| 小火龙果 |
2020-05-28 16:28 |
RP Fiber Power仿真设计掺铥光纤激光器代码详解
(* C6T 9 Demo for program"RP Fiber Power": thulium-doped fiber laser, )dN,b(w9 pumped at 790 nm. Across-relaxation process allows for efficient 1
FIiX population of theupper laser level. ;;"c+ *) !(* *)注释语句 T?}=k{C] $,@ rKRY diagram shown: 1,2,3,4,5 !指定输出图表 c,s<q j ; 1: "Powersvs. Position" !分号是注释;光纤长度对功率的影响 ewff(e9 ; 2:"Variation of the Pump Power" !泵浦光功率变化对信号输出功率的影响 fS$Yl~-m? ; 3:"Variation of the Fiber Length"!信号输出功率vs 光纤长度的变化,仿真最佳光纤长度 Hd@T8 D*A ; 4:"Transverse Profiles" !横向分布,横坐标为半径位置 r'JK$9 ; 5:"Transition Cross-sections" !不同波长的跃迁横截面,横坐标波长,纵坐标为横截面 I8pxo7(- B xN#Nk~ include"Units.inc" !读取“Units.inc”文件中内容 +iDz+3v(
6V_5BpXt include"Tm-silicate.inc" !读取光谱数据 FVLA^$5c b8-^wJH! ; Basic fiberparameters: !定义基本光纤参数 '`A67bdq) L_f := 4 { fiberlength } !光纤长度 P*^UU\x'4I No_z_steps := 50 {no steps along the fiber } !光纤步长,大括号{ }是注释,相当于备注 ojs/yjvx r_co := 6 um { coreradius } !纤芯半径 H-y-7PW*~ N_Tm := 100e24 { Tmdoping concentration } !纤芯Tm离子掺杂浓度 f*H}eu3/j Z.Y8 z#[xg ; Parameters of thechannels: !定义光信道 Erymx$@P l_p := 790 nm {pump wavelength } !泵浦光波长790nm 1~iBzPU2 dir_p := forward {pump direction (forward or backward) } !前向泵浦 BOcEL%+ P_pump_in := 5 {input pump power } !输入泵浦功率5W Y?SJQhN6W w_p := 50 um {radius of pump cladding } !包层泵浦相应的半径 50um '
xq5tRg> I_p(r) := (r <=w_p) { pump intensity profile } !泵浦光强度分布 =|t1eSzc loss_p := 0 {parasitic losses of pump wave } !泵浦光寄生损耗为0 9!OCilG |`9zE] l_s := 1940 nm {signal wavelength } !信号光波长1940nm y]z# ?? w_s := 7 um !信号光的半径 HE.Dl7{ I_s(r) := exp(-2 *(r / w_s)^2) !信号光的高斯强度分布 Gqu0M`+7 loss_s := 0 !信号光寄生损耗为0 sy#j+gZ
j:<T<8.o R_oc := 0.70 {output coupler reflectivity (right side) } !输出耦合反射率 w5G34[v 9 u89P ; Function for defining themodel: !定义模型函数,一定要有calc命令,否则函数只会被定义,但不会被执行 ;iI2K/ 3 calc FQ&VM6_ begin ^\t">NJ^ global allow all; !声明全局变量 GnHf9
JrR set_fiber(L_f, No_z_steps, ''); !光纤参数 CZno2$8@e add_ring(r_co, N_Tm); F,$$N> def_ionsystem(); !光谱数据函数 5N}|VGN pump := addinputchannel(P_pump_in, l_p,'I_p', loss_p, dir_p); !泵浦光信道 24k}~"We signal_fw := addinputchannel(0, l_s, 'I_s',loss_s, forward); !前向信号光信道 Gi_X+os signal_bw := addinputchannel(0, l_s, 'I_s',loss_s, backward); !后向信号光信道 jtC ob'n8 set_R(signal_fw, 1, R_oc); !设置反射率函数 t#Yh!L6> finish_fiber(); Ho{?m^ end; "tbBbEj?d XSIO0ep ; Display someoutputs in the Output window (on the right side): !在Output aera区域显示输出 *VAi!3Rx; show "Outputpowers:" !输出字符串Output powers: C
5!6k1TcE show"pump: ", P_out(pump):d3:"W" !输出字符串pump:和计算值(格式为3个有效数字,单位W) zT 40,rk show"signal: ",P_out(signal_fw):d3:"W" !输出字符串signal:和计算值(格式为3个有效数字,单位W) w0OK.fj e/l?|+m 6 `l@t3/ ; ------------- Eu_0n6J diagram 1: !输出图表1 nr6[rq ^8t*WphZC "Powers vs.Position" !图表名称 h v+i{Z9!] AYtcN4\/ x: 0, L_f !命令x: 定义x坐标范围 [_GR'x'0x "position infiber (m)", @x !x轴标签;@x 指示这些字符串沿坐标轴放置 g)Uh
y: 0, 15 !命令y: 定义y坐标范围
C_&tOt y2: 0, 100 !命令y2: 定义第二个y坐标范围 SaScP frame !frame改变坐标系的设置 RLr-xg$K-t legpos 600, 500 !图行在图表窗口中的位置(相对于左上角而言) V3nv5/6 hx !平行于x方向网格 6!V* :.( hy !平行于y方向网格 5Ww\h 0;`PHNBq f: P(pump, x), !命令f: 定义函数图;P(pump, x)函数是计算x位置处的泵浦光功率 FiH!)6T color = red, !图形颜色 ,*#M%Pv1t width = 3, !width线条宽度 <0MUn#7' "pump" !相应的文本字符串标签 z#!Cg*K( f: P(signal_fw, x), !P(signal_fw ,x) 函数是计算x位置处的前向信号光功率 [r~lO@ color = blue, e6/} M3B width = 3, qTex\qP "fw signal" nP
/$uj f: P(signal_bw, x), !P(signal_bw ,x) 函数是计算x位置处的后向信号光功率 =sJHnWL[ color = blue, :"^$7 style = fdashed, g9Ll>d)tE3 width = 3, B) iJH "bw signal" 0 <;B2ce 2Ki/K( f: 100 * n(x, 2), !n(x ,2) 函数是计算x位置处激活粒子数在能级2上的占比 Z/;SR""wa yscale = 2, !第二个y轴的缩放比例 ,1kV9_x color = magenta, "d\8OOU width = 3, )HHzvGsL) style = fdashed, ]+S QS^4 "n2 (%, right scale)" /267Q;d
C)
]YKWa" f: 100 * n(x, 3), !n(x ,3) 函数是计算x位置处激活粒子数在能级3上的占比 y2>]gX5 yscale = 2, D[?|\? color = red, _u!G6 width = 3, |0
VP^md style = fdashed, YEj U3^@ "n3 (%, right scale)" 1jb@nxRjO kDQXPp ;U4X
U ; ------------- Q^OzFfR6 diagram 2: !输出图表2 hkxZ=l $<#sCrNX "Variation ofthe Pump Power" W_EN4p~J c`Cn9bX x: 0, 10 >aK&T" "pump inputpower (W)", @x &3. 8i% y: 0, 10 '`"&RuB y2: 0, 100 Wov_jVdN\ frame WBdb[N6\ hx !{LwX Kf hy dWSH\wm+ legpos 150, 150 Gz:a1-x R(fR1 f: (set_P_in(pump, x);P_out(signal_fw)), !set_P_in(pump,x)改变泵浦信道功率;P_out(signal_fw)输出前向信号光 M`F L&Ac step = 5, |d8o<Q color = blue, ~]Jfg$' width = 3, d0d2QRX "signal output power (W, leftscale)", !相应的文本字符串标签 I`l<}M finish set_P_in(pump, P_pump_in) aMWNZv V7<}
;Lzm f: (set_P_in(pump,x); 100 * n_av(2)), !改变泵浦信号功率对能级2上激活粒子占比的影响 1+Oo Qs yscale = 2, o^_am>h step = 5, 4P5wEqU.< color = magenta, c`cPGEv width = 3, Wj0([n "population of level 2 (%, rightscale)", ijfT!W finish set_P_in(pump, P_pump_in) +$C5V,H~ o/#e
y f: (set_P_in(pump,x); 100 * n_av(3)), !改变泵浦信号功率对能级3上激活粒子占比的影响 5Z'pMkn3 yscale = 2, j<u`W|vl step = 5, a>6p])Wh color = red, ,==lgM2V> width = 3, MG|NH0k "population of level 3 (%, rightscale)", 6IA~bkc} finish set_P_in(pump, P_pump_in) \}5\^&}_ d>f5Tl\E E*zk?G| ; ------------- Sk xaSJ" diagram 3: !输出图表3 y)2]:nD`B n$>H } #q "Variation ofthe Fiber Length" (Y%}N(Jg Im2g2] x: 0.1, 5 ` $}[np| "fiber length(m)", @x xYbF76B y: 0, 10 /@K?W=w4 "opticalpowers (W)", @y ugz1R+f_4{ frame d{Z hx H3JWf
MlW hy iPao54Z y9 "!ys f: (set_L(x);P_out(signal_fw)), !改变光纤长度对信号光输出功率的影响 ]GJskBm step = 20, xZhh%~ color = blue, xJ4T7 )* width = 3, $%/Zm*H "signal output" )57OZ n']@Spm ;f: (set_L(x);P_out(pump)), !改变光纤长度对泵浦信号输出功率的影响 {"s8X(#_sC step = 20, color = red, width = 3,"residual pump" (5SI!1N ~{J.br` ! set_L(L_f) {restore the original fiber length } [e (- *ood3M[M^ a83o(9 ; ------------- |m ~| diagram 4: !输出图表4 |b|p0Z%7{ 6d,"GT "TransverseProfiles" :t(}h!7 %k"-rmW I_max :=maxr(I(pump, -1, 0, 0), I(signal_fw, -1, 0, 0)) 6;ICX2Wq' ;kdJxxUox x: 0, 1.4 * r_co /um Mb-C DPT "radialposition (µm)", @x 27)$;1MT: y: 0, 1.2 * I_max *cm^2 hsi#J^n{ "intensity (W/ cm²)", @y ],#9L
y2: 0, 1.3 * N_Tm 8YCtU9D frame [qc90)^Q, hx >LLFe~9`g hy avdi9!J2 OA[w|Tt f: N_dop(1, x * um,0), !掺杂浓度的径向分布 7p|Pv;wp| yscale = 2, ~s+\Y/@A color = gray, \;4RD$J width = 3, o4d>c{p maxconnect = 1, _TH'v:C "N_dop (right scale)" iidK}<o 5'@}8W3b f: I(pump, -1, x *um, 0) * cm^2, !泵浦光沿光纤径向的强度分布 k9a-\UIMet color = red, LqW~QEU( maxconnect = 1, !限制图形区域高度,修正为100%的高度 j
$L width = 3, S-My6'ar "pump" ,w
c|YI)E wqJH f: I(signal_fw, -1,x * um, 0) * cm^2, !信号光沿光纤径向的强度分布 [<6ez;2q' color = blue, 8g$pfHt|e maxconnect = 1, l]GLkE width = 3, i9$
-lk "signal" pX"f " Rzw}W7zg[ s(-$|f+s ; ------------- L\!Pa+Iod diagram 5: !输出图表5 sOv:/' [i\K#O +f "TransitionCross-sections" x]w%?BlS kz] qk15w I_max :=maxr(I(pump, -1, 0, 0), I(signal_fw, -1, 0, 0)) ONg_3vD{ Ak&eGd$d x: 1450, 2050 aR+vY1d" "wavelength(nm)", @x c.r]w y: 0, 0.6 pFhznH{0 "cross-sections(1e-24 m²)", @y *IfLoKS' frame 7iT#dpF/A hx 4;y*y tY* hy QrDI$p7;' ELPzqBI f: s12_Tm(x * nm) /1e-24, !Tm3+吸收截面与波长的关系 o^H.uBO{ color = red, (6!W8x7 width = 3, B/AS|i] sM "absorption" ??)IPRv?yF f: s21_Tm(x * nm) /1e-24, !Tm3+发射截面与波长的关系 -6@#Nq_iWU color = blue, AfB,`l`k width = 3, =[`B -? "emission" 6;Wns' CN+[|Mz*p
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