Simulation and Analysis of an FMCW Radar against the UWB EMP Coupling Responses on the Wires
Abstract
:1. Introduction
2. Relevant Theory
2.1. The Coupling Theory
- is the coupling power of receiving antenna;
- is the gain of the transmitting antenna;
- is the gain of receiving antenna;
- is the working wavelength of receiving antenna;
- is the bandwidth of receiving antenna;
- is the target range between the UWB EMP and the antenna;
- is the bandwidth of the transmitting antenna of UWB EMP;
- is the loss factor in the coupling process.
2.2. Ranging Principle of the FMCW Radar
- is the difference frequency;
- is the modulation bandwidth;
- is the speed of light;
- is the modulation period;
- is the carrier frequency;
- is the velocity of the FMCW radar.
3. The Hybrid Model
3.1. The Flowchart
3.2. The Field Model
3.2.1. The Simplified Model of the FMCW Radar
3.2.2. Simulation Setup
3.3. The Circuit Model
3.3.1. The Composition of the FMCW Radar
3.3.2. The Verification of the Circuit Model
4. Results and Analysis
4.1. Field Simulation Results and Analysis
4.1.1. The Impact of the Wire Types
4.1.2. The Impact of Wire Lengths
4.1.3. The Impact of the Conductor Radius
4.1.4. The Impact of the Curvature
4.1.5. The Impact of the Wire Numbers
4.1.6. The Impact of Line Spacing
4.2. Circuit Simulation Results and Analysis
- (1)
- Injection of EMI at node 5;
- (2)
- Injection of EMI at node 6;
- (3)
- Injection of EMI at nodes 5 and 6.
4.2.1. Single-Point Injection
4.2.2. Two-Point Injection
4.2.3. The Analysis of EMI Amplification and Peak Voltage of IF Output
5. Discussion
6. Conclusions
- (1)
- UWB EMP may cause FMCW radar damage via wire coupling responses. The type, length, radius, curvature, number, and line spacing of metal wires will have an impact on the wire coupling responses, but the type of wire connections has the greatest impact on them. Under the same state, the coupling responses on a single wire are 22,000 times those on a coaxial wire. Due to the existence of crosstalk voltage between wires, it is best to bundle the multiple metal wires in the radar.
- (2)
- The EMI source can actually affect the spectral peak of the IF output. The main reason is that the UWB EMP covers a wide spectrum range. During high-power injection, it will lead to the spectral peak shift of the IF output signal, resulting in the false control signal output by the radar.
- (3)
- To effectively protect the radar from UWB EMP interference, the protection at the IF signal output shall be strengthened, a transmission wire with better shielding performance shall be selected, and the length of the transmission wire shall be shortened as far as possible.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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References | Methods | Models | Disadvantages |
---|---|---|---|
[3,4,5] | Hybrid method | The field-circuit model | Incomplete modeling |
[6,7,8,9] | Analytical method | Ideal enclosure | Unable to handle complex enclosures |
[12,17] | Numerical method | The actual structure | Unable to handle active circuits |
[16] | Experiment method | The actual structure | Expensive |
Transmitter Power | Modulation Frequency | Modulation Bandwidth | Detection Distance | Target RCS | Target Velocity |
---|---|---|---|---|---|
0.1 W | 300 kHz | 500 MHz | 5–20 m | 1 m2 | 30 m/s |
Case No. | Wire Type | Length (mm) | Radius (mm) | Curvature | Number | Line Spacing (mm) |
---|---|---|---|---|---|---|
1 | single wire/ twisted wire/ coaxial wire | 10 | 0.5 | straight | 1 | / |
2 | single wire | 6/8/10/12/14 | 0.5 | straight | 1 | / |
3 | single wire | 10 | 0.1/0.5/1 | straight | 1 | / |
4 | single wire | 10 | 0.5 | straight/ 1:2/1:3/ 1:4/1:5 | 1 | / |
5 | single wire | 10 | 0.5 | straight | 1/2/3/4/5 | 0.5 |
6 | single wire | 10 | 0.5 | straight | 3 | 0.5/1/2/3/4 |
Wire Type | Material of the Conductor | Material of the Insulator Inside | Material of the Insulator Outside | Material of the Screen |
---|---|---|---|---|
LYFY-0 qmm50 | Copper | / | Polyvinyl chloride | / |
LIFY-1 qmm | Copper | / | Polyethylene | / |
RG-58 | Copper | Polyethylene | Polyvinyl chloride | Copper |
Target Range/m | A Single Wire/dB | A Coaxial Wire/dB | ||||
---|---|---|---|---|---|---|
Node 5 Injection | Node 6 Injection | Two-Point Injection | Node 5 Injection | Node 6 Injection | Two-Point Injection | |
5 | 105 | 82 | 88 | 189 | 166 | 172 |
10 | 88 | 69 | 75 | 172 | 154 | 159 |
15 | 84 | 64 | 71 | 169 | 148 | 155 |
20 | 78 | 55 | 65 | 162 | 139 | 149 |
Target Range/m | Peak Voltage of IF Output/V | ||
---|---|---|---|
Node 5 Injection | Node 6 Injection | Two-Point Injection | |
5 | 2.478 | 5.541 | 11.500 |
10 | 0.469 | 1.241 | 2.474 |
15 | 0.304 | 0.697 | 1.561 |
20 | 0.144 | 0.248 | 0.782 |
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Chen, K.; Liu, S.; Gao, M.; Zhou, X. Simulation and Analysis of an FMCW Radar against the UWB EMP Coupling Responses on the Wires. Sensors 2022, 22, 4641. https://doi.org/10.3390/s22124641
Chen K, Liu S, Gao M, Zhou X. Simulation and Analysis of an FMCW Radar against the UWB EMP Coupling Responses on the Wires. Sensors. 2022; 22(12):4641. https://doi.org/10.3390/s22124641
Chicago/Turabian StyleChen, Kaibai, Shaohua Liu, Min Gao, and Xiaodong Zhou. 2022. "Simulation and Analysis of an FMCW Radar against the UWB EMP Coupling Responses on the Wires" Sensors 22, no. 12: 4641. https://doi.org/10.3390/s22124641