JoVE Logo

Entrar

2.11 : Design Example: Strain Gauge Bridge or Wheatstone Bridge

The utilization of strain gauges as transducers for converting mechanical strain into electrical signals is a common practice in various engineering applications. These strain gauges are frequently integrated into Wheatstone bridge circuits to accurately measure parameters such as force or pressure. Within this context, each element within the circuit exhibits a resistance that undergoes subtle variations when subjected to mechanical strain. The primary objective is to convert minuscule variations in small voltage output into a more discernible voltage output, which can be conveniently read using a voltmeter.

In the engineer's capacity, the responsibilities include creating a strain gauge design and determining the necessary amplification to reflect changes in resistance accurately. This relies upon the application of Thevenin's theorem, which establishes the connection between the output voltage of the bridge circuit and variations in resistance.

The procedure starts by calculating the Thevenin voltage, which requires the initial determination of currents within both the upper and lower branches of the circuit. As a result, these computed current values are substituted into Ohm's law to derive the Thevenin voltage. Simultaneously, Thevenin resistance is determined by removing the voltage source in a simplified configuration.

The Thevenin equivalent circuit finds the bridge's output voltage through the voltage division rule. The critical outcome of this analysis enables the precise determination of the amplifier gain required for designing the circuit to operate effectively within the specified operational range.

Tags

Strain GaugeWheatstone BridgeMechanical StrainElectrical SignalsTransducersResistance VariationsVoltage OutputAmplificationThevenin s TheoremThevenin VoltageOhm s LawThevenin ResistanceVoltage Division RuleAmplifier GainCircuit Design

Do Capítulo 2:

article

Now Playing

2.11 : Design Example: Strain Gauge Bridge or Wheatstone Bridge

DC Circuit Analysis

308 Visualizações

article

2.1 : Nodal Analysis

DC Circuit Analysis

767 Visualizações

article

2.2 : Nodal Analysis with Voltage Sources

DC Circuit Analysis

922 Visualizações

article

2.3 : Mesh Analysis

DC Circuit Analysis

495 Visualizações

article

2.4 : Mesh Analysis with Current Sources

DC Circuit Analysis

1.2K Visualizações

article

2.5 : Source Transformation

DC Circuit Analysis

3.1K Visualizações

article

2.6 : Linear Circuits

DC Circuit Analysis

367 Visualizações

article

2.7 : Superposition Theorem

DC Circuit Analysis

504 Visualizações

article

2.8 : Thevinin's Theorem

DC Circuit Analysis

383 Visualizações

article

2.9 : Norton's Theorem

DC Circuit Analysis

455 Visualizações

article

2.10 : Maximum Power Transfer

DC Circuit Analysis

193 Visualizações

JoVE Logo

Privacidade

Termos de uso

Políticas

Pesquisa

Educação

SOBRE A JoVE

Copyright © 2025 MyJoVE Corporation. Todos os direitos reservados