Page 1 of 5

Journal for Studies in Management and Planning

Available at http://edupediapublications.org/journals/index.php/JSMaP/

e-ISSN: 2395-0463

Volume 02 Issue 9

September 2016

Available online: http://edupediapublications.org/journals/index.php/JSMaP/ P a g e | 62

An Observer-Based Optimal Voltage Control Scheme for

Three-Phase Three Level UPS Systems

Mr. . V. BALU *1, D. RAJESH *2,

Associate professor, Department of Electrical and Electronics Engineering#1.

M.tech Student Department of Electrical and Electronics Engineering#2.

Abstract:

Uninterrupted Power Supply (UPS) system supplies

required power in case of utility power failures. UPS

system has got significant importance in the field of

industrial electronics due to increase in technology of

power electronic devices.This paper proposes a Neutral

Point Clamped (NPC) inverter with simple Sinusoidal

Pulse Width Modulation Technique (SPWM), which is

well suitable for inverter control. The proposed system

would be subjected to fast transient response, small

steady state error and low harmonic distortion test under

different load conditions. Finally, the comparative results

for the proposed scheme and the observer based voltage

control scheme are presented to show that the proposed

scheme achieves better performance. The results are

tested and verified through MATLAB/Simulink. The

proposed methodology reduces the total cost, complexity

and THD.

Keywords: Inverter, Uninterrupted Power Supply (UPS),

Neutral Point Clamped (NPC) Inverter, Three-Phase

Inverter, Total Harmonic Distortion (THD), SinusoidalPulse

Width Modulation (SPWM).

I. INTRODUCTION

Uninterrupted power supply (UPS) systems play a vital role

in case of utility power failures. It supplies emergency

power when power failure occurs. Recently the significance

of the UPS system has been increased more and more due to

increase of critical and sensitive applications like

telecommunication systems, medical equipment,

manufacturing of semiconductor devices and data processing

systems. Such applications need high reliability and clean

power irrespective of the electric power failures and

distorted supply voltages. UPS system performance is

generally evaluated in terms of steady state /transient

response and total harmonic distortion of the output voltage

irrespective of load conditions like linear load, nonlinear

load and sudden load step change. To enhance the above

mentioned performance parameters, several control

strategies have been evolved such as adaptive control

method, proportional-integral (PI) control method, sliding

mode control scheme, model predictive control method,

feedback linearization control, deadbeat control method and

observer based voltage control method.

The conventional PI control method [2] and [3] is simple for

implementation but, the THD of the output voltage is not

reduced under nonlinear-load condition. A model predictive

control method is suggested in [4]. A load current observer

is used in place of current sensors, which resulted in the

reduction of overall system cost. However, the simulation

and experimental results do not show better performance in

terms of steady-state error and THD. In [5], the deadbeat

control method uses the state feedback information to

compensate for the voltage drop across the inductor, but this

method is sensitive as parameter mismatches. FLC is

presented in [6]. This control strategy is proposed to

achieve low THD under nonlinear load. However, it is

complex due to computations. In [1], the observer based

voltage control method is proposed. This method achieved

better performance, but involves complex design.

Therefore, this paper proposes Neutral Point Clamped

(NPC) inverter with space vector modulation technique,

which is well suitable for inverter control. The proposed

system would be subjected to fast transient response, small

steady state error and low harmonic distortion test under

different load conditions. Finally, the comparative results for

the proposed schemend the observer based voltage control

scheme are presented to show that the proposed scheme

achieves better performance. The results would be tested and

verified through Matlab/Simulink. The proposed

methodology reduces the total cost, complexity and THD.

Fig. 1. Three phase NPC inverter.

II. 3-LEVEL NPC INVERTER

Neutral Point Clamped (NPC) or Diode-Clamped inverter is

a well-known topology which is widely used in industrial

applications [7]. Fig .1 shows the structure of a 3-level three- phase NPC. It needs one DC source as input as shown in Fig

.1. Clamping diodes of this topology results in an additional

zero voltage at the output. There are 4 switches in each leg

of a 3-level NPC so, a total number of 2

4 =16 switching

states may be possible. By ignoring invalid switching states

(the ones leading to a open-circuit or short-circuit in the

output) and considering the fact that in phase R (R=a,b or c)

the lower switches (S3a , S4a )are always in an contradictory

state with respect to the upper switches (S1a ,S2a) there will be

only 3 effective switching states. Each one of these three

Page 2 of 5

Journal for Studies in Management and Planning

Available at http://edupediapublications.org/journals/index.php/JSMaP/

e-ISSN: 2395-0463

Volume 02 Issue 9

September 2016

Available online: http://edupediapublications.org/journals/index.php/JSMaP/ P a g e | 63

states which aredenoted as 0, 1 and 2 and their respective

voltages in the output are given in Table I.

State ―1‖ gives a zero voltage by using clamping diodes to

connect the neutral point (O) to the output. In the similar

manner state ―2‖ (―0‖) gives + dc (-

vdc

) by applying voltage

TABLE I

SWITCHING STATES OF NPC INVERTER

2 2

of capacitor C1 (reverse voltage of C2) to the output. As an

illustration, Fig. 2 Shows how switching state ―2‖ generates

a positive (+ vdc

) voltage at the phase output (v ). As

2

ao

stated earlier, the only change between 3- level NPC and the

conventional 2- level full-bridge inverter is clamping diodes.

For each leg of an n- level NPC, there would be (n −

1)(n − 2) clamping diodes and there would be (n − 1)DC- link capacitors. Since these capacitors didvide the input

voltage (vdc ) among themselves, nominal voltage rating of

each of them them would be Vdc/ (n-1) as well as that of

each switches. But in case of an n-level (n > 3) NPC

inverter, clamping diodes will have different voltage ratings

because different reverse voltages might be given to

them [8]. 3-level output waveform of this inverter gives

high quality output but switching technique is another

factor that has to be taken in to account.

(a)

(b)

Fig.2. Operating principle of three level NPC. (a)

Conducting path. (b). Corresponding output voltage.

There are three main switching techniques:

1- Carrier-based methods, 2- Selective Harmonic

Modulation (SHE) and 3- Space-Vector Modulation (SVM).

In general, SVM method is superior and advanced when

compared to the other methods. In the following section a

generalized SVM technique has been proposed.

III. SYSTEM CONFIGURATION

The proposed three level inverter with load consists of

voltage source inverter. The inverter model connected to the

load as shown in Fig 3. This is controlled to produce the

sinusoidal output. Three level SVPWM which is based on

orientation of reference point in terms of hexagon line is

proposed to lower the harmonic contents in the output

voltage.

Fig.3. Block diagram of the proposed NPC model.

Each leg of 3-level inverter have switching states of 0,1 or 2.

So, 27 switching states can be generated by this inverter.

Each one of these switching states can be denoted by a

number abc where abc ∈ {0,1,2} which is well explained in

[14]. Combination of some switches leads to identical

vectors known as redundant switching states. All 27

switching states results in producing only 19 different

voltage vectors due to redundant switching states. All the 19

voltage vectors and their respective switching states of a 3-

level NPC are represented in table II.

By using parks transformation three phase (abc) voltage

vectors is converted to two phase (αβ) plane. On connecting

these points a hexagram would be obtained which is SVM

diagram of 3-level NPC shown in Fig;4.

Switching

states S1a

S2a

S3a

S4a Inverter

Terminal

Voltage

(Va)

2 On On Off Off Vdc/2

1 Off On On Off 0

0 Off Off On On -Vdc/2

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Journal for Studies in Management and Planning

Available at http://edupediapublications.org/journals/index.php/JSMaP/

e-ISSN: 2395-0463

Volume 02 Issue 9

September 2016

Available online: http://edupediapublications.org/journals/index.php/JSMaP/ P a g e | 64

TABLE II

THD(%) COMPARISON OF PROPOSED MODEL AND

EXISTING MODEL

Model Step

change in

load

Unbalanced

load

Nonlinear

load

Observer

based

voltage

control

model

2.74 4.69 35.28

Proposed

model

1.57 1.59 8.25

IV. CONTROL DESIGN OF THREE LEVEL

INVERTER

For industrial converters applications the sinusoidal PWM

technique is the most popular. In the general principle of

SPWM, a carrier wave of frequency fc is compared with the

fundamental frequency f sinusoidal modulating wave and

the points of intersection indicates the switching points of

power devices[9]. There are 8 switching states in the

traditional three phase two level inverter and there are 27

switches states in three level inverter. Three level pulse

width modulated waveforms can be produced by sine carrier

PWM. Sine carrier PWM is generated by comparing the

three reference control signals with two triangular carrier

waves [10] [11]. The block diagram of the proposed

controller is shown in Fig:4.

Fig.5. Simulation results of the proposed NPC model under

load step change —First: Load output voltages (V), Second:

Loadoutputcurrents(IL).

Fig:4. Block diagram of the controller

Vdc

Fig.6. Simulation results of the observer based voltage

control model under load step change —First: Load output

voltages (V ), Second: Load output currents (IL).

Voi= , Vre, i>Vtri

,1

=0, Vtr ,1>Vref , i>Vtri , 2, where i = a, b or c

= −

Vdc

, V , 2>V , i

2

tri

ref

The three reference control signals are in a phase shift of

1200 each other with same amplitude. Two carrier waves are

in phase each other with dc offset voltage.

.

V. SIMULATION RESULTS AND DISCUSSION

Simulation was carried out with the help of ―MATLAB‖.

The proposed technique is carried out under different

conditions (i.e., load step change, unbalanced load, and

nonlinear load) to clearly represent its merits. The resistive

load is subjected to both the load step change condition and

the unbalanced load condition (i.e., phase B opened) to

check the capability of the proposed scheme when the load

is suddenly disconnected. To further test the robustness of

the proposed technique all load conditions such as load step

change, unbalanced load, and nonlinear load are considered.

Fig.7. Simulation results of the proposed NPC model under

unbalanced load (i.e., open phase) —First: Load output

voltages (V ), Second: Load output currents (IL).