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Research Article

An innovative Fast-Converging speed MPPT approach without oscillation for temperature varying in photovoltaic systems applications

ORCID Icon, ORCID Icon & ORCID Icon
Pages 2674-2696 | Received 29 Oct 2021, Accepted 22 Mar 2022, Published online: 14 Apr 2022
 

ABSTRACT

This paper offers an innovative maximum power point tracking (MPPT) approach for photovoltaic system under temperature varying. Basically, the innovative approach is introduced to improve tracking performance under difficult scenarios of temperature change. By far, it can be used to avoid the main shortcomings of the conventional MPPT strategies, e.g., ripple around the MPP at steady-state regime, sluggishness velocity converging, and loss of tracking direction under fast change of temperature. Also, it can be used to improve the tracking performance under low irradiance level and rapid load change. With respect to its direct control strategy based on the photovoltaic current control, it provides a quick tracking of the real MPP without steady-state fluctuations. To show the advantages and accuracy of the innovative MPPT approach, a comparison with other traditional strategies, e.g., P&O and INC techniques is investigated using simulation in MATLAB/Simulink® software under different scenarios of temperature, load, and insolation levels. In the light of the results collected, the innovative MPPT approach minimized the convergence time by five times, reduced the steady-state fluctuations to zero and improved the average tracking efficiency by 8.51% and 9.04% compared to the P&O and INC MPPT schemes, respectively.

Abbreviations

D Diode

DC Direct Current

DC-DC Direct Current-Direct Current

FF Fill factor

FL Fuzzy Logic

Ga Gate of switch

HC Hill Climbing

INC Increment of Conductance

MPP Maximum Power Point

MPPT Maximum Power Point Tracking

MPP CZ Maximum Power Point Current Zone

P&O Perturb and Observe

PV Photovoltaic

PWM Pulse Width Modulation

s Seconds

STC Standard Test Conditions

SW Switch

W Watts

List of symbols

A Diode ideality factor

Cd Voltage conversion ratio

Cin,Cout Input and output capacitors of the step-up (boost) converter, respectively [F]

d Step-up converter duty ratio

Δd Increment value of duty ratio

Eg Semiconductor band-gap energy of the photovoltaic cell [eV]

f Switching frequency [Hz]

G Solar irradiation level [W/m2]

Iph Photo generated current [A]

IMPP Photovoltaic panel current at MPP [A]

IMPP_max Maximum MPP current [A]

IMPP_min Minimum MPP current [A]

Io Photovoltaic cell reverse saturated current [A]

Iout Output current of the step-up converter [V]

Ipv Output current of photovoltaic cell [A]

Ios Reverse saturation current at Tr [A]

Isc Short circuit current [A]

I-V Current versus voltage characteristics of photovoltaic panel

Δ Ipv Variation of photovoltaic current

K Boltzmann constant (8.617×105)eV/K

ki Temperature coefficient of the short-circuit current [%/° C]

L Inductance [H]

NP,NS Parallel and series numbers of solar power cells, respectively.

PMPP(t) Instantaneous extracted power [W]

PMPPa(t) Instantaneous average available power [W]

P-I Power versus current characteristics of photovoltaic panel

PMPP Photovoltaic panel power at MPP [W]

Ppv Output power of photovoltaic panel [W]

P-V Power versus voltage characteristics of photovoltaic panel

Δ Ppv Variation of photovoltaic power

q Value of an electron charge (1.6×1019)[ C]

R Resistor [Ω]

Rin, Rout Boost converter input and output side resistances, respectively [Ω]

Rload Load resistance [Ω]

RP Parallel resistance in model of solar cell (Ω)

Rpv Photovoltaic panel resistance [Ω]

RS Series resistance in model of solar cell (Ω)

T P-n junction diode temperature [K]

Tr Temperature of cell reference [° C]

VMPP Photovoltaic panel voltage at MPP [V]

Voc Voltage of open circuit [V]

Vout Output voltage of the step-up converter [V]

Vpv Output voltage of photovoltaic cell [V]

Δ Vpv Variation of photovoltaic voltage

ηMPPT MPPT efficiency of tracking [%]

ηMPPT(avg) Average efficiency of tracking [%]

Acknowledgments

The authors acknowledge “The MathWorks Inc.” for support in MATLAB/Simulink platform setup.

Disclosure statement

No potential conflict of interest was reported by the author(s).

Data Availability Statement

The authors confirm that all relevant data are included in the article and that no supplementary information files are available.

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