• Title/Summary/Keyword: Woven wire 구조물

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CSP 3N 박판재료의 기계적 물성 및 Woven Wire 구조물 인장 시험 기법 개발에 관한 연구

  • 안동규;이상훈;김민수;한길영;정창균;양동열
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2004.05a
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    • pp.53-53
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    • 2004
  • 최근 자동차/항공기 등의 판재나 구조물을 첨단기능성 재료로 제작하여 연료소비량을 감소시키는 동시에 승객의 안정성을 현저히 향상시키는 초경량/고강도/고강성/고내충격성 재료에 대한 연구가 활발히 수행되고 있다. 국내에서는 두개의 금속 박판사이에 3차원 금속 구조체를 대면적에 분포시킨 후, 판재와 구조체를 접합하여 재료의 무게를 현저히 감소시키는 반면 강도/강성/내충격성을 향상시키는 ISB(Internally Structured Bonded)판재 개발에 대한 연구가 시작되고 있다.(중략)

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Optimal design of an Wire-woven Bulk Kagome using taguchi method (다구찌법을 이용한 WBK(Wire-woven Bulk Kagome)의 최적설계)

  • Choi, Ji-Eun;Kang, Ki-Ju
    • Proceedings of the KSME Conference
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    • 2008.11a
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    • pp.13-19
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    • 2008
  • A Wire-woven Bulk Kagome (WBK) is the new truss type cellular metal fabricated by assembling the helical wires in six directions. The WBK seems to be promising with respect to morphology, fabrication cost, and raw materials. In this paper, first, the geometric and material properties are defined as the main design parameters of the WBK considering the fact that the failure of WBK is caused by buckling of truss elements. Taguchi approach was used as statistical design of experiment(DOE) technique for optimizing the design parameters in terms of maximizing the compressive strength. Normalized specific strength is constant regardless of slenderness ratio even if material properties changed, while it increases gradually as the strainhardening coefficient decreases. Compressive strength of WBK dominantly depends on the slenderness ratio rather than one of the wire diameter, the strut length. Specifically the failure of WBK under compression by elastic buckling of struts mainly depended on the slenderness ratio and elastic modulus. However the failure of WBK by plastic failed marginally depended on the slenderness ratio, yield stress, hardening and filler metal area.

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A Study on the Tear Behavior of Woven Fabric with Wire Mesh (매쉬 직물을 이용한 직물의 인열 거동 연구)

  • ;Seung-Yun Lee
    • Proceedings of the Korean Fiber Society Conference
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    • 2003.04a
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    • pp.130-131
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    • 2003
  • 산업용 직물은 다른 건축재료에 비해 유연성이 크고 재료무게에 비해 카버하는 면적이 넓어서 장기적인 고정 건축물이 아닌 경우에 그 이용도가 늘어나고 있다. 이러한 산업용 직물의 주 기능은 예정 사용기간 동안 직물 양면사이의 압력을 견디는 일이 주 부하 모드이며 이 이차원구조를 유지하는 부분은 이 구조를 잡고 있는 부분이다. 그러나 직물의 일부가 파손되어 압력차를 유지하지 못하면 공압을 이용한 건축물의 순간적인 파괴로 연결된다. (중략)

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The Compressive Characteristics of The Convex Type Wire-woven Bulk Kagome Truss PCM (볼록형 와이어 직조 카고메 트러스 PCM의 압축특성평가)

  • Li, Ming-Zhen;Kang, Ki-Ju
    • Proceedings of the KSME Conference
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    • 2008.11a
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    • pp.138-143
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    • 2008
  • Recently, a new periodic cellular metal(PCM) named as Wire wove Bulk Kagome(WBK) was introduced. Based on the shape of tetrahedra composing a WBK, WBKs are classified into two types, namely, concave and convex type. They are easily differentiated by changing the assembling sequence. The effect of geometrical parameters such as the wire diameter, strut length and number of layers on the compressive behavior of concave type WBK has already been investigated. In this work, the similar works were performed with the convex type WBKs. It was shown that the compressive strength of the convex type WBK was quite similar to that of the concave type. The compressive strengths of convex type specimens also depend on the slenderness ratio, but a little different from those of concave type specimens in the detailed behavior. And densification occurs earlier than the concave type WBK.

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Finite Element Simulation of Behavior of WBK Cored Sandwich Panels Subjected to Bending Loads (굽힘하중 하의 벌크형 와이어 직조 카고메 트러스 중간재를 갖는 샌드위치 판재의 기계적 거동)

  • Choi, Ji-Eun;Kang, Ki-Ju
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.33 no.4
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    • pp.353-359
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    • 2009
  • Wire-woven Bulk Kagome (WBK) is a new truss type cellular metal fabricated by systematic assembling of helical wires in six directions. In this work, the experiments of mechanical behaviors of WBK cored sandwich panels subjected to bending load were performed and the results were compared with those by the corresponding analytic solutions. And also, finite element simulations were performed to validate the optimal design according to the analytic solutions. It is found the sandwich panel with WBK core performed excellently in terms of energy absorption and deformation stability after the peak point as well as the load capacity.

An Optimal Design of Sandwich Panels with Wire-woven Bulk Kagome Cores (와이어 직조 카고메 다공질 금속을 심재로 갖는 샌드위치 판재의 최적 설계)

  • Lee, Yong-Hyun;Kang, Ki-Ju
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.32 no.9
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    • pp.782-787
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    • 2008
  • First, the effect of the geometry such as the curved shape of the struts composing the truss structure of WBK is elaborated. Then, analytic solutions for the material properties of WBK and the maximum loads of a WBK-cored sandwich panel under bending are derived. A design optimization with the face sheet thickness and the core height selected as the design variables is presented for given slenderness ratios of the WBK core. Unless the face sheet thickness is limited, the optimal design to give the maximum load per weight is always found at a confluence of three failure modes, namely, face sheet yielding, indentation plastic, and core shear modeB plastic.

Design and Construction of a Loom for Obtaining Ultra-Light Metal Structure (초경량 금속 구조재 직조장치의 설계 및 제작)

  • Kim, Pan-Su;Kang, Ki-Ju
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.34 no.9
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    • pp.1235-1240
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    • 2010
  • Wire-woven Bulk Kagome (WBK) is fabricated by assembling helically formed wires in six directions. To date, WBK samples have been assembled manually. For industrial application, the assembly process must be automated. Furthermore, if WBK is to be fabricated using flexible wires that cannot maintain their helical shape during fabrication, a specialized automatic machine, i.e., a loom needs to be developed. In this work, we designed and constructed a loom for fabricating WBKs using flexible wires. This loom is operated by one rotation of the upper plate, two translations of the insertion device, and insertion of wires. So-called "comb devices" are placed between multiple layers of Kagome nets to prevent the wires that are already in place from getting entangled with those that are being inserted. This loom can be also used to fabricate semi-WBKs composed of helically formed wires and rigid straight wires.