IM7585A982-01.pdf - 第282页

272 测试精度 3 求出 Yo 根据测量条件与精度规格 Yo k = 30 Yo r = 3×10 (-0.046P+α) P = -10 (测量信号电平 [dBm] ) α = -0.4 F = 50 (测量频率 [MHz] ) Yo 如下所示 : Yo = Yo k + Yo r +0.15× F = 30+3×10 (-0.046×(-10)-0.4) +0.15×50 = 40.94 [µS] 4 根据 Zs 、 Y o 与测…

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272
测试精度
3
求出
Yo
根据测量条件与精度规格
Yok = 30
Yor = 3×10
(-0.046P+α)
P = -10
(测量信号电平
[dBm]
α = -0.4
F = 50
(测量频率 [MHz]
Yo
如下所示
Yo = Yok+Yor+0.15×F
= 30+3×10
(-0.046×(-10)-0.4)
+0.15×50
= 40.94 [µS]
4
根据
Zs
Yo 与测量值
Zx
求出
Eb
Eb
Zs
Zx
Yo Zx= +
×100
= ×
×
51 41
1000
1
50
40 94
1000000
50 100
..
= (0.001028+0.002025)×100
= 0.3075
5
根据
Ea
Eb
求出
Z
θ
的精度
Z
精度
= ±(Ea+Eb) [%]
= ±0.851 [%]
θ
精度
= ±0.58×(Ea+Eb) [°]
= ±0.493°
274
测试精度
6
根据
Ea
Eb
求出
Z
θ
的精度
Z
精度
= ±(Ea+Eb) [%]
= ±1.18 [%]
θ
精度
= ± 0.58×(Ea+Eb) [°]
= ±0.681°
7
求出
Z
θ
的可获取值的范围
Z min.
.
.
=94 292 1
118
100
93 179
Z max.
.
.+
=94 292 1
118
100
95 405
θmin = 88.25 - 0.681 = 87.569°
θmax = 88.25 + 0.681 = 88.931°
8
根据
Z
θ
的范围求出
Ls
的可获取值的范围
(有关 Ls 的计算公式,请参照附录 1 测量参数与运算公式(第附 1页)
. . . . .
-1.23%
Ls
Z
nHmin
minsin min
=
×
=
θ
ω
148.161
. . . .
+1.21%
Ls
Z
nHmax
maxsin max
=
×
=
θ
ω
151.815
ω
= 2×
π
×
f
f
为频率
[Hz]
9
Ls
的精度为
-1.23% +1.21%