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CHEMKIN基础介绍

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主要内容


o CHEMKIN介绍

o CHEMKIN用户界面

o CHEMKIN化学设置

o CHEMKIN模型

o CHEMKIN后处理

o CHEMKIN算例


围绕化学模拟提供 产品和服务

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CHEMKIN应用于工程问题


o 设计方向

n 改进反应器尺寸的影响

n 工业过程的参数运行范围

n 确定过程的可替代性

n 预测反应过程时间尺度上的可控制性

o 反应器优化和改进

n 工况运行条件变化的影响

n 过程参数扰动的敏感性

n 反应器的生产能力评估

o 厂商

n 排放

n 过程变化对下游的影响

o 模型假设和验证

n 化学机理的发展与简化

n 实验结果的预测


CHEMKIN有效的求解问题


o 快速模型的发展

n 分级近似

n 能够把不同的理想反应器模型连接在一起

n 不需要建立网格

o 有效准确的求解技术

n 良好的刚性方程组求解方法

n 高效的体系结构

n 继续计算和重新开始计算的功能

o 计算结果容易分析和解释

n 内置的数据可视化

n 数据管理的敏感性分析


CHEMKIN 4.x


o基于java的操作界面。

o操作界面不再是基于计算模块,而是反应器模型

o全新的后处理功能

o项目图形化

o全新的参数研究功能

o颗粒追踪模块



主要内容



o CHEMKIN介绍

o CHEMKIN用户界面

o CHEMKIN化学设置

o CHEMKIN模型

o CHEMKIN后处理

o CHEMKIN算例


探究用户界面



o更改用户参数选择

n 检查 “培训 ” 和“例子 ” 文件的位置

n 设置“记事本 ” 作为 缺省编辑器

n 设置IE作为 HTML 阅读器

n 测试 Adobe Acrobat Reader 作为 PDF 阅读器

o打开 开始手册

o 为“线性沉积率 ”设置缺省单位为microns/min

介绍图形界面 …

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研究图像选项

1. 创建一个新方案

2. 创建一个PSRs与一个或多个输入的网

3. 在末端处添加一个管流反应

4. 更新方案

5. 试验在参数项间连线

6. 在 PSRs间增加热流并再次更新

7. 打开前处理面板

8. 为化学设置选择 grimech30.cks 文件 (复 制系统数据的化学设置

前处理程序的化学设置

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反应输入面板

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输入面板包括流动参数和反应物成分输入

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用燃料/氧化剂平衡率可以输入反应物的成分

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平衡率定义

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详细内容请见附件


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本页面/内容部分素材来源于互联网公 开 信 息,旨在传递更多信息,不代表本平台立场。

版权归原作者或机构所有,如涉及侵权,请通过平台联系我们,我们将在核实后第一时间处理。

本平台对转载内容的真实性、准确性不作任何保证,用户需自行判断并承担使用风险。

附件

免费N11-CHEMKIN基础介绍.pdf
Chemkin化学控制试验求解技术
著作权归作者所有,欢迎分享,未经许可,不得转载
首次发布时间:2026-05-22
最近编辑:3月前
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基于 WFT 信号的整车多方案仿真对比分析

Full Vehicle Simulation and Virtual IterationOtmar Gattringer,2015摘要:本文基于 WFT 车轮力信号,采用 MSC.ADAMS 构建整车多体模型,对比四种整车仿真与虚拟迭代方案:直接 WFT 输入、车身固定 WFT 输入、四轮台架 + WFT 虚拟迭代、内部信号虚拟迭代。统一采用颠簸路载荷,对比轮力、悬架位移、球铰力、车身力等 70 通道信号与损伤结果。研究表明:直接 WFT 方法最简单但精度最差;四轮台架 + WFT 迭代便捷且精度合格;内部信号虚拟迭代精度最高,可通过载荷修正补偿模型误差。两种虚拟迭代方法可提取路面位移谱并跨车型迁移,为整车道路载荷仿真与疲劳分析提供优选方案。Contents· Overview· Road load data· MBS-model· Simulation and VI· Comparison of results· ConclusionOverview4 different approaches of one full vehicleA1Full vehicle simulation using WFT signals as inputA2 il,ef u tig WFT signals as(“WFT with fixed body”)A3 VI of full vehicle using WFT signals(“VI using internal signals”)· All simulations based on same road load data· Comparison of results of the different approacRoad load data-applicationMultilink suspension-front and rear axleWheel Force Transducer(WFT)· KISTLER Roadyn·3 Forces at 4 wheels ·3 Torques at 4 wheelsRoad load dataMeasurements of rough road,70 channels used by the 4 approaches:· WFT signals (24 channels)· Spring deflection (4 channels)· Damper forces (4 channels)· Ball joint forces - Front axle lower link (6 channels -X,Y,Z) - Front axle upper link (4 channels-X,Y) - Rear axle upper link (4 channels-X,Y)· Accelerations - Wheel hub front and rear X,Y,Z(12 channels) - Body Z(4 channels)· Steering rod forces axial (2 channels)· Rear axle link forces axial (6 channels)MBS-modelFull vehicle model (MSC.ADAMS/CAR)· Front suspension . Powertrain· Front stabilizer· Steering· Rear suspension· Rear stabilizer· Body· Load - WFT signals (free body or body fixed to ground) - 4 Poster with WFT signals - VI using internal signals· Load at each wheel:· (no driving/braking torque)·A1 and A2:- FX,FY,FZ,TX,TZ(no driving/braking torque)- Applied by GFORCE element· A3 :4 Poster with WFT signals (5 channels at wheel center)- vertical displacement (VI-4 poster)- FX,FY,TX,TZ(measured signals applied additionally)-Applied by GFORCE and MOTION elementsMBS-model· A4 :VI using internal signals (4 channels at wheel)-vertical displacement at wheel center - FX and TZ at wheel center - FY at tire contact point - Applied by GFORCE element at wheel center,GFORCE element at tire contact point and MOTION elementFull vehicle assembly· Assembling all 8 subsystems· Adjusting center of gravity of body so that measured static wheel loads are achieved · Adjusting preload of springs (measurement condition) - Front bumpstop clearance - Rear bumpstop clearanceSimulation and VIA1: Full vehicle simulation using WFT signals· Spring for stabilization (simple method): - X and Y direction at beginning (STEP function) - Z direction 10 N/mmA1: Full vehicle simulation using WFT signals· The system will be instable without springs:A1: Full vehicle simulation using WFT signals· The system will be stable with springs:A2:Full vehicle simulation using WFT signals,body fixed to ground· The system will be stableA3:4 Poster of full vehicle with WFT signals· VI of 4 poster - Load:vertical displacements - Desired:spring displacements and wheel center accelerations - 7 iterations automatically· Applying additional measured WFT signals: - Vertical displacements of VI of 4 poster(7th drive) - WFT signals at wheel centers:FX,FY,TX and TZ - Simulation of full vehicleA4:Vl of full vehicle using internal signals· Load:16 channels - Vertical displacements DZ at wheel centers - FX and TZ at wheel centers - FY at tire contact points· Desired:28 channels - Spring displacements and wheel center accelerations - Ball joint forces (X and Y direction),front and rear axle - Steering rod forces - Rear axle link forces· 10 iterations automatically· 11th drive:10th drive scaled manually by: - DZ front left divided by 1.04|DZ front right divided by 1.08 - TZ front left divided by 1.15|TZ front right divided by 1.25Comparison of result-measured signals Results of different an alyses·Reference/desired signals show satisfying correlation in time domain A1 Full vehicle simulation using WFT signals: -WFT signals A2 Full vehicle simulation using WFT signals,body fixed to ground: -WFT signals A34 Poster with WFT signals: -WFT signals -spring displacements and wheel center accelerations A4 Vl using internal signals: -internal signals·Relative damage values of simulated to measured signals,comparison between the 4 approaches (page 18-20)·Comparison of body forces of the 4 approaches (page 21-25)Wheel center forces:front left and rear left· Common target range for relative damage values:[0.5,2](yellow area)· Request are defined at the joint of spindle to knuckle (s mall deviation to applied signal)·A1 -"WFT“,A2-"WFT with fixed body"and A3-“4 Poster with WFT"signals show excellent correlation logically· The green bars of A4-"Vl using internal signals"illustrate model inaccuraciesVertical signals:spring displacements,damper forces and wheel center accelerations· Blue bars of A1-"WFT"and A2-" WFT with fixed body"show that WFT forces are not optimal suitable for vertical load· A3- “4 Poster with WFT signals"and A4 -"Vl using internal signals”show correlation to measurement with high quality for vertical directionBall joint forces (front axle),steering rod forces (front axle)and link forces (rear axle)· Inadequate accuracy of A1-“WFT”,A2- "WFT with fixed body"and A3-“4 Poster with WFT signals"at some internal measurement signals (reflecting model inaccuracies)· A4 -“VI using internal signals”shows satisfying results,except front link of rear axle is out of target areaComparison of result-body forces Comparison of body forces (e.g.used for fatigue an alysis of body)· No reference/measurement available· Damage values computed relative to “VI using internal signals”· Comparison for vertical-,longitudinal-and lateral forces (left side only) - Front axle (FA)spring/damper mount - Front axle (FA)subframe (front-,middle-and rear mount) - Front axle (FA)upper control arm front mount - Rear axle (RA)spring/damper mount - Rear axle (RA)subframe (front-and rear mount)-Comparison of all body signals between simulation using WFT signals as input - Free body - Fixed bodyLongitudinal body forces· FX springs show very s mall amplitudes· Upper control arm forces have s mall amplitudes in all 3 directions·Longitudinal forces are s mall compared to A4-“VI using internal signals“Lateral body forces· Upper control arm forces have s mall amplitudes in all 3 directions·A1- "WFT"and A2-"WFT with fixed body" have high deviation compared to A4 -“Vl using internal signals“Vertical body forces· Upper control arm forces have s mall amplitudes in all 3 directions,specially in Z-direction·A1 -"WFT"and A2-"WFT with fixed body"have high deviation compared to A4 -“VI using internal signals“Comparison of all body forces between free (A1) and fixed body(A2)consideration (simulation using WFT signals as input-no VI,forces at left side only)· No information of engine mount forces with fixed body· Accumulation of all s mall inaccuracies may lead to inexact evaluations (e.g.fatigue)Conclusion · 3 approaches are common in practice,body fixed to ground most unusual· A1 and A2-Full vehicle simulation using WFT signals is the simplest but most inaccurate method regarding internal forces· A3- VI of a 4 poster with applying WFT signals additionally is a veryconvenient approach and the accuracy is acceptable regarding internal forces· A4 -VI using internal forces is a very accurate method assumingmeasurement data is available.Model inaccuracies can be compensated partially by adjusting the load to get accurate internal signals· The two approaches with VI (A3 and A4) can also be used for computingvertical displacements at tire contact point including radial tire stiffness.Thesedisplacements reflect the road surface (invariant signal)and can betransferred to similar vehicles.The measured forces are not invariant andcannot be transferred automatically.· Accuracy of all approaches depends on model quality.The presented results cannot be transferred to other models generally.The vehicle is modeledaccording ECS standard and is not specially trimmed for oneof the 3 approaches.免责声明:本页面/内容部分素材来源于互联网公 开 信 息,旨在传递更多信息,不代表本平台立场。版权归原作者或机构所有,如涉及侵权,请通过平台联系我们,我们将在核实后第一时间处理。本平台对转载内容的真实性、准确性不作任何保证,用户需自行判断并承担使用风险。

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