立体光照成型的注塑模具工艺的综合模拟毕业论文外文翻译

上传人:s9****2 文档编号:469787893 上传时间:2023-09-26 格式:DOC 页数:30 大小:481.52KB
返回 下载 相关 举报
立体光照成型的注塑模具工艺的综合模拟毕业论文外文翻译_第1页
第1页 / 共30页
立体光照成型的注塑模具工艺的综合模拟毕业论文外文翻译_第2页
第2页 / 共30页
立体光照成型的注塑模具工艺的综合模拟毕业论文外文翻译_第3页
第3页 / 共30页
立体光照成型的注塑模具工艺的综合模拟毕业论文外文翻译_第4页
第4页 / 共30页
立体光照成型的注塑模具工艺的综合模拟毕业论文外文翻译_第5页
第5页 / 共30页
点击查看更多>>
资源描述

《立体光照成型的注塑模具工艺的综合模拟毕业论文外文翻译》由会员分享,可在线阅读,更多相关《立体光照成型的注塑模具工艺的综合模拟毕业论文外文翻译(30页珍藏版)》请在金锄头文库上搜索。

1、Integrated simulation of the injection molding process with stereolithography moldsAbstractFunctional parts are needed for design verication testing, eld trials, customer evaluation, and production planning. By eliminating multiple steps, the creation of the injection mold directly by a rapid protot

2、yping (RP) process holds the best promise of reducing the time and cost needed to mold low-volume quantities of parts. The potential of this integration of injection molding with RP has been demonstrated many times. What is missing is the fundamental understanding of how the modications to the mold

3、material and RP manufacturing process impact both the mold design and the injection molding process. In addition, numerical simulation techniques have now become helpful tools of mold designers and process engineers for traditional injection molding. But all current simulation packages for conventio

4、nal injection molding are no longer applicable to this new type of injection molds, mainly because the property of the mold material changes greatly. In this paper, an integrated approach to accomplish a numerical simulation of injection molding into rapid-prototyped molds is established and a corre

5、sponding simulation system is developed. Comparisons with experimental results are employed for verication, which show that the present scheme is well suited to handle RP fabricated stereolithography (SL) molds. Keywords Injection molding Numerical simulation Rapid prototyping 1 IntroductionIn injec

6、tion molding, the polymer melt at high temperature is injected into the mold under high pressure 1. Thus, the mold material needs to have thermal and mechanical properties capable of withstanding the temperatures and pressures of the molding cycle. The focus of many studies has been to create the in

7、jection mold directly by a rapid prototyping (RP) process. By eliminating multiple steps, this method of tooling holds the best promise of reducing the time and cost needed to create low-volume quantities of parts in a production material. The potential of integrating injection molding with RP techn

8、ologies has been demonstrated many times. The properties of RP molds are very different from those of traditional metal molds. The key differences are the properties of thermal conductivity and elastic modulus (rigidity). For example, the polymers used in RP-fabricated stereolithography (SL) molds h

9、ave a thermal conductivity that is less than one thousandth that of an aluminum tool. In using RP technologies to create molds, the entire mold design and injection-molding process parameters need to be modied and optimized from traditional methodologies due to the completely different tool material

10、. However, there is still not a fundamental understanding of how the modications to the mold tooling method and material impact both the mold design and the injection molding process parameters. One cannot obtain reasonable results by simply changing a few material properties in current models. Also

11、, using traditional approaches when making actual parts may be generating sub-optimal results. So there is a dire need to study the interaction between the rapid tooling (RT) process and material and injection molding, so as to establish the mold design criteria and techniques for an RT-oriented inj

12、ection molding process. In addition, computer simulation is an effective approach for predicting the quality of molded parts. Commercially available simulation packages of the traditional injection molding process have now become routine tools of the mold designer and process engineer 2. Unfortunate

13、ly, current simulation programs for conventional injection molding are no longer applicable to RP molds, because of the dramatically dissimilar tool material. For instance, in using the existing simulation software with aluminum and SL molds and comparing with experimental results, though the simula

14、tion values of part distortion are reasonable for the aluminum mold, results are unacceptable, with the error exceeding 50%. The distortion during injection molding is due to shrinkage and warpage of the plastic part, as well as the mold. For ordinarily molds, the main factor is the shrinkage and wa

15、rpage of the plastic part, which is modeled accurately in current simulations. But for RP molds, the distortion of the mold has potentially more inuence, which have been neglected in current models. For instance, 3 used a simple three-step simulation process to consider the mold distortion, which ha

16、d too much deviation. In this paper, based on the above analysis, a new simulation system for RP molds is developed. The proposed system focuses on predicting part distortion, which is dominating defect in RP-molded parts. The developed simulation can be applied as an evaluation tool for RP mold design and process optimization. Our simulation system is veried by an experimental example.Although many materials are available for use in RP te

展开阅读全文
相关资源
相关搜索

当前位置:首页 > 资格认证/考试 > 自考

电脑版 |金锄头文库版权所有
经营许可证:蜀ICP备13022795号 | 川公网安备 51140202000112号