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简介:本文是以十字元件为背景光源,经过一个透镜元件成像在探测器上,并显示其热成像图。 )Y&De)= A# M 成像示意图 F<(xz= 首先我们建立十字元件命名为Target kyo ,yD dju&Ku
创建方法: NxX1_d /l$noaskX 面1 : xf]4!zE 面型:plane !d0@^JbM" 材料:Air "^D6%I#T 孔径:X=1.5, Y=6,Z=0.075,形状选择Box ^&rbI,D }\*Sf[EMD (
L6`_) 辅助数据: %-'U9e KN 首先在第一行输入temperature :300K, (P>vI' emissivity:0.1; 8c|IGC }b^lg&$( [1UqMkXtf 面2 : >SGSn/AJi 面型:plane GQZUC\cB 材料:Air u ?Xku8 1l 孔径:X=1.5, Y=6,Z=0.075,形状选择Box x/S% NySG vZDQ@\HrC &^7)yS+C 位置坐标:绕Z轴旋转90度, 5Q}@Y3 i= H= y-Y_R zXC In 辅助数据: ;hZ@C!S: -oo=IUk 首先在第一行输入temperature :300K,emissivity: 0.1; *sG<w%% 4yM8W\je *Sf^()5C, Target 元件距离坐标原点-161mm; ]/']{*T1 g0U
?s TatyD**( 单透镜参数设定:F=100, bend=0, 位置位于坐标原点 @&W?e?O ~G QaO`:wJj Jr9}'l8 探测器参数设定: <XagkD ]O\W<'+V 在菜单栏中选择Create/Element Primitive /plane "%]dC{ X m3t
xp# F1=+<]! GT.^u#r e`rY]X 8#Z5-",iw 元件半径为20mm*20,mm,距离坐标原点200mm。 Dn3~8 N
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Xo 光源创建: M5V1j(URE $OD5t5eTsM 光源类型选择为任意平面,光源半角设定为15度。 &B4U) z Y|g#V- <X |h* 我们将光源设定在探测器位置上,具体的原理解释请见本章第二部分。 F%d"gF0qu #c>MUC(?s: 我们在位置选项又设定一行的目的是通过脚本自动控制光源在探测器平面不同划分区域内不同位置处追迹光线。 }BrE|'.j' ka3Z5 20qVzXi 功率数值设定为:P=sin2(theta) theta为光源半角15度。我们为什么要这么设定,在第二部分会给出详细的公式推导。 h'x~"k1 PpRO7(<cD 创建分析面: 9%qMZP0] Q2NnpsA^6 FudD 到这里元件参数设定完成,现在我们设定元件的光学属性,在前面我们分别对第一和第二面设定的温度和发射系数,散射属性我们设定为黑朗伯,4%的散射。并分别赋予到面一和面二。 +CT$/k U;GoC$b}| }$1;< 到此,所有的光学结构和属性设定完成,通过光线追迹我们可以查看光线是否可以穿过元件。 2&fwr>!$ i 8Xz FRED在探测器上穿过多个像素点迭代来创建热图 Cpcd`y=IN ^^SfIK?p FRED具有一个内置的可编译的Basic脚本语言。从Visual Basic脚本语言里,几乎所有用户图形界面(GUI)命令是可用这里的。FRED同样具有自动的客户端和服务器能力,它可以被调用和并调用其他可启动程序,如Excel。因此可以在探测器像素点上定义多个离轴光源,及在FRED Basic脚本语言里的For Next loops语句沿着探测器像素点向上和向下扫描来反向追迹光线,这样可以使用三维图表查看器(Tools/Open plot files in 3D chart)调用和查看数据。 !f-o,RJ 将如下的代码放置在树形文件夹 Embedded Scripts, He!!oKK> 8!GLw-kb bl?%:qb.V 打开后清空里面的内容,此脚本为通用脚本适用于一切可热成像的应用。 \2xBOe-a] ? myXG92 绿色字体为说明文字, B7MW" y ZD%_PgiT '#Language "WWB-COM" 1>VS/H` 'script for calculating thermal image map 'kvFU_) 'edited rnp 4 november 2005 eF^"{a3b Q;/F0JDH 'declarations U]0)$OH5e Dim op As T_OPERATION Q;O)>K Dim trm As T_TRIMVOLUME |S:!+[ Dim irrad(32,32) As Double 'make consistent with sampling M%s$F@ Dim temp As Double 7$W;4!BN* Dim emiss As Double d$rUxqB. Dim fname As String, fullfilepath As String A9Wqz"[ s@LNQ|'kO 'Option Explicit /2Lo{v=0[ :V~*vLvR Sub Main ,l .U^d6> 'USER INPUTS
t} i97 ; nx = 31 {IHK<aW ny = 31 lp-Zx[#`}C numRays = 1000 oz6+rM6MY minWave = 7 'microns YG~ o maxWave = 11 'microns Ygi1"X} sigma = 5.67e-14 'watts/mm^2/deg k^4 ]}7rWs[|1 fname = "teapotimage.dat" gQ=POJ=G u?;Vxh3@| Print "" 7E3SvC|M Print "THERMAL IMAGE CALCULATION" ]Y&)98 ,i?!3oLT detnode = FindFullName( "Geometry.Detector.Surface" ) '找到探测器平面节点 DsJn#>?Kh ;c-
]bhBB Print "found detector array at node " & detnode Z#6~N/b r`R~{;oT srcnode = FindFullName( "Optical Sources.Source 1" ) '找到光源节点 Vt=(2d5:p ob0 8xGj Print "found differential detector area at node " & srcnode b]<HhU j'Y"/< GetTrimVolume detnode, trm JkDPuTXD detx = trm.xSemiApe U+PCvl=x dety = trm.ySemiApe Mq:'-` area = 4 * detx * dety OZ'.}((?n Print "detector array semiaperture dimensions are " & detx & " by " & dety ]vQ?]d?>a Print "sampling is " & nx & " by " & ny gMBQtPNM =ym 'reset differential detector area dimensions to be consistent with sampling CLY6 YB' R pixelx = 2 * detx / nx "Z 2Tc) pixely = 2 * dety / ny \q|7,S,5 SetSourcePosGridRandom srcnode, pixelx / 2, pixely / 2, numRays, False 8| e$ Print "resetting source dimensions to " & pixelx / 2 & " by " & pixely / 2 *rn]/w8ZW Wda\a.bXT 'reset the source power ,+/9K)X SetSourcePower( srcnode, Sin(DegToRad(15))^2 ) $FQcDo|[ Print "resetting the source power to " & GetSourcePower( srcnode ) & " units" +*_fN ]M |5~wwL@LW7 'zero out irradiance array dmaqXsU8q For i = 0 To ny - 1 }kCn@ For j = 0 To nx - 1 }or2 $\>m irrad(i,j) = 0.0 J[!x%8m Next j 1rv$?=Z Next i !jAWNK6 P
0Efh?oZ 'main loop &*aer5?` EnableTextPrinting( False ) D#d8 ^U G&@-R{i ypos = dety + pixely / 2 eyf4M;goz} For i = 0 To ny - 1 Wg`+u xpos = -detx - pixelx / 2 QP$nDK< ypos = ypos - pixely ~TG39*m B 9LSxB EnableTextPrinting( True ) E#<7\p> Print i J&63Z EnableTextPrinting( False ) &gWMl`3^*! Yz2{LW[K ,TF<y#wed For j = 0 To nx - 1 >G<\1R Ehb?CnV#J xpos = xpos + pixelx
$-$5ta{s L2CW'Hd 'shift source tg7C;rJ LockOperationUpdates srcnode, True -_2Dy1 GetOperation srcnode, 1, op qSEB}1 op.val1 = xpos YER:ICQ op.val2 = ypos Ii~; d3. SetOperation srcnode, 1, op 3`&VRF8 LockOperationUpdates srcnode, False ^91sl5c8yD TRgY :R_ raytrace N<aB)</ DeleteRays G-\<5]k] CreateSource srcnode 'bB>$E TraceExisting 'draw YKP=0 j3, S}.\v< 'radiometry tLS<0 For k = 0 To GetEntityCount()-1 {A]k%74-a If IsSurface( k ) Then M5']sdR(l temp = AuxDataGetData( k, "temperature" ) R=\v3m emiss = AuxDataGetData( k, "emissivity" ) ^273l(CZ1 If ( temp <> 0 And emiss <> 0 ) Then t/JOERw ProjSolidAngleByPi = GetSurfIncidentPower( k ) n 5~=qQK2 frac = BlackBodyFractionalEnergy ( minWave, maxWave, temp ) cP*c(k~N irrad(i,j) = irrad(i,j) + frac * emiss * sigma * temp^4 * ProjSolidAngleByPi !~K=#"T End If K4j@j}zK9I M[h1>}$Lz End If >vQ6V'F I:F'S# Next k $42Au2Jg _qY`KP" Next j tCZpfZ@+= B;eW/#` Next i Rr+qgt;f5 EnableTextPrinting( True ) ,3:QB_ KU+( YF$1 'write out file yDd=&
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fullfilepath = CurDir() & "\" & fname "0|BoG Open fullfilepath For Output As #1 /K_ i8!y Print #1, "GRID " & nx & " " & ny HR[Q
?rg Print #1, "1e+308" o*%3[HmV Print #1, pixelx & " " & pixely xe(MHNrj Print #1, -detx+pixelx/2 & " " & -dety+pixely/2 ob0~VEH- jEZ
" maxRow = nx - 1 )*!1bgXQ maxCol = ny - 1 *I=_*LoG2 For rowNum = 0 To maxRow ' begin loop over rows (constant X) 4$%`Qh>yA row = "" ewo*7j4* For colNum = maxCol To 0 Step -1 ' begin loop over columns (constant Y) "YuZ fL`bb row = row & irrad(colNum,rowNum) & " " ' append column data to row string pAENXC\, Next colNum ' end loop over columns U8YO0}_z /r-8T>m Print #1, row w'd.; Tc:sldtCk Next rowNum ' end loop over rows %h0D)6j
Close #1 )j\r,9<K+5 `/c7h16 Print "File written: " & fullfilepath u/} xE7G Print "All done!!" ]X*YAPv End Sub KZECo1 !0b%Jh 在输出报告中,我们会看到脚本对光源的孔径和功率做了修改,并最终经过31次迭代,将所有的热成像数据以dat的格式放置于: =]T|h l x7Kw% Q5g,7ac8L 找到Tools工具,点击Open plot files in 3D chart并找到该文件 <R>Q4&we( pXssh MM7"a?y) 打开后,选择二维平面图: H]BAW *} }gCG&7C
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