(* @FNaCmBX
Demo for program"RP Fiber Power": thulium-doped fiber laser, # <?igtUO
pumped at 790 nm. Across-relaxation process allows for efficient f%,Vplb
population of theupper laser level. Y5mQY5u|
*) !(* *)注释语句 ov3FKMG?
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diagram shown: 1,2,3,4,5 !指定输出图表 T'^ Do/
; 1: "Powersvs. Position" !分号是注释;光纤长度对功率的影响 1R-1#<a>&
; 2:"Variation of the Pump Power" !泵浦光功率变化对信号输出功率的影响 8NF93tqD6
; 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 q\DN8IJ
; 4:"Transverse Profiles" !横向分布,横坐标为半径位置 -G'U\EXT
; 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 zG\& ZU
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include"Units.inc" !读取“Units.inc”文件中内容 7!qO*r
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include"Tm-silicate.inc" !读取光谱数据 c/6
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; Basic fiberparameters: !定义基本光纤参数 xF8U )j!
L_f := 4 { fiberlength } !光纤长度 9ZJn 8ki
No_z_steps := 50 {no steps along the fiber } !光纤步长,大括号{ }是注释,相当于备注 )tvP|
r_co := 6 um { coreradius } !纤芯半径 ZA1:Y{V
N_Tm := 100e24 { Tmdoping concentration } !纤芯Tm离子掺杂浓度 :QoW*Gs1
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; Parameters of thechannels: !定义光信道 :
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l_p := 790 nm {pump wavelength } !泵浦光波长790nm ~:JoKm`vU
dir_p := forward {pump direction (forward or backward) } !前向泵浦 @> |3d
P_pump_in := 5 {input pump power } !输入泵浦功率5W J#'8]p3E
w_p := 50 um {radius of pump cladding } !包层泵浦相应的半径 50um @k-C>h()C
I_p(r) := (r <=w_p) { pump intensity profile } !泵浦光强度分布 +,Ud 3iS
loss_p := 0 {parasitic losses of pump wave } !泵浦光寄生损耗为0 W(jOD,QMB
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l_s := 1940 nm {signal wavelength } !信号光波长1940nm ""f'L,`{.
w_s := 7 um !信号光的半径 c80Ffq
I_s(r) := exp(-2 *(r / w_s)^2) !信号光的高斯强度分布 MD):g@
loss_s := 0 !信号光寄生损耗为0 !qu/m B
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R_oc := 0.70 {output coupler reflectivity (right side) } !输出耦合反射率 Te6cw+6
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; 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 56?RFnZ&j
calc eF"k"Ckt'
begin BHu%x|d
global allow all; !声明全局变量 ~tc,p
set_fiber(L_f, No_z_steps, ''); !光纤参数 1j*E/L
add_ring(r_co, N_Tm); C+L_f_6]
def_ionsystem(); !光谱数据函数 '" 4;;(
pump := addinputchannel(P_pump_in, l_p,'I_p', loss_p, dir_p); !泵浦光信道 eH_< <Xh!v
signal_fw := addinputchannel(0, l_s, 'I_s',loss_s, forward); !前向信号光信道 29HyeLB@
signal_bw := addinputchannel(0, l_s, 'I_s',loss_s, backward); !后向信号光信道 OZR{+YrB^
set_R(signal_fw, 1, R_oc); !设置反射率函数 ,W| cyQ
finish_fiber(); |yinV fZ0C
end; `N}aV Ns
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; Display someoutputs in the Output window (on the right side): !在Output aera区域显示输出 $'x#rW>v
show "Outputpowers:" !输出字符串Output powers: F{G.dXZZ<
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) +;ylld
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) M<nH
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; ------------- vlq L
diagram 1: !输出图表1 l3xI\{jn
:+_
"Powers vs.Position" !图表名称 ~f:"Q(f+
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x: 0, L_f !命令x: 定义x坐标范围 hLr\;Swyp
"position infiber (m)", @x !x轴标签;@x 指示这些字符串沿坐标轴放置 udOdXz6K?
y: 0, 15 !命令y: 定义y坐标范围 {O6yJckH
y2: 0, 100 !命令y2: 定义第二个y坐标范围 Ys0N+
frame !frame改变坐标系的设置 x#XxD<y
legpos 600, 500 !图行在图表窗口中的位置(相对于左上角而言) OWc~=Cr
hx !平行于x方向网格 [Y4Wm?
hy !平行于y方向网格 gW-mXb
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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 050V-S>s
color = red, !图形颜色 ? _7iL?
width = 3, !width线条宽度 aH_0EBRc
"pump" !相应的文本字符串标签 $H`{wJ?2(
f: P(signal_fw, x), !P(signal_fw ,x) 函数是计算x位置处的前向信号光功率 N;v]ypak
color = blue, {kghZur
width = 3, #}Hdyl I\}
"fw signal" w! PguP
f: P(signal_bw, x), !P(signal_bw ,x) 函数是计算x位置处的后向信号光功率 ?IG[W+M8
color = blue, ,u=+%6b)A
style = fdashed, q?qH7={,eu
width = 3, "QvTn=
"bw signal" :O7n*lwx
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f: 100 * n(x, 2), !n(x ,2) 函数是计算x位置处激活粒子数在能级2上的占比 uD?Rs`
yscale = 2, !第二个y轴的缩放比例 Q*hXFayx
color = magenta, ,h9?o
width = 3, DP-0,Gt&Xj
style = fdashed, 7h.fT`
"n2 (%, right scale)" +{#L,0t
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f: 100 * n(x, 3), !n(x ,3) 函数是计算x位置处激活粒子数在能级3上的占比 p<<dj%
yscale = 2, ]v]tBVO$
color = red, c#f@v45
width = 3, cua ( w
style = fdashed, lPD&Doa
"n3 (%, right scale)" a 2[rY
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; ------------- T!I3.
diagram 2: !输出图表2 xE{slDl
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"Variation ofthe Pump Power" F'-XAI
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x: 0, 10 iuA_Jr
"pump inputpower (W)", @x k?rJGc G
y: 0, 10 CDPu(,^
y2: 0, 100 os7xwI;T
frame ~6K.5t7
hx M?AKJE j5
hy 1IlOU|4
legpos 150, 150 eL<jA9cJ9
!b=W>5h
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 X:lStO#5
step = 5, dai+"
color = blue,
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width = 3, d0i|^
"signal output power (W, leftscale)", !相应的文本字符串标签 n wMq~I*1
finish set_P_in(pump, P_pump_in) S>)[n]f
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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 ddN G:
yscale = 2, do*aE
step = 5, :[CEHRc7x
color = magenta, h#c7v!g
width = 3, Uu52uR
"population of level 2 (%, rightscale)", 'tDUPm38
finish set_P_in(pump, P_pump_in) f7 |Tp m
.
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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 &po!X )
yscale = 2, Pf/8tXs}
step = 5,
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f
color = red, )Ay 90Wt
width = 3, 1J72*`4OK
"population of level 3 (%, rightscale)", I~6 o<HO
finish set_P_in(pump, P_pump_in) !{ {gL=_@
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; ------------- mYj)![
diagram 3: !输出图表3 T--%UZD]W
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"Variation ofthe Fiber Length" Pjn{3/*wi
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x: 0.1, 5 i(OeE"YA
"fiber length(m)", @x oam;hmw
y: 0, 10 qGX#(,E9;
"opticalpowers (W)", @y Z zjCS2U
frame 2gZ nrU
hx gWoUE7.3`
hy OScqf]H
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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 !%D';wQ,/
step = 20, "<{|ni}
color = blue, rmo\UCD
width = 3, I{r*Y9
"signal output" {~uTi>U
fm`V 2'Rm
;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 qTN%9!0@9
step = 20, color = red, width = 3,"residual pump" qv}ECQ
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! set_L(L_f) {restore the original fiber length } .}v" `>x
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; ------------- {=?(v`88
diagram 4: !输出图表4 AFm9"mQrw
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"TransverseProfiles" P"l'? `
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I_max :=maxr(I(pump, -1, 0, 0), I(signal_fw, -1, 0, 0)) =4co$oD}
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x: 0, 1.4 * r_co /um xY#J((-iH
"radialposition (µm)", @x (XW'1@b
y: 0, 1.2 * I_max *cm^2 @fJsRWvGq
"intensity (W/ cm²)", @y VgODv
y2: 0, 1.3 * N_Tm G_J}^B*?%v
frame DU$#tg}{
hx <n 06(9BF
hy fZ5 UFq_~s
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f: N_dop(1, x * um,0), !掺杂浓度的径向分布 H@Ot77(*
yscale = 2, Ie!&FQe2