In this paper, we address the issue of temperature uniformity in high-power antenna systems by proposing and analyzing various design strategies. Specifically, when there is significant spatial freedom in the internal coolant pathways of the cooling plate, a counterflow approach is implemented to achieve temperature uniformity. Conversely, in scenarios where spatial constraints exist, a differential fin area design is proposed to effectively manage heat distribution. Additionally, in cases where the design of coolant pathways is restricted and fin design is not feasible, we suggest minimizing temperature variations by adjusting the thermal conductivity of the carriers located beneath the heat-generating components. This comprehensive approach aims to enhance the thermal management of high-power antenna systems, ensuring improved system stability and performance.
This paper is concerned with the numerical analysis of dynamic response of floating offshore wind turbine subject to underwater explosion using an effective non-reflecting technique. An infinite sea water domain was truncated into a finite domain, and the non-reflecting technique called the perfectly matched layer(PML) was applied to the boundary of truncated finite domain to absorb the inherent reflection of out-going impact wave at the boundary. The generalized transport equations that govern the inviscid compressible water flow was split into three PML equations by introducing the direction-wise absorption coefficients and state variables. The fluid-structure interaction problem that is composed of the wind turbine and the sea water flow was solved by the iterative coupled Eulerian FVM and Largangian FEM. And, the explosion-induced hydrodynamic pressure was calculated by JWL(Jones-Wilkins-Lee) equation of state. Through the numerical experiment, the hydrodynamic pressure and the structural dynamic response were investigated. It has been confirmed that the case using PML technique provides more reliable numerical results than the case without using PML technique.
보 구조물의 고유치 해석의 경우 보 이론에 근거한 기존의 다양한 방법들을 통해 효율적이고 수월하게 수행이 가능하다. 하지만 보의 단면이 두 가지 이상의 복합재질로 구성되어 있을 경우 전통적인 보 이론을 적용하기 위해서는 단일의 등가 물성을 산출해야할 필요가 있다. 본 논문에서는 복합단면 보 구조물의 효율적인 유한요소 고유치 해석을 위해 등가의 물성을 산출하였다. 이론 연구를 토대로 개발한 연구용 프로그램으로 대표적인 보 구조물에 대한 유한요소 고유치 해석을 수행하였으며, 해석결과에 대한 신뢰성 검증을 위해 상용 소프트웨어인 ANSYS의 3차원 솔리드 모델의 해석결과와 비교하였다.