(* *g1L$FBG
Demo for program"RP Fiber Power": thulium-doped fiber laser, ASW4,% cl
pumped at 790 nm. Across-relaxation process allows for efficient <Nex8fiJ9
population of theupper laser level. R4b-M0H
*) !(* *)注释语句 -Q$b7*"z(
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diagram shown: 1,2,3,4,5 !指定输出图表 ==N` !+
; 1: "Powersvs. Position" !分号是注释;光纤长度对功率的影响 !hCS#'
; 2:"Variation of the Pump Power" !泵浦光功率变化对信号输出功率的影响 P-'_}*wxi
; 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 ?;
[ T
; 4:"Transverse Profiles" !横向分布,横坐标为半径位置 s~J=<)T*6
; 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 &~#iIk~%
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include"Units.inc" !读取“Units.inc”文件中内容 Ky kSFB
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include"Tm-silicate.inc" !读取光谱数据 VD$Eb
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; Basic fiberparameters: !定义基本光纤参数 RN[]Jt#6
L_f := 4 { fiberlength } !光纤长度 \jyjQ,v)
No_z_steps := 50 {no steps along the fiber } !光纤步长,大括号{ }是注释,相当于备注 B3mS]
r_co := 6 um { coreradius } !纤芯半径 3]/.\(2
N_Tm := 100e24 { Tmdoping concentration } !纤芯Tm离子掺杂浓度 ;
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; Parameters of thechannels: !定义光信道 -[DWM2C$K4
l_p := 790 nm {pump wavelength } !泵浦光波长790nm S`iR9{+&
dir_p := forward {pump direction (forward or backward) } !前向泵浦 ES}. xZ#~
P_pump_in := 5 {input pump power } !输入泵浦功率5W NZk&JND
w_p := 50 um {radius of pump cladding } !包层泵浦相应的半径 50um P~RhUKfd
I_p(r) := (r <=w_p) { pump intensity profile } !泵浦光强度分布
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loss_p := 0 {parasitic losses of pump wave } !泵浦光寄生损耗为0 AW~"yI<
]^K;goQv
l_s := 1940 nm {signal wavelength } !信号光波长1940nm y+U83a[L*
w_s := 7 um !信号光的半径 t> .
Fl-
I_s(r) := exp(-2 *(r / w_s)^2) !信号光的高斯强度分布 7,'kpyCj
loss_s := 0 !信号光寄生损耗为0 [i7YVwG4
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R_oc := 0.70 {output coupler reflectivity (right side) } !输出耦合反射率 ~W03{9(Vp8
Izo! rC
; Function for defining themodel: !定义模型函数,一定要有calc命令,否则函数只会被定义,但不会被执行 cin2>3Z$
calc ;YyXT"6/p
begin -M4p\6)Ge
global allow all; !声明全局变量 m\vmY
set_fiber(L_f, No_z_steps, ''); !光纤参数 2f{T6=SK
add_ring(r_co, N_Tm); ONX8}Ob~
def_ionsystem(); !光谱数据函数 K
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pump := addinputchannel(P_pump_in, l_p,'I_p', loss_p, dir_p); !泵浦光信道 CQ^3v09N;~
signal_fw := addinputchannel(0, l_s, 'I_s',loss_s, forward); !前向信号光信道 9+qOP>m
signal_bw := addinputchannel(0, l_s, 'I_s',loss_s, backward); !后向信号光信道 U)D[]BVg
set_R(signal_fw, 1, R_oc); !设置反射率函数 |`O7nOM
finish_fiber(); B,vOsa"x6`
end; H&4~Uo.5
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; Display someoutputs in the Output window (on the right side): !在Output aera区域显示输出 _A+w#kiv>
show "Outputpowers:" !输出字符串Output powers: OP! R[27>
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) -rSIBc:$8
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) $_D6_|HK
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; ------------- $t/rOo9cV
diagram 1: !输出图表1 |<qs
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"Powers vs.Position" !图表名称
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x: 0, L_f !命令x: 定义x坐标范围 2/7_;_#vJ%
"position infiber (m)", @x !x轴标签;@x 指示这些字符串沿坐标轴放置 |/`%3'4H
y: 0, 15 !命令y: 定义y坐标范围 T!2=*~A
y2: 0, 100 !命令y2: 定义第二个y坐标范围 D'_Bz8H!p
frame !frame改变坐标系的设置 <l,o&p,>|c
legpos 600, 500 !图行在图表窗口中的位置(相对于左上角而言) +wO#'D
hx !平行于x方向网格 Q2|p\rO
hy !平行于y方向网格 T:iP="?{
r8/l P}(F
f: P(pump, x), !命令f: 定义函数图;P(pump, x)函数是计算x位置处的泵浦光功率 7 sFz?`-
color = red, !图形颜色 M+P$/Wk
width = 3, !width线条宽度 `>lzlEhKV
"pump" !相应的文本字符串标签 BiwieF4x
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 !>$4]FkV
color = blue, 5|8^9Oe5
width = 3, s!+
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"fw signal"
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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 h9s >LY
color = blue, GqKsK
r2%
style = fdashed, ExBUpDQc
width = 3, {zLhiUH
a0
"bw signal" ]j<Bo4~Il
+A8j@d#:
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 B4Y(?JTx
yscale = 2, !第二个y轴的缩放比例 *OjKcs
color = magenta, 'lz"2@4{
width = 3, e [h8}F
style = fdashed, Z|lU8`'5
"n2 (%, right scale)" BU Z
_)
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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 K=::)/{P
yscale = 2, 23F/\2MSG
color = red, .="bzgC3A
width = 3, *e>]~Z,
style = fdashed, G3i !PwW
"n3 (%, right scale)" / ~%KVe
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; ------------- o{qr!*_3
diagram 2: !输出图表2 Uz7oL8
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"Variation ofthe Pump Power" M~e0lg8
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x: 0, 10 jKIxdY:U
"pump inputpower (W)", @x LW6ZAETyL
y: 0, 10 2F{hg%
y2: 0, 100 Ws U)Y&
frame \>. LW9
hx /6uT6G+(z}
hy `4?~nbz
legpos 150, 150 =ac_,]z
d[^KL;b?6
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 Jzji&A~
step = 5, yF}OfK?0f
color = blue, |077Sf|
width = 3, fEf_F
r
"signal output power (W, leftscale)", !相应的文本字符串标签 Qj{8?lew
finish set_P_in(pump, P_pump_in) !^#jwRpeN
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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 p@!nYPr.
yscale = 2, `_I@i]i^
step = 5, h0--B]f@
color = magenta, jd]s<C3o
width = 3, b
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"population of level 2 (%, rightscale)", }U ~6^2 .,
finish set_P_in(pump, P_pump_in) k %e^kej
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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 j`'`)3f
yscale = 2, x5`br.b
step = 5, J?@DGp+t
color = red, EKEjv|_)
width = 3, (s<Dd2&.H
"population of level 3 (%, rightscale)", q\Q{sv_
finish set_P_in(pump, P_pump_in) omO
S=d!o
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?_x
q-
; ------------- yzw mT
diagram 3: !输出图表3 lt^\
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"Variation ofthe Fiber Length" `g8E1-]l
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x: 0.1, 5 w\54j)rb
"fiber length(m)", @x ;{i'#rn{
y: 0, 10 d2oh/j6`TA
"opticalpowers (W)", @y ](tx<3h
frame ?]fF3 SJk
hx 3~,d+P
hy q"O.Cbk
H gTUy[(
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 I}e3zf>
step = 20, U~h'*nV&
color = blue, P71 (
width = 3, 5>3}_
"signal output" u p.Q>28r
/{wJEuE
;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 tQZs.1=z
step = 20, color = red, width = 3,"residual pump" 3iw{SEY
}kw/W#)J
! set_L(L_f) {restore the original fiber length } G+B~Ix-
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; ------------- 8N:owK
diagram 4: !输出图表4 !d<"nx[2`
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"TransverseProfiles" VrZ>bma;
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I_max :=maxr(I(pump, -1, 0, 0), I(signal_fw, -1, 0, 0)) g{W;I_P^9
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x: 0, 1.4 * r_co /um 0sI1GhVR
"radialposition (µm)", @x 4}`
y: 0, 1.2 * I_max *cm^2 z0|&W&&D
"intensity (W/ cm²)", @y DI!V^M[~u
y2: 0, 1.3 * N_Tm e[sK@jX6
frame 66^ycZCH
hx 763+uFx^
hy [tMZ G%h
U4 13?Pe
f: N_dop(1, x * um,0), !掺杂浓度的径向分布 -(O-%
yscale = 2, lKEkXO
color = gray, Hm+ODv9
width = 3, !"e5~7
maxconnect = 1, .{;Y'Zc14S
"N_dop (right scale)" ^Rx9w!pAN
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f: I(pump, -1, x *um, 0) * cm^2, !泵浦光沿光纤径向的强度分布 Vd=yr'?
color = red, piU/&
maxconnect = 1, !限制图形区域高度,修正为100%的高度 3Tn)Z1o
width = 3, +~xnXb1
"pump" b;)~wU=
=)hVn
f: I(signal_fw, -1,x * um, 0) * cm^2, !信号光沿光纤径向的强度分布 >~K
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color = blue, 1?
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maxconnect = 1, 1 sPdz
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width = 3, Bi@&nAhn@
"signal" "5eNLqt^q
q>w)"Dd
C/(M"j M
; ------------- Q5%#^ZdsTd
diagram 5: !输出图表5 8foJ I^3
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"TransitionCross-sections" Ela-,(Glk
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I_max :=maxr(I(pump, -1, 0, 0), I(signal_fw, -1, 0, 0)) %lg=YGLQB
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x: 1450, 2050 q5>v'ZSo
"wavelength(nm)", @x z5W@`=D
y: 0, 0.6 #GJ
dZ
"cross-sections(1e-24 m²)", @y QXF
aAb=(7
frame v\`9;QV5
hx y>*xVK{D
hy `# sTmC)
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f: s12_Tm(x * nm) /1e-24, !Tm3+吸收截面与波长的关系
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color = red, 0euuT@_$
width = 3, sBV4)xM
"absorption" 0@2mXO9f"
f: s21_Tm(x * nm) /1e-24, !Tm3+发射截面与波长的关系 H5D*|42
color = blue, ?8W("W
width = 3, OLI$1d_
"emission" /x{s5P3
$ "Bh]-