威尼斯人娱乐城-威尼斯人娱乐平台开户_百家乐园百乐彩_全讯网25900.com (中国)·官方网站

搜索
學術
講座

美國伊利諾伊大學 Caleb Brooks教授學術講座

2024.03.07 瀏覽量:

Development of interfacial area transport for closure of the two-fluid model: past, present, and future

主講人 : Caleb Brooks

The two-fluid model has long been the backbone of thermal hydraulics calculations for the nuclear power industry and increasingly relied upon for determination of safety margin, course of accident progression, and design of new reactor concepts and safety systems. It is important to provide an accurate constitutive relation for the interfacial area concentration to solve the two-fluid model. The implementation of the interfacial area transport equation into thermal-hydraulic system analysis codes has been recommended to improve prediction capability and solve current shortcomings. These shortcomings include inability to simulate the dynamic changes in interfacial structure across flow regimes and in developing flow, significant compound errors stemming from the two-step flow regime  d method, possible numerical oscillation, and limited applicable range of interfacial area correlations. The interfacial area transport equation can replace the traditional flow regime maps and regime transition by mechanistically predicting the changes in the two-phase flow structure through modeling the effects of the boundary conditions and flow development. This presentation will detail the development of the Interfacial Area Transport Equation from a historical perspective and provide the road map for future work.



主講人簡介:

Dr. Caleb Brooks is an associate professor in the Nuclear, Plasma, and Radiological Engineering Department at the University of Illinois Urbana-Champaign and a Donald Biggar Willett Faculty Scholar Awardee. He holds B.S. and Ph.D. degrees in nuclear engineering from Purdue University and has been a member of the UIUC faculty since 2014. As the Director of the Illinois Microreactor RD&D Center, his work is focused on enabling and expanding safe, peaceful uses of nuclear power. Current research activities in this Center include microreactor modeling and simulation, siting analysis, market analysis, instrumentation, operations and reactor control, licensing, and policy. Beyond his work in the Center, Dr. Brooks is also the director of the Multiphase Thermo-fluid Dynamics Lab (MTDL) which specializes in thermo-fluid dynamics of nuclear systems and reactor flows, and hybrid energy approaches for existing and future power systems. He has received the thermal-hydraulics division and society-wide young member research awards from the Atomic Energy Society of Japan, and the Landis Young Member Engineering Achievement Award from the American Nuclear Society.


編輯:曹蔚

責編:韋麗

赌百家乐官网心里技巧| 菲律宾百家乐官网太阳城| 新全讯网3344555| 百家乐官网注册开户送现金| 百家乐官网下对子的概率| 百家乐官网发牌的介绍| 投真钱百家乐必输吗| 玩百家乐官网新太阳城| 大发888娱乐城888 bg| 网络百家乐的破解| 娱乐城开户彩金| 澳门百家乐官网娱乐城网址| 百家乐变牌桌| 天祝| 最好的百家乐好评平台都有哪些 | 尊龙百家乐官网娱乐场开户注册 | 金宝博百家乐游戏| 金臂百家乐开户送彩金| 大丰收百家乐官网的玩法技巧和规则| 同乐城备用| 四方百家乐的玩法技巧和规则| 万达百家乐官网娱乐城| 澳门赌百家乐官网心法| 大发888注册优惠代码| 百家乐官网免费赌博软件| 棋牌游戏开发商| 24山度数| 百家乐官网正负计| 玩百家乐官网678娱乐城| 杭锦后旗| 全讯网321| 娱乐百家乐的玩法技巧和规则| 打百家乐官网的技术| 奇博国际娱乐网| 我的做生意财位| 网上百家乐官网哪家较安全| 连环百家乐官网怎么玩| 博彩百家乐官网龙虎| 祁门县| 大发888线上投注| 大发888官网df888|