IP Library › Granted Patent US 10,404,215
Granted Patent B2
US 10,404,215 · App. 15/918,115 · Granted Sep 3, 2019

Synchronized multiple channel lock-in amplifier

Inventors: Holger Motzkau (Solna, SE); Lars Andreas Rydh (Täby, SE)
H03F1/02G01R19/2509H03F3/04H03M1/00G01R19/0053H03F2200/171H03F2200/372H03M1/18
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Quick Facts
Patent No.
US 10,404,215
App. No.
15/918,115
Granted
Sep 3, 2019
Kind
B2
Abstract

The disclosure relates to a lock-in amplifier comprising a plurality of channels (CH 1 -CH N ), wherein each channel of the plurality of channels (CH 1 -CH N ) is configured to receive an input signal (S in1 -S inN ) and generate at least one output signal (S out1 -S outN ), a synchronization unit ( 110 ) configured to synchronize the generated output signals (S out1 -S outN ) of the plurality of channels (CH 1 -CH N ), an aggregation module ( 150 ) configured to receive the generated output signals (S out1 -S outN ) and generate an aggregated signal (S agg ) based on the generated output signals (S out1 -S outN ).

Claims (30)

1. A lock-in amplifier comprising:

a plurality of channels (CH 1 -CH N ), wherein each channel of the plurality of channels (CH 1 -CH N ) is configured to receive an input signal (S in1 -S inN ) and generate an output signal (S out1 -S outN ),

an aggregation module ( 150 ) configured to receive the generated output signals (S out1 -S outN ), and generate an aggregated signal (S agg ) based on the generated output signals (S out1 -S outN ),

a synchronization unit ( 110 ) configured to synchronize the generated output signals (S out1 -S outN ) of the plurality of channels (CH 1 -CH N ),

wherein each channel comprises at least:

a processing module ( 122 , 132 , 142 ) configured to receive a discrete input signal (S d1 -S dN ) and generate a processed signal (S p1 -S pN ), and

an output module ( 123 - 143 ) configured to receive the processed signal (S p1 -S pN ) and generate the output signal (S out1 -S outN ),

wherein the synchronization unit ( 110 ) is configured to further synchronize any of a selection of the generation of discrete input signals (S d1 -S dN ) of the plurality of channels (CH 1 -CH N ) and the generation of processed signals (S p1 -S pN ) of the plurality of channels (CH 1 -CH N ).

2. The lock in amplifier according to claim 1 , wherein the output module ( 123 , 133 , 143 ) of each channel is configured to:

generate the output signal (S out1 -S outN ) by calculating an average based on the processed signal (S p1 -S pN ), and

wherein the synchronization unit ( 110 ) is further configured to trigger the output modules ( 123 , 133 , 143 ) of each channel to generate the output signals (S out1 -S outN ) synchronously.

3. The lock in amplifier according to claim 2 , wherein the output module ( 123 , 133 , 143 ) of each channel is configured to:

calculate the average by filtering the processed signal (S p1 -S pN ) by an averaging filter (F average ), wherein the averaging filter (F average ) is configured to generate the output signal (S out1 -S outN ) based on a section of the processed signal (S p1 -S pN ) falling within a time window,

wherein the synchronization unit ( 110 ) is further configured to control the output modules ( 123 , 133 , 143 ) to filter the processed signals using the same time window.

4. The lock in amplifier according to claim 3 , wherein the synchronization unit ( 110 ) is further configured to control the output modules to filter the processed signals using the time window which is aligned to a first multiple of full periods of a common reference signal.

5. The lock in amplifier according to claim 1 , wherein the output module ( 123 - 143 ) of each channel is configured to:

generate the output signal (S out1 -S outN ) as the processed signal (S p1 -S pN ).

6. The lock in amplifier according to any of claims 1 - 5 , further comprising an input module ( 121 , 131 , 141 ) configured to receive the input signal (S in1 -S inN ) and generate a discrete input signal (S d1 -S dN ), wherein the input module ( 121 , 131 , 141 ) of each channel is configured to:

generate the discrete input signal (S d1 -S dN ) by sampling the input signal (S in1 -S inN ),

wherein the synchronization unit ( 110 ) is further configured to trigger the input modules to sample the input signals synchronously.

7. The lock in amplifier according to any of claims 1 - 5 , wherein the processing module ( 122 , 132 , 142 ) of each channel is configured to:

generate the processed signal (S p1 -S pN ) by mixing the discrete input signal (S d1 -S dN ) with a channel reference signal for the channel to form a mixed signal (S mix1 -S mixN ),

wherein the synchronization unit ( 110 ) is further configured to generate channel reference signals for each channel based on a common reference signal.

8. The lock in amplifier according to claim 7 , wherein the processing module ( 122 , 132 , 142 ) of each channel is further configured to:

generate the processed signal (S p1 -S pN ) by low-pass filtering the mixed signal (S mix1 -S mixN ),

wherein the synchronization unit ( 110 ) is further configured to trigger the processing modules to low-pass filter the mixed signals synchronously.

9. The lock in amplifier according to any of claims 1 - 5 , wherein the processing module ( 122 , 132 , 142 ) of each channel is configured to:

generate the processed signal (S p1 -S pN ) as the discrete input signal (S d1 -S dN ).

10. The lock in amplifier according to claim 9 , wherein generating the processed signal (S p1 -S pN ) further comprises low-pass filtering the discrete input signal (S d1 -S dN ),

wherein the synchronization unit ( 110 ) is further configured to trigger the processing modules to low-pass filter the discrete input signals synchronously.

Priority Claims (1)
SE 1750302 · Mar 15, 2017 · national
Continuity (1)
Related Publication 20180269837A1 · Sep 20, 2018
Cited By (2)
US 12,287,390 US 12,429,547