• Title/Summary/Keyword: Launchers Analysis

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Fabrication of Lightweight Sandwich Structural Components with Superplastic Forming/Diffusion Bonding Technology (초소성/확산접합 기술을 이용한 티타늄 샌드위치 경량구조물 제작)

  • Lee, Ho-Sung;Yoon, Jong-Hoon;Yi, Yeong-Moo;Shin, Dong Hyuk
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.35 no.9
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    • pp.778-782
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    • 2007
  • In the present study, design and forming process of fabricating titianium lightweight components are developed with applicaton of superplastic forming and diffusion bonding technology. SPF/DB(Superplastic forming/Diffusion bonding) technology is one of the advanced technologies to reduce production cost and weight and currently applied to aircrafts and space launchers in foreign countries. The present study constructs an analysis model to predict superplastic forming behavior of titanium alloy, which is well known for its resistance to deform. The experimental results show the forming of titanium lightweight sandwich structure is successfully performed from 3 sheets of Ti-6Al-4V. The results demonstrate that the developed technology to process design of SPF/DB by the finite element method can be applied to various types of components.

On Reducing Systemic Failure of Safety-Critical Systems by DSM-based Systematic Design of Interfaces (안전중시 시스템에서 DSM 기반 인터페이스 설계를 통한 시스템 오류 감축에 관한 연구)

  • Jung, Ho-Jeon;Lee, Jae-Chon
    • Journal of the Korea Safety Management & Science
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    • v.17 no.1
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    • pp.93-101
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    • 2015
  • The demand from customers on better products and systems seems to be ever increasing. To meet the demand, the systems are becoming more and more complicated in terms of both scale and functionality, thereby requiring enormous effort in the development. One bright spot of this trend is that such effort has been the driving forces of the remarkable advancement in modern systems development. On the other hand, safety issues appear to be critical in many large-scale systems such as transportation and weapon systems including high-speed trains, airplanes, ships, missiles/rockets launchers, and so on. Such systems turn out to be prone to a variety of faults and thus the resultant failure can cause disastrous accidents. For the reason, they can be referred to as safety-critical systems. The systems failure can be attributed to either random or systemic factors (or sometimes both). The objective of this paper is on how to reduce potential systemic failure in safety critical systems. To do so, a proper system design is pursued to minimize the risk of systemic failure. A focus is placed on the fact that complex systems have a lot of complicated interfaces among the system elements. To effectively handle the sources of hazards at the complicated interfaces and resultant failure, a method is developed by utilizing a design structure matrix. As a case study, the developed method is applied in the design of train control systems.