Ensuring the Reliability and EMC by Modal Reservation: A Brief History and Recent Advances
Abstract
:1. Introduction
2. The History of MR
3. Recent Research on RE from PCBs with MR
4. Comparative Analysis of REs from PCBs with MR under Climate Impacts
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Abbreviations
CC | Central conductor |
EMC | Electromagnetic compatibility |
EMI | Electromagnetic interference |
MR | Modal reservation |
OC | Open circuit |
PCB | Printed circuit board |
RE | Radiated emissions |
SC | Short circuit |
USP | Ultrashort pulses |
VNA | Vector network analyzer |
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No. | Method | Reliability | EMC | Stability after Failure | Cost | Ease of Implementation |
---|---|---|---|---|---|---|
1 | Cold redundancy | + | − | + | + | + |
2 | Hot redundancy | + | − | − | + | − |
3 | EMI-filters | − | + | − | − | − |
4 | MR | + | + | + | + | − |
No. | RF Patent No. | Date of Publication | Title |
---|---|---|---|
1 | 2603850 | 10 December 2016 | Method of routing printed conductors in circuits with MR |
2 | 2603851 | 10 December 2016 | Method of routing printed conductors with additional dielectricin circuits with MR |
3 | 2603843 | 10 December 2016 | Method of modal reservation of PCBs |
4 | 2762336 | 20 December 2021 | Method of tracing a double-sided PCB for circuits with MR |
5 | 2732607 | 25 September 2020 | Method of single MR of meander turns |
6 | 2752232 | 23 July 2021 | Method of routing printed conductors with additional dielectricin circuits with double MR |
7 | 2752233 | 23 July 2021 | Method of routing printed conductors on two-layered PCBs outside and inside the signal layers for circuits with reservation |
8 | 2779536 | 8 September 2022 | Method of routing printed power conductors in circuits with MR |
9 | 2614156 | 23 March 2017 | Method of arranging the outer components on PCBs with MR |
10 | 2693838 | 5 July 2019 | Method of assembling non-molded radioelectronic components on PCBs with MR |
11 | 2624637 | 5 July 2017 | Method of arranging the inner components on the PCBs with MR |
12 | 2603848 | 10 December 2016 | Method of modal reservation in flat cables |
13 | 2663230 | 2 August 2018 | Method of triple MR in multilayered PCBs |
14 | 2738955 | 21 December 2020 | Method of triple MR of PCB conductors |
15 | 2751672 | 15 July 2021 | Method of arranging printed conductors in circuits with MR |
16 | 2754078 | 26 August 2021 | Method of arranging multilayer PCBs with MR outside and inside the signal layers |
17 | 2770516 | 18 April 2022 | Method of switching circuits with double MR after failures |
18 | 2767190 | 16 March 2022 | Method of switching circuits with triple MR after failures |
No. | Reference | Research | Notes |
---|---|---|---|
1 | [42] | New algorithm able to give accurate results with less computational costs to obtain the far field electric intensity from a test structure with MR | Comparison of the results of the proposed algorithm with those obtained using the electrodynamic approach (MoM) showed good consistency |
2 | [43] | Testing the proposed algorithm on wires with dielectric insulation | When increasing the dielectric permittivity, the wave impedance of a single wire decreased and the current amplitudes increased when compared to values from a wire without insulation |
3 | [44] | Obtaining the RE from MR-based PCBs using the electrodynamic approach (FDTD) | Using MR reduced RE from PCBs |
4 | [45] | Analysis of the MR implementation effect on PCB RE and comparing the results of the proposed algorithm with those obtained using FDTD | MR application reduced RE from PCBs, proven by two different approaches |
5 | [59] | Obtaining the frequency dependences of the S-parameters of PCB prototypes with MR experimentally and comparing the results with those obtained using TALGAT software | MR did not affect the useful signal and the compared results showed good agreement, with an average difference between them being up to 5 dB |
6 | [60] | Obtaining the frequency dependences of the S-parameters of PCB prototypes with MR after failure experimentally and comparing the results with those obtained using TALGAT software | The level of transmission ratio for the board with MR was lower than for the board without it even after failure, without affecting the useful signal, except some frequencies of the studied domain, due to the frequency shift |
7 | [63] | The RE levels from PCBs with MR were estimated before and after failure experimentally up to 2 GHz in a classical TEM-cell | The level of RE for the board with MR was lower than for the board without it even after failures, except at some frequencies of the studied domain, due to the frequency shift |
8 | [64] | The RE levels from PCBs with MR were estimated before and after failure experimentally up to 5 GHz in a Mini-TEM-cell | The possibility of using the MR layout and tracing approach was experimentally proven up to 5 GHz to both increase the reliability and ensure the electromagnetic compatibility, in terms of conducted emissions as well as radiated emissions |
9 | [65] | Obtaining the frequency dependences of the S-parameters of PCB prototypes with MR under climate impacts experimentally | The level of the transmission ratio for the board with MR was lower than for the board without it. Meanwhile this reduction did not affect the useful signal. Moreover, all S-parameters of the prototypes decreased with increasing temperature and increased with decreasing temperature compared to the results obtained at room temperature over the entire frequency range, except for the resonance frequencies |
10 | [66] | Obtaining the frequency dependences of the S-parameters of PCB prototypes with MR after short circuit failure under climate impacts experimentally | Radioelectronic devices which used the MR layout and tracing approach worked under any climate condition even after short circuit failure, which improved their reliability and immunity against EMI |
11 | [67] | Obtaining the frequency dependences of the S-parameters of PCB prototypes with MR after open circuit failure under climate impacts experimentally | Radioelectronic devices which used the MR layout and tracing approach worked under any climate condition even after open circuit failure, which improved their reliability and immunity against EMI |
PCB | Δavg % | Near end ΔNavg, % | Far end ΔFavg, % |
---|---|---|---|
Without MR | ∑((U−50(f) − U23(f))/U23(f) %)/N | −0.8 | 3.1 |
∑((U150(f) − U23(f))/U23(f) %)/N | 3.7 | −6.0 | |
With MR | ∑((U−50(f) − U23(f))/U23(f) %)/N | 1.6 | 0.7 |
∑((U150(f) − U23(f))/U23(f) %)/N | 6.0 | −6.3 | |
With MR-SC | ∑((U−50(f) − U23(f))/U23(f) %)/N | 2.0 | 5.2 |
∑((U150(f) − U23(f))/U23(f) %)/N | 7.8 | −6.6 | |
With MR-OC | ∑((U–50(f) − U23(f))/U23(f) %)/N | 2.7 | 3.9 |
∑((U150(f) − U23(f))/U23(f) %)/N | 2.7 | −7.0 |
PCB, Δavg % | Temperature | Near end ΔNavg, % | Far end ΔFavg, % |
---|---|---|---|
MR-Without MR ∑((UMR(f) − UNOMR(f))/UNOMR(f) %)/N | 23 | −1.9 | −18.0 |
−50 | −0.9 | −17.2 | |
150 | −2.6 | −18.4 | |
With MR SC-With MR ∑((USCMR(f) − UMR(f))/UMR(f) %)/N | 23 | 6.3 | −5.3 |
−50 | 7.6 | −4.4 | |
150 | 9.3 | −5.3 | |
With MR OC-With MR ∑((UOCMR(f) − UMR(f))/UMR(f) %)/N | 23 | 17.3 | 8.8 |
−50 | 18.9 | 8.5 | |
150 | 12.4 | 8.4 |
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Alhaj Hasan, A.; Gazizov, T.R. Ensuring the Reliability and EMC by Modal Reservation: A Brief History and Recent Advances. Symmetry 2022, 14, 2466. https://doi.org/10.3390/sym14112466
Alhaj Hasan A, Gazizov TR. Ensuring the Reliability and EMC by Modal Reservation: A Brief History and Recent Advances. Symmetry. 2022; 14(11):2466. https://doi.org/10.3390/sym14112466
Chicago/Turabian StyleAlhaj Hasan, Adnan, and Talgat Rashitovich Gazizov. 2022. "Ensuring the Reliability and EMC by Modal Reservation: A Brief History and Recent Advances" Symmetry 14, no. 11: 2466. https://doi.org/10.3390/sym14112466
APA StyleAlhaj Hasan, A., & Gazizov, T. R. (2022). Ensuring the Reliability and EMC by Modal Reservation: A Brief History and Recent Advances. Symmetry, 14(11), 2466. https://doi.org/10.3390/sym14112466