, and identify interference. The tool kits available for these systems are ever increasing; including 3D piping and injection mold designing packages. Mid range software are integrating parametric solids more easily to the end user: integrating more intuitive functions (SketchUp), using the best of both 3D dumb solids and parametric characteristics (VectorWorks), making very real-view scenes in relative few steps (Cinema4D) or offering all-in-one (form•Z). Top end systems offer the capabilities to incorporate more organic, aesthetics and ergonomic features into designs (Catia, GenerativeComponents). Freeform surface modelling is often combined with solids to allow the designer to create products that fit the human form and visual requirements as well as they interface with the machine. Modern CNC Machines:
Numerical control (NC) refers to the automation of machine tools that are operated by abstractly programmed commands encoded on a storage medium, as opposed to manually controlled via handwheels or levers, or mechanically automated via cams alone. The first NC machines were built in the 1940s and '50s, based on existing tools that were modified with motors that moved the controls to follow points fed into the system on paper tape. These early servomechanisms were rapidly augmented with analog and digital computers, creating the modern computed numerically controlled (CNC) machine tools that have revolutionized the design process. In modern CNC systems, end-to-end component design is highly automated using CAD/CAM programs. The programs produce a computer file that is interpreted to extract the commands needed to operate a particular machine via a post processor, and then loaded into the CNC machines for production. Since any particular component might require the use of a number of different tools—drills, saws, etc.—modern machines often combine multiple tools into a single "cell". In other cases, a number of different machines are used with an external controller and human or robotic operators that move the component from machine to machine. In either case, the complex series of steps needed to produce any part is highly automated and produces a part that closely matches the original CAD design.
Source: Wikipedia