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access icon openaccess Designing a laboratory setup for experimenting with smart metering for smart grid applications: technical challenges

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References

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      • 6. Cooper, D., Jeans, T.: ‘Narrowband, low data rate communications on the low-voltage mains in the CENELEC frequencies – part I: noise and attenuation’, IEEE Trans. Power Deliv., 2002, 17, (3), pp. 718723.
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      • 3. Palensky, P., Van Der Meer, A.A., López, C.D., et al: ‘Cosimulation of intelligent power systems: fundamentals, software architecture, numerics, and coupling’, IEEE Ind. Electron. Mag., 2017, 11, (1), pp. 3450.
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      • 4. Palensky, P., Member, S., Van Der Meer, A.A., et al: ‘Applied co-simulation of intelligent power systems: implementing hybrid simulators for complex power systems’, IEEE Ind. Electron. Mag., 2017, 11, (2), pp. 621.
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      • 8. Products and services – microinverters|enphase’, Availabe at https://enphase.com/en-uk/products-and-services/microinverters/family, accessed 12 March 2020.
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      • 2. Müller, S.C., Georg, H., Nutaro, J.J., et al: ‘Interfacing power system and ICT simulators: challenges, state-of-the-art, and case studies’, IEEE Trans. Smart Grid, 2018, 9, (1), pp. 1424.
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      • 5. EN 50065-1: ‘Signalling on low-voltage electrical installations in the frequency range 3 to 148.5 kHz – part 1: general requirements, frequency bands and electromagnetic disturbances’, 2011.
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      • 1. Hamdan, A., Cadoux, F., Collet, C.: ‘Designing a laboratory setup to experiment with smart metering for smart low voltage grid applications’. Proc. CIRED, Madrid, Spain, June 2019, pp. 15.
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      • 7. Vasca, F., Luigi, I.: ‘Pulse-width modulation’, in ‘Dynamics and control of switched electronic systems’ (Springer, London, 2012), pp. 2562.
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