| Literature DB >> 30072659 |
Paolo Di Barba1, Teodor Gotszalk2, Wojciech Majstrzyk3, Maria Evelina Mognaschi4, Karolina Orłowska5, Sławomir Wiak6, Andrzej Sierakowski7.
Abstract
In this paper we present the numerical and experimental results of a design optimization of electromagnetic cantilevers. In particular, a cost-effective technique of evolutionary computing enabling the simultaneous minimization of multiple criteria is applied. A set of optimal solutions are subsequently fabricated and measured. The designed cantilevers are fabricated in arrays, which makes the comparison and measurements of the sensor properties reliable. The microfabrication process, based on the silicon on insulator (SOI) technology, is proposed in order to minimize parasitic phenomena and enable efficient electromagnetic actuation. Measurements on the fabricated prototypes assessed the proposed methodological approach.Entities:
Keywords: SOI-based prototyping; active cantilevers; electromagnetically actuated cantilevers; multiobjective optimization; nanometrology
Year: 2018 PMID: 30072659 PMCID: PMC6111794 DOI: 10.3390/s18082533
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Design variables of the cantilever (black symbols) and schematic representation of the electromagnetic actuation by means of the Lorentz force (red lines).
Variation range for the design variables (units in µm).
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| Lower bound | 20 | 100 | 50 | 100 |
| Upper bound | - | 600 | 100 | 150 |
Figure 2The scanning electron microscope (SEM) image of the cantilever matrix after three technological steps (inter-operative control).
Figure 3The scanning electron microscope (SEM) image of the final structure. Scanning parameters of the image. High Voltage (HV) = 10 kV; Working Distance (WD) = 5.7 mm; Horizontal Field of View (HFW) = 2.91 mm.
Figure 4The high concentration of p dopant layer simulation result for the silicon on insulator (SOI) cantilever. Red and green curves represent two methods of doping concentration calculation.
Single-objective optimization Opt1k results.
| Δ | ||||||||
|---|---|---|---|---|---|---|---|---|
| Initial | 20.0 | 500 | 50.0 | 100 | 4.32 × 10−2 | 8.00 | 925 | 470 |
| Opt1k | 21.1 | 569 | 53.0 | 114 |
| 6.18 | 1482 | 512 |
| Opt1f | 24.6 | 210 | 64.6 | 123 | 0.726 |
| 67.6 | 138 |
| Opt1z | 22.0 | 568 | 63.9 | 128 | 3.25 × 10−2 | 6.21 |
| 478 |
| Opt1R | 47.6 | 211 | 80.7 | 119 | 1.39 | 45.2 | 34.3 |
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Bi-objective optimization results.
| Δ | ||||||||
|---|---|---|---|---|---|---|---|---|
| Initial | 20.0 | 500 | 50.0 | 100 | 4.32 × 10−2 | 8.00 | 925 | 470 |
| Opt2kR | 24.1 | 557 | 62.3 | 110 |
| 6.45 | 1171 |
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| Opt2fz | 21.0 | 490 | 55.4 | 136 | 4.82 × 10−2 |
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| 438 |
| Opt2fR | 60.9 | 210 | 86.1 | 135 | 1.79 |
| 30.3 |
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| Opt2zR | 27.2 | 569 | 57.7 | 111 | 3.99 × 10−2 | 6.18 |
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Tri-objective optimization Opt3 results.
| Δ | ||||||||
|---|---|---|---|---|---|---|---|---|
| Initial | 20.0 | 500 | 50.0 | 100 |
| 8.00 |
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| Final | 24.0 | 562 | 68.1 | 112 |
| 6.33 |
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Figure 5(a) example of manufactured cantilever array consisting of four cantilevers. Cantilevers 1 and 3 (from left to right) correspond to the initial design, while 2 and 4 are the optimal cantilevers after optimizations Opt2fz and Opt3. (b) the resonance response of the manufactured cantilevers.
Measurements on the initial cantilever.
| Measured Quantities | Computed Quantities | |||||
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| 1.89 | 6382 | 22.2 | 0.051 | 0.308 | 9.63 | 175 |
| 2.26 | 6386 | 22.3 | 0.053 | 0.313 | 9.79 | 217 |
| 1.88 | 6633 | 23.4 | 0.060 | 0.319 | 9.98 | 187 |
| 2.26 | 6634 | 23.4 | 0.055 | 0.306 | 9.55 | 206 |
| 1.88 | 6461 | 22.9 | 0.057 | 0.319 | 9.96 | 187 |
| 2.26 | 6502 | 22.9 | 0.056 | 0.315 | 9.84 | 219 |
| 1.88 | 6787 | 23.9 | 0.060 | 0.312 | 9.76 | 179 |
| 2.26 | 6799 | 24.6 | 0.064 | 0.318 | 9.93 | 223 |
Measurements on the Opt2fz and Opt3 cantilever.
| Measured Quantities | Computed Quantities | ||||||
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| Opt2fz, array1 | 2.16 | 5975 | 23.8 | 0.058 | 0.328 | 7.13 | 110 |
| Opt2fz, array2 | 2.15 | 5819 | 25.3 | 0.063 | 0.336 | 7.30 | 115 |
| Opt3, array1 | 1.74 | 5008 | 21.2 | 0.046 | 0.338 | 9.60 | 160 |
| Opt3, array2 | 1.74 | 5205 | 22.3 | 0.038 | 0.294 | 8.35 | 121 |
Figure 6Results of the electromagnetic actuation of the optimal cantilevers (a) results recorded in the low frequency region (100–1000 Hz) and (b) in resonance. The experiments were performed under uniform 317 mT magnetic field.