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課程大綱
 
  • MOFAT是一個有限元程序,模擬多相(水、油和氣)流動和多五種非惰性化學物質的運輸。MOFAT模擬三種流體相系統中輕質或致密有機液體的流動。MOFAT將動態或被動氣體模擬為完整的三項流動問題。可通過在變飽和的多孔介質中僅模擬水流,油水流或水 - 油 - 氣流。MOFAT通過僅針對壓力和飽和度超過規定公差的相位求解流動方向,實現了高度的計算效率。因此,如果NAPL不存在或存在殘余飽和度,則MOFAT將局部消除那些流動方程。
  • ?
  • MOFAT分析水中的對流 - 分散運輸,NAPL,通過假定流體相和固相之間的局部平衡或非平衡分配來確定氣相。MOFAT考慮了相間質量傳遞和相密度的成分依賴性。使用了對土壤毛細按壓力關系的簡明但準確的描述,其確保了單相、兩相和三相條件之間的自然連續性。用戶可以使用估算土壤性SOILPARA。MOFAT for Windows包括一個圖形預處理器,網絡編輯器和帶有在線幫助的后處理器。
  • MOFAT is a finite element program that simulates multiphase (water, oil and gas) flow and transport of up to five non-inert chemical species. MOFAT models flow of light or dense organic liquids in three fluid phase systems. MOFAT simulates dynamic or passive gas as a full three-phase flow problem. Model water flow only, oil-water flow, or water-oil-gas flow in variably-saturated porous media. MOFAT achieves a high degree of computational efficiency by solving flow equations only for phases that are undergoing changes in pressures and saturations above specified tolerances. Therefore, if NAPL is absent or exists at a residual saturation, MOFAT will locally eliminate those flow equations. MOFAT analyzes convective-dispersive transport in water, NAPL, and gas phases by assuming local equilibrium or nonequilibrium partitioning among the fluid and solid phases. MOFAT considers interphase mass transfer and compositional dependence of phase densities. A concise but accurate description of soil capillary pressure relations is used which assures natural continuity between single-phase, two-phase and three-phase conditions. The user can estimate soil properties using SOILPARA . MOFAT for Windows includes a graphical preprocessor, mesh editor and postprocessor with on-line help.
  • MOFAT for Windows includes a graphical pre-processor, Mesh Editor and post-processor with on-line help.
  • Simulate multiphase (water, oil and gas) flow and transport of up to five non-inert chemical species in MOFAT. Model flow of light or dense organic liquids in three fluid phase systems. Simulate dynamic or passive gas as a full three-phase flow problem. Model water flow only, oil-water flow, or water-oil-gas flow in variably-saturated porous media. MOFAT achieves a high degree of computational efficiency by solving flow equations at each node (on the finite-element mesh) only for phases that are undergoing changes in pressures and saturations above specified tolerances using a new adaptive solution domain method. Therefore, if NAPL is absent or exists at a residual saturation, MOFAT will locally eliminate those flow equations. MOFAT analyzes convective-dispersive transport in water, NAPL, and gas phases by assuming local equilibrium or nonequilibrium partitioning among the fluid and solid phases. MOFAT considers interphase mass transfer and compositional dependence of phase densities. A concise but accurate description of soil capillary pressure relations is used which assures natural continuity between single-phase, two-phase and three-phase conditions. The user can estimate soil properties using SOILPARA.
  • MOFAT FEATURES
  • -Simulate multiphase transport of up to five non-inert chemical species.
  • -Model flow of light or dense organic liquids in three fluid phase systems.
  • -Solve flow equations for phases exhibiting transient behavior using the ASD method.
  • -Simulate dynamic or passive gas as a full three-phase flow problem.
  • -Use a three-phase van Genuchten model for saturation-pressure-permeability relations.
  • -Handle flux type, specified head, specified concentration or mixed type boundary conditions.
  • -Consider hysteresis in oil permeability due to fluid entrapment.
  • -Model water flow only, coupled oil-water flow, or water-oil-gas flow.
  • MOFAT TECHNICAL INFORMATION
  • This section is extracted from the EPA Document EPA/600/2-91/020 May 1991:
  • MOFAT: A TWO-DIMENSIONAL FINITE ELEMENT PROGRAM FOR MULTIPHASE FLOW AND MULTICOMPONENT TRANSPORT
  • ABSTRACT
  • This report describes a two-dimensional finite element-model for coupled multiphase flow and multicomponent transport in planar or radially-symmetric vertical sections. Flow and transport of three fluid phases - water, nonaqueous phase liquid (NAPL) and gas - is considered by the program which also handles cases in which gas and/or NAPL phases are absent in part or all of the domain at any given time. The program will simulate flow only or coupled flow and transport. The flow module can be used to analyze two-phase flow of water and NAPL in a system with gas present but at constant pressure or explicit three-phase flow of water, NAPL and gas at variable pressure. The transport module can handle up to five components which partition among water, NAPL, gas and solid phases assuming either local equilibrium interphase mass transfer or first-order kinetically controlled mass transfer. The governing equations are solved using an efficient upstream-weighted finite element scheme. Required input for flow analyses consists of initial conditions, soil hydraulic properties, fluid properties, time integration parameters, boundary condition data and mesh geometry. Three-phase permeability-saturation-capillary pressure relations are defined by an extension of the van Genuchten model which considers effects of oil entrapment during periods of water imbibition. For transport analyses, additional input data are porous media dispersivities, initial water phase concentrations, equilibrium partition coefficients, component densities, diffusion coefficients, first-order decay coefficients, mass transfer coefficients (for nonequilibrium analyses) and boundary condition data. Time-dependent boundary conditions for the flow analysis may involve user-specified phase heads at nodes or phase fluxes along a boundary segment with zero flux as the default condition. For transport analyses, initial conditions are specified in terms of equilibrium water phase concentrations of each partitionable component. Time-dependent boundary conditions may be stipulated as equilibrium water phase concentrations in the porous medium as prescribed fluxes defined in terms of a specified concentration in the influent liquid or with zero dispersive flux specified. Program output consists of basic information on input parameters, mesh details and initial conditions plus pressure heads, saturations and velocities for each phase at every node for specified output intervals. For transport analyses, the phase concentrations at each node are output at each printout interval.
  • MOFAT WINDOWS INTERFACE
  • What is the MOFAT Pre-processor?
  • The MOFAT pre-processor was designed to write data files and store data for MOFAT numerical model runs. The pre-processor works in concert with the Mesh Editor and with the post-processor to make a complete graphical interface to the US EPA's Multiphase Organic Flow and Transport simulator. There are four distinct programs in MOFAT: the MOFAT numerical model, the MOFAT Pre-processor, the Mesh Editor, and the Post-processor. Each rely on one another for data input and output. For instance, the Mesh Editor is a dumb program that doesn't care whether it is working with MOFAT, or with BIOF&T, MOVER or MARS. It simply reads in a template file that lets it know what associations (for example, soil types, boundary conditions, etc.) are legal for MOFAT and what associations have been entered in the pre-processor for that mesh file. This arrangement allows for development of the Mesh Editor to include more features in the future without disturbing the main MOFAT program.
  • The MOFAT Pre-processor allows for entry of Control Parameters (for example, whether or not transport will be solved for in the run), Initial Conditions (initial heads of water and oil), Species Properties for up to five species, Fluid Properties, Transport Properties, Boundary Conditions, and Material Properties for up to ten soils. Many values entered in the pre-processor are used in the Mesh Editor. Values like non-uniform water heads are defined in the pre-processor, then later assigned to nodes in the Mesh Editor. Material Properties, Boundary Conditions, non-uniform oil heads, and individual node printouts are all assigned to nodes or edges in the Mesh Editor.
  • The MOFAT Pre-processor also has a run module for writing input data files and executing the MOFAT numerical model. It is important to understand that the pre-processor does not read MOFAT numerical model data files, it only writes them. The pre-processor and Mesh Editor use text files to save project data to disk and to open projects. After a data file for the numerical models has been written, you can change individual control parameters but these changes will not be reflected in the pre-processor.
  • The MOFAT Pre-processor Interface
  • After clicking on the MOFAT pre-processor for the first time, a setup notebook will appear on the screen. This notebook acts as a binder for all MOFAT data files, for links to the Mesh Editor and a project mesh, for writing input files and running the numerical model, and for cue cards and additional help. This notebook is available at any time by selecting Tools|Setup from the main menu or Tools|Runner. To prevent this notebook from automatically displaying every time the pre-processor is run, click off the Show Again check box on the Cue Cards page.
  • Note: all variable names like ITRN are in capital letters and match exactly the names used in the MOFAT FORTRAN source code.
  • The MOFAT pre-processor runs under Windows 3.X, Windows 95 and Windows NT. Currently all MOFAT programs are 16-bit, so there is no speed or multitasking advantage to running the programs under a 32-bit operating system. For most problems, the pre-processor will run well under 4 MB of RAM. When dealing with large finite element meshes, you will find that reading and writing files, and working with the Mesh Editor will greatly slow down under 4 MB of RAM. Also, the numerical model will not run under 4 MB of RAM for larger problems.
  • The MOFAT pre-processor uses a commonly-used tabbed notebook interface to allow quick editing of input files. The main program has two sets of tabs, one along the bottom which separates major sections of the interface, and, on some of the large notebook pages, tabs along the top that separate subsections to make the most use of available screen space. For example, clicking on the bottom tab "Boundary Schedules" takes you to the boundary schedule notebook. Here there is a tabbed notebook for editing type 1 and type 2 boundary schedules.
  • MOFAT for Windows does not have a pre-processor checklist or linear approach for a user to step through each necessary data input value. MOFAT starts up with default values selected for logic switches (for example, ITRN - solve for transport is default set to off), but data values are set to zero (for example, TH - time weighting factor). The MOFAT numerical model will not run if these data values are not input by the user. While the pre-processor will check to be sure that at least one soil type has been entered before running the numerical model, it will not check control parameter data values. While this method may lead to some misunderstanding for the beginning modeler, most who use the preprocessor more than a few times will appreciate not having dialog boxes pop up every time they don't want to enter a value for a variable.
  • Opening and Saving Projects in MOFAT
  • A MOFAT project is similar to a multi-table database. Data for the pre-processor is stored in ASCII text files as is data for the Mesh Editor and Post-processor. When a new project is created and saved to file, the pre-processor prompts you for a project name (an .mfp file extension is the default type). The pre-processor will then create sub-data files for species data and materials data.
  • What is the MOFAT Mesh Editor?
  • The Mesh Editor in MOFAT was designed to work with these numerical models to create and edit finite element meshes. The Mesh Editor allows designing irregular quadrilateral meshes in two dimensions and hexahedral meshes in three dimensions. MOFAT version 2.2 only uses 2D rectangular elements. Working with a numerical model pre-processor, the Mesh Editor provides a graphical interface for assigning properties to a mesh such as initial concentrations of contaminants, soil properties, boundary conditions, etc.
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  我們培訓過的企業客戶評價:
    曙海的andriod 系統與應用培訓完全符合了我公司的要求,達到了我公司培訓的目的。 特別值得一提的是授課講師針對我們公司的開發的項目專門提供了一些很好程序的源代碼, 基本滿足了我們的項目要求。
——上海貝爾,李工
    曙海培訓DSP2000的老師,上課思路清晰,口齒清楚,由淺入深,重點突出,培訓效果是不錯的,
達到了我們想要的效果,希望繼續合作下去。
——中國電子科技集團技術部主任 馬工
    曙海的FPGA 培訓很好地填補了高校FPGA培訓空白,不錯。總之,有利于學生的發展, 有利于教師的發展,有利于課程的發展,有利于社會的發展。
——上海電子,馮老師
    曙海給我們公司提供的Dsp6000培訓,符合我們項目的開發要求,解決了很多困惑我 們很久的問題,與曙海的合作非常愉快。
——公安部第三研究所,項目部負責人李先生
    MTK培訓-我在網上找了很久,就是找不到。在曙海居然有MTK驅動的培訓,老師經驗 很豐富,知識面很廣。下一個還想培訓IPHONE蘋果手機。跟他們合作很愉快,老師很有人情味,態度很和藹。
——臺灣雙揚科技,研發處經理,楊先生
    曙海對我們公司的iPhone培訓,實驗項目很多,確實學到了東西。受益無窮 啊!特別是對于那種正在開發項目的,確實是物超所值。
——臺灣歐澤科技,張工
    通過參加Symbian培訓,再做Symbian相關的項目感覺更加得心應手了,理 論加實踐的授課方式,很有針對性,非常的適合我們。學完之后,很輕松的就完成了我們的項目。
——IBM公司,沈經理
    有曙海這樣的DSP開發培訓單位,是教育行業的財富,聽了他們的課,茅塞頓開。
——上海醫療器械高等學校,羅老師
  我們新培訓過的企業客戶以及培訓的主要內容:
 

廣州航天航空 POWERPC培訓
桂林航天工 DSP培訓
江蘇五維電子科技 達芬奇培訓
無錫步進電機自動控制技術 DSP培訓
江門市安利電源工程 DSP培訓
長江力偉股份 CADENCE 培訓
愛普生科技(無錫 ) 數字模擬電路
河南平高 電氣 DSP培訓
中國航天員科研訓練中心 A/D仿真
常州易控汽車電子 WINDOWS驅動培訓
南通大學 DSP培訓
上海集成電路研發中心 達芬奇培訓
北京瑞志合眾科技 WINDOWS驅動培訓
江蘇金智科技股份 FPGA高級培訓
中國重工第710研究所 FPGA高級培訓
蕪湖伯特利汽車安全系統 DSP培訓
廈門中智能軟件技術 Android培訓
上海科慢車輛部件系統EMC培訓
中國電子科技集團第五十研究所,軟件無線電培訓
蘇州浩克系統科技 FPGA培訓
南京南瑞集團技術 FPGA培訓
西安愛生技術集團 FPGA培訓,DSP培訓
成都熊谷加世電氣 DSP培訓
福斯賽諾分析儀器(蘇州) FPGA培訓
南京國電工程 FPGA培訓
北京環境特性研究所 達芬奇培訓
中國科微系統與信息技術研究所 FPGA高級培訓
重慶網視只能流技術開發 達芬奇培訓
無錫力芯微電子股份 IC電磁兼容
河北科研究所 FPGA培訓
上海微小衛星工程中心 DSP培訓

上海申達自動防范系統 FPGA培訓
四川長虹佳華信息 MTK培訓
公安部第三研究所--FPGA初中高技術開發培訓以及DSP達芬奇芯片視頻、圖像處理技術培訓
上海電子信息職業技術--FPGA高級開發技術培訓
上海點逸網絡科技有限公司--3G手機ANDROID應用和系統開發技術培訓
格科微電子有限公司--MTK應用(MMI)和驅動開發技術培訓
南昌航空大學--fpga 高級開發技術培訓
IBM 公司--3G手機ANDROID系統和應用技術開發培訓
上海貝爾--3G手機ANDROID系統和應用技術開發培訓
中國雙飛--Vxworks 應用和BSP開發技術培訓

一汽海馬汽車 DSP培訓
蘇州金屬研究院 DSP培訓

臺灣歐澤科技--iPhone開發技術培訓
寶康電子--Allegro Candence PCB 仿真和信號完整性技術培訓
上海天能電子有限公司--Allegro Candence PCB 仿真和信號完整性技術培訓
上海亨通光電科技有限公司--andriod應用和系統移植技術培訓
上海智搜文化傳播有限公司--Symbian開發培訓
先先信息科技有限公司--brew 手機開發技術培訓
鼎捷集團--MTK應用(MMI)和驅動開發技術培訓
傲然科技--MTK應用(MMI)和驅動開發技術培訓
浙江理工大學--Dsp6000圖像/視頻處理技術培訓
臺灣雙陽科技股份有限公司--MTK應用(MMI)和驅動開發技術培訓
滾石移動--MTK應用(MMI)和驅動開發技術培訓
冠捷半導體--Linux系統開發技術培訓
奧波--CortexM3+uC/OS開發技術培訓
迅時通信--WinCE應用與驅動開發技術培訓
海鷹醫療電子系統--DSP6000圖像處理技術培訓
博耀科技--Linux系統開發技術培訓
華路時代信息技術--VxWorks BSP開發技術培訓
中軟國際--Linux系統開發技術培訓
龍旗控股集團--MTK應用(MMI)和驅動開發技術培訓
研祥智能股份有限公司--MTK應用(MMI)和驅動開發技術培訓
羅氏診斷--Linux應用開發技術培訓
西東控制集團--DSP2000應用技術及DSP2000在光伏并網發電中的應用與開發
科大訊飛--MTK應用(MMI)和驅動開發技術培訓
東北農業大學--IPHONE 蘋果應用開發技術培訓
中國電子科技集團--Dsp2000系統和應用開發技術培訓
中國船舶重工集團--Dsp2000系統開發技術培訓
晶方半導體--FPGA初中高技術培訓
肯特智能儀器有限公司--FPGA初中高技術培訓
哈爾濱大學--IPHONE 蘋果應用開發技術培訓
昆明電器科學研究所--Dsp2000系統開發技術
奇瑞汽車股份--單片機應用開發技術培訓

東華大學--Dsp6000系統開發技術培訓
上海理工大學--FPGA高級開發技術培訓
同濟大學--Dsp6000圖像/視頻處理技術培訓
上海醫療器械高等專科學校--Dsp6000圖像/視頻處理技術培訓
中航工業無線電電子研究所--Vxworks 應用和BSP開發技術培訓
北京交通大學--Powerpc開發技術培訓

上海水務建設工程有限公司--Alter/Xilinx FPGA應用開發技術培訓
恩法半導體科技--Allegro Candence PCB 仿真和信號完整性技術培訓
中國計量--3G手機ANDROID應用和系統開發技術培訓
冠捷科技--FPGA芯片設計技術培訓
芬尼克茲節能設備--FPGA高級技術開發培訓
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