| Literature DB >> 24504104 |
Alfonso García1, Carlos Morón2, Enrique Tremps3.
Abstract
This paper shows a new displacement-to-frequency transducer based on the variation of a coil inductance when a magnetic core is partially or completely inserted inside. This transducer is based on a Colpitts oscillator due its low manufacturing price, behavior and immunity to noise. A tank circuit with a configuration in parallel was used because it can be employed at lower frequencies and it enables it to make a direct analysis. The sensor has a dynamic range equal to the length of the coil. The cores can exchange sensors (coils with its ferromagnetic core) using the same electronic measuring system. In this way, with only an electronic circuit, the core sensor determines the measurement range. The obtained resolution is higher than 1/100,000, and the sensor also allows the measurement and knowing in real time the effect of vibration, thermal expansion, referred overload movements, etc.., that can occur in the structural elements of a building.Entities:
Year: 2014 PMID: 24504104 PMCID: PMC3958254 DOI: 10.3390/s140202468
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.Block diagram of the transducer.
Figure 2.(a) General scheme of a Colpitts oscillator operating as an active element; (b) Developed electronic sensor.
Characteristic of the different coils.
| 0.400 | 280 | 700 | 690 |
| 0.315 | 178 | 566 | 555 |
| 0.224 | 92.7 | 414 | 405 |
| 0.100 | 19.3 | 193 | 181 |
Figure 3.Different developed coils.
Figure 4.Sliding ferromagnetic core.
Transducer thresholds detection for different coils.
| Coil Length (mm) | Magnetic Material | Range (mm) | Frequency Range (kHz) | Precision (Hz/μm) |
|---|---|---|---|---|
| 19.3 | Steel | 19 | 102 | 5 |
| Metglas | 19 | 313 | 16 | |
| 92.7 | Steel | 93 | 96 | 1 |
| Metglas | 93 | 308 | 3 | |
| 178 | Steel | 178 | 100 | 0.5 |
| Metglas | 178 | 305 | 1.7 | |
| 280 | Steel | 280 | 95 | 0.3 |
| Metglas | 280 | 335 | 1 |
Figure 5.Calibration curve of coils with metallic glass as core and different length: (a) 19.3 mm; (b) 92.7 mm; (c) 178 mm; (d) 280 mm.
Transducer thresholds for different coils.
| 19.3 | 2.07 | 3.21 |
| 92.7 | 1.76 | 3.25 |
| 178 | 0.98 | 2.92 |
| 280 | 0.91 | 3.19 |
Figure 6.Schematic sensor positioning at the parking garage.
Figure 7.(a) Sensor response with a 280 mm length coil; (b) LVDT response under the same conditions.