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LM.2 · Measurement loading, amplifier gain and detector response

GRE · GRE Subject Test · GRE Physics · Topic 43

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43.1

Measurement loading, amplifier gain and detector response

A voltmeter 电压表 changes the circuit it measures; the reading is a divider output, not the open-circuit voltage.

Prerequisites: 14, 21, 30.

  • Calculate measurement loading from finite meter and source impedances
  • Determine simple amplifier gain and first-order filter response
  • Interpret detector efficiency, resolution, dead time 死时间 and calibration bias
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English
dead time/ded taɪm/
voltmeter/ˈvəʊltmiːtə/
43.2

Model the measurement

Model the measured circuit as a Thevenin source V_th with resistance R_th and the instrument as input resistance R_m. The reading is V_th·R_m/(R_m+R_th), with the same sign as V_th and magnitude no greater than |V_th| for positive resistances. A 10 V source with R_th=100 kΩ read by a 1 MΩ meter gives 10×(1/1.1)=9.09 V, a 9% low bias. A 10× oscilloscope probe raises the effective input resistance and divides the signal by ten; quote both effects.

43.3

Set gain and cutoff

An ideal non-inverting op-amp stage has gain 1+R2/R1; the inverting stage has −R2/R1, with the sign carried explicitly. A first-order RC low-pass has cutoff f_c=1/(2πRC); its amplitude ratio is 1/sqrt(1+(f/f_c)²) and its phase is −arctan(f/f_c). At f=f_c the amplitude is $1/\sqrt{2}$ (the −3 dB point), not one half. For R=1 kΩ and C=100 nF, f_c≈1.59 kHz.

43.4

Rate the detector

Detector efficiency ε is detected events divided by incident events; energy resolution is quoted as FWHM/E, such as 13.2 keV on a 662 keV line, about 2%. A non-paralyzable detector with dead time τ records m=n/(1+nτ) from true rate n; inverting gives n=m/(1−mτ), which fails as mτ→1. State which dead-time model you assume; paralyzable behaviour differs.

43.5

Calibrate with its limits

A linear calibration against known standards can correct offset and scale error; it does not remove noise or guarantee correction of nonlinearity. A calibration curve maps indicated to true values; interpolation between points assumes local smoothness. Report resolution and efficiency separately: sharp peaks with poor efficiency still miss events, and high efficiency with broad resolution still mixes nearby lines.

43.6

Worked method

A voltmeter of finite input resistance forms a divider with the source resistance.

$$V_m=V_{th}\frac{R_m}{R_m+R_{th}} =(12\,\mathrm V)\frac{1.0\,\mathrm{M}\Omega}{1.0\,\mathrm{M}\Omega+0.20\,\mathrm{M}\Omega}=10.0\,\mathrm V.$$
For a nonparalysable detector with observed rate m and dead time tau,
$$n=m/(1-m\tau),\qquad m\tau<1.$$
Efficiency, dead time and spectral resolution are different corrections; one cannot replace the others.

Measurement loading, amplifier gain and detector response: GRE original diagram
Measurement loading, amplifier gain and detector response: original GRE teaching diagram.
43.7

Check conditions and vocabulary

Treating the $1/\sqrt{2}$ cutoff as one half, ignoring that a finite meter reads low through the divider, or applying the non-paralyzable correction beyond its range.

dead time: The minimum interval after one recorded event during which the detector cannot record another.

input impedance 输入阻抗: The effective load a measuring instrument presents to the circuit under test.

Vocabulary Train
English
input impedance/ˈɪnpʊt ɪmˈpiːdəns/

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