|
ARTICLE INFO |
ABSTRACT |
|
Received : June 30, 2022 Revision : July 14, 2022 Received : July 25, 2022 |
The Southeast Sumatra block produces oil and gas. Natural gas
production of 15,300 MSCF is used as fuel for turbine generators to generate
38 MW of electrical energy, while the rest is used as business products. The
application of the solar-wind system can reduce the load on the turbine
generator so that gas fuel consumption is also reduced. Five platforms have
areas that can be utilized for a solar-wind system. This study aims to
determine the amount of gas fuel consumption that can be reduced by the
solar-wind system application. The method is simulation using the HOMER
software to determine the amount of electrical energy that can be supplied
and the costs required by the solar-wind system. The components used are
found in the HOMER software and on the market. The simulation results show
that the off-grid solar-wind system can provide electricity supply of 50,235
kWh per year and reduce gas fuel consumption by 20,094 MSCF per year. The
on-grid solar-wind system can provide electricity supply of up to 81,230 kWh
per year and reducing the use of gas fuel by 32,492 MSCF per year. The
off-grid solar-wind system will increase gas sales by $132,620 per year with
NPV>0 and ROI 21%, while the on-grid system will increase gas sales by
$214,447 per year with NPV>0 and ROI 57%. Both models of solar-wind
systems have positive economic values so that they are feasible to
implement. |
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Keywords: Off-grid solar-wind;
on-grid solar-wind; gas; economic value
|
INTRODUCTION
The Southeast Sumatra block is one of the
offshore oil and gas exploration and exploitation work areas located in the Indonesian
Java Sea. This working area has 23 offshore oil platforms that function for oil
exploitation activities by operating more than 120 oil well. The geographical
location of the work area on the high seas is very suitable when utilizing
solar and wind energy as a source of electrical energy. Based on data from the
NASA database, the average solar energy received at the site is about 5
kWh/m2/day and the average wind speed is about 4 m/s (SAO, 2014).
Some platforms have an open area at the top that can receive the maximum energy
potential of sunlight and wind (Manwell, McGowan, & Rogers, 2010). In
Indonesia, the distribution of petroleum products, which are crucial
commodities, relies on maritime shipping (Surury, Syauqi, & Purwanto,
2021). The main business products carried out by this working area are oil and
natural gas. Petroleum products are processed into profitable business
products, while gas products are used as fuel for turbine generators and some
are processed into business products. The natural gas production is around 30
MMSCFD of which around 14 MMSCFD is sold to consumers as business products.
15,300 MSCF of natural gas is used as fuel for the turbine generator, and the
rest is burned through flare.
Natural gas,
which is one of the business products of the Southeast Sumatra Block, can
increase its sales volume if it is not used as fuel for turbine generators.
Solar and wind power can be used as a source of electrical energy for oil and
gas production supporting equipment, thereby reducing the electrical load from
the turbine generator. This can save gas fuel and reduce emissions generated by
the generator. Gas that is not used as fuel can be diverted to increase the
number of gas products sold, thereby increasing the company's profits. The
Southeast Sumatra block uses electricity generated by 11 units of gas turbine
generators to supply electricity. This field has 23 oil rigs, consisting of 1
process rig and 22 remote rigs. The total electricity consumption for the 23
platforms currently reaches 38 MW. Equipment that uses electricity on the
platform consists of transformers, air compressors, centrifugal pumps, rotary equipment,
welding equipment, lifting equipment, lighting lamps, navigation lamps, and
others. Each platform has a different consumption of electrical energy
depending on the number of electrical equipment on the platform. Equipment that
affects the consumption of electrical energy on the platform is divided into
two parts, namely primary equipment and secondary equipment. Primary equipment
is equipment that has a direct impact on oil and gas production, while
secondary equipment is supporting equipment that does not have a direct impact
on oil and gas production. The primary equipments on the platform include oil
well pumps, air compressors, and process fluid pumps. Secondary equipment
includes welding equipment, cranes, lighting, navigation lights, and air conditioners.
The largest consumption of electrical energy is in oil well pumping equipment,
which accounts for about 80% of electrical energy consumption on the platform.
Then the pumps for processing fluids (oil, water, gas) on the platform account
for about 10% of the electrical energy consumption. Air compressor as a source
of wind supply for pneumatic equipment consumes about 5% of electrical energy
on the bridge. Meanwhile, secondary equipment only consumes about 5% of the
electrical energy on the platform.
The
solar-wind energy system in the Southeast Sumatra Block cannot be applied to
supply electricity to primary equipment. This is due to the high risk to
production in the event of a failure in the solar-wind system. The application
of the solar-wind system is focused on secondary equipment such as lighting and
air conditioners that do not have a direct impact on oil and gas production.
Therefore, this research is focused on assessing the application of the
solar-wind system for lighting and air conditioners at each designated platform
location. The design of the solar-wind system in the Southeast Sumatra Block
can only be applied to a few platforms and is applied to equipment that does
not have a direct impact on oil production, such as lighting and air
conditioners. The area available on some of these platforms will determine the
maximum number of solar panels and wind turbines that can be installed. The
problem in this research is how much electrical load can be supplied by the
solar-wind system? How much gas fuel consumption can be reduced by implementing
a solar-wind system? What is the economic value?
Based on
previous studies, a study and modeling of the HOMER software solar-wind system
with the location of the Southeast Sumatra Block offshore oil platform in the
Java Sea region of Indonesia, where its application can reduce gas fuel
consumption and increase sales of gas products for companies that manage it
have not found.
Photovoltaic (PV) cells produce power whose magnitude depends on the
material used. A PV module is a series of several PV cells connected in series
and parallel to produce the required current and voltage (Luque & Hegedus, 2011). The
function of the PV system may vary due to fluctuations in the intensity of
solar radiation over a period of time. When the light received by the PV cell
changes, the power produced also changes (Albert, 2018).

Figure 1. PV cells
characteristic curves (Luque & Hegeus, 2011)
The PV cell characteristic curve as shown in figure 1 describes the
relationship between current, voltage and power generated by a PV module. The variation
of this curve depends on the percentage of solar radiation that hits the PV
cell panel.
(1)
The maximum power of the PV module can be calculated using equation 1.
Open circuit voltage (
) is a voltage
that has a maximum capacity when there is no current, so the power generated is
zero. Meanwhile, short circuit current (
) is the maximum
current produced by photovoltaic when there is no resistance (short circuit).
and
are the terminal output voltage and current of
the PV module at Maximum Power Point (MPP), and
is the cell efficiency factor which is a
measure of the quality of the PV cell.
There are several factors that affect the amount of power generated by
PV cells when operating, namely PV cell material, temperature, barrier,
intensity of solar radiation, and orientation (Hosseini, Moazzami, & Shahinzadeh, 2017). PV
cells can achieve different energy efficiencies depending on the materials and
manufacturing methods used, for example the efficiency of amorphous silicon
ranges from 5% to 7%, for polycrystalline silicon the efficiency does not
exceed 12% and for monocrystalline silicon the efficiency is more than 12% and
does not exceed 18% (Electronica, 2014). The PV module temperature can increase
due to the influence of environmental temperature, causing the maximum power
generated will decrease (Luque & Hegedus, 2011). The
optimal installation position of the PV module may vary according to the
position. If the location of the PV module is on the north side of the equator,
then the sun is usually in the south position and the panels must be installed
facing south. On the other hand, for module locations on the south side of the
equator, the panels must be installed facing north (Mahesh & Sandhu, 2015).
Considering that the sun moves in an arc of 1800 relative to the
Earth from east to west, the angle of elevation of the sun (γ) varies between
0-90o and the best absorption of solar radiation on the panel occurs
when the angle of incident light is 900, the energy yield can be
increased by tilting the panel towards sun, i.e. at an angle relative to the
horizontal plane. Generally, for non-adjustable panels, the angle of
inclination of the panels should be equal to the latitude of the location plus
100 (Stapleton & Neill, 2012).
The basic principle of a wind turbine is to convert mechanical energy
from the wind into rotating energy in the windmill, then the rotation of the
windmill is used to turn a generator, which will eventually produce electricity
(Chun, 2015). The
energy produced by the wind depends on the density of the air (where the
standard value of is 1.225 kg/m3), the area of the turbine blades (wheel
diameter), and wind speed. Air density is highly dependent on temperature,
altitude, and humidity (Lee & Liew, 2020). The
power generated by the wind turbine can be formulated as in equation 2, where
is the power (kW),
is the air density (kg/m3),
is the turbine cross-sectional area (m2),
and
is the wind speed (m/s) (Zahran & Yousef, 2014).
is a dimensionless power coefficient or Betz
limit, and is a measure of the efficiency of a wind turbine in extracting the
kinetic energy content of the wind stream which can be converted into
mechanical work.
(2)
Wind resources vary widely in nature. Combining meteorological and
statistical techniques for estimating wind energy can give us very useful
predictions for the output power of a particular wind turbine, so it can be a
consideration for selecting the appropriate Wind Energy Conversion System
(WECS) (Ragheb & Ragheb, 2011). In
the industrial world, the Weibull probability distribution function (PDF) is
the most widely used to describe the wind speed distribution for WECS
applications.
Batteries are energy storage devices in the
form of electrochemistry which are widely used to store energy in various
applications. There are several types of batteries on the market, namely wet or
conventional, hybrid and MF (Maintenance Free) batteries. Wet or conventional
batteries mean that they still use sulphuric acid (H2SO4) in liquid form. While
the MF battery is often called a dry battery because the sulphuric acid is
already in the form of a gel. There are two types of batteries that are often used,
namely primary batteries and secondary batteries. Primary battery is a battery
where the electrochemical reaction is non-reversible, so that after use it must
be discarded (Augustine et al., 2012). A
secondary battery is a battery commonly known as a rechargeable battery. In
this battery the electrochemical reaction is reversible, so after being used on
this battery it can be recharged. The most commonly used type of rechargeable
battery is the Lead-acid type because of its high technology and performance,
and relatively cheap price.
All types of batteries perform better at low
currents than high currents, both for charging and discharging. The slow charge
or discharge procedure extends the life of any battery and allows for sustained
high levels of capacity throughout its life cycle. Fast charging as well as
rapid discharge that draws high currents can easily lead to poorer performance
and shorter life for all types of electrochemical batteries. Life cycle is the
number of cycles a battery can perform before reaching 80% of nominal capacity
and is basically determined by the battery type and depth of discharge (DoD).
The higher the DoD, the shorter the lifespan for all battery types. It is
recommended that the battery discharge cycle should not regularly be below 60%
DoD or 40% charge condition (Häberlin, 2012).
Inverter is a system component that is used to
convert DC current from solar panels or batteries into AC current (Tawiah, Marfo, & Benah, 2016). The
output voltage generated after conversion through this inverter can be fixed or
variable as needed. The output waveform of the inverter is ideally a sine wave.
But in reality this is not the case because of the harmonics. Inverters are
divided into 2 types, namely single-phase inverters and three-phase inverters.
According to the type of wave, there are three types of inverters on the
market, namely sine wave inverters, modified sine waves, and square wave
inverters. The inverter capacity can be formulated into equation 3, where
is the inverter power capacity (watt),
is the peak load (watt), and the compensation
is 125%.
(3)
Based on the characteristics of the required
performance, inverters for off-grid and on-grid systems have different
characteristics. In an off-grid system, the inverter must be able to supply a
constant AC voltage for variations in production from energy sources and load
demands. Whereas in the on-grid system, the inverter can regenerate the exact
same voltage as the grid voltage at the same time, to optimize and maximize the
energy output generated by the energy source.
Solar power can only provide a
fraction of the power required for offshore rigs due to lack of space and
weight constraints (Tawiah et al, 2016). Wind power and solar energy can
be combined into a hybrid system for more stable and consistent energy
conversion. The unstable wind and solar energy can be partially or completely
overcome, thereby ensuring continuity and quality of electricity generated by
the system. Solar panels, wind turbines and batteries can be incrementally
upgraded to the system as long as financial resources, energy potential and
area for system installation are available. Another advantage of this hybrid
system is that both are environmentally friendly renewable energies.
The application of solar
energy alone is not sufficient for equipment on offshore platforms that require
a stable energy supply. These problems can be overcome by adding wind energy so
that the power produced is more stable and reliable (Lee & Liew, 2020). The HOMER software can be used to obtain the optimal configuration of
an off-grid hybrid solar-wind system by combining economics and reliability
(LPSP). The higher the LPSP value, the less energy required by the load is
fulfilled (Hosseini
et al, 2017).
A major concern in the design of a solar-wind hybrid energy system is to
determine the size of each component that plays a role in the system so that
the load can be met economically and reliably. Therefore, the component system
is selected with consideration to determine the total cost of the system and
ensure that the requirements are met according to certain criteria. The
objective function of the total cost should be minimized, and this cost
function is generated by the sum of the present worth (PW) of all components,
annual operating and maintenance costs, initial or capital investment, and
system component costs (Ramoji & Kumar, 2014).
(4)
The objective
function of the total cost can be formulated by equation 4, where
is the total cost,
is the initial capital or investment of each
component.
is PW of the replacement cost of each
component.
is the operation and maintenance cost of each
component.
is the PW of the residual value of each
component. The
index is the component of the PV module, wind
turbine, and battery. Constraints that must be met when the total cost must
ensure that the load is carried out in accordance with a certain. Another
limitation that may need to be considered is the limited area of the system
installation.
METHOD
The method used in this study is a simulation method using HOMER
Pro 3.14 software based on data in the Southeast Sumatra Block offshore working
area. The HOMER software is easy to operate and can perform technical and cost
analysis on hybrid systems. Theoretical and measurable calculations are carried
out to complete the required data.
HOMER simulates the operation of a system by calculating the
energy balance at each time step (interval) in a year (HOMER, 2021). For each time step,
HOMER compares the load demand with the energy the system can supply, and
calculates the energy flow into and out of each system component. HOMER has two
optimization algorithms. The genetic algorithm simulates all feasible system
configurations obtained by Search Space. The new HOMER Optimizer® algorithm is
exclusively derivative-free to find the least expensive system. HOMER then
displays a list of configurations, sorted by net present cost or life cycle
cost, which can be used to compare system design options.
The modelling of a hybrid system consisting of solar panels and
wind turbines in the HOMER device includes solar radiation and regional wind
speed data into the software. HOMER calculates the amount of energy from
renewable energy sources in hourly steps. The HOMER software uses the net
present cost (NPC) for life cycle costs. These NPCs include initial investment
costs, replacement costs, maintenance costs, fuel, and electricity purchases
from the main grid, air pollution penalties, and electricity sales to the grid.
This Research was carried out in the
following stages: literature study and data collection for simulation and
calculation; identify the location and measure the area, as well as calculate
the electricity needs of lighting lamps and air conditioners at that location;
select and determine the number of solar panels, wind turbines, converters, and
batteries based on the available area using the HOMER software; conducting
simulations using the HOMER software so that the capacity of the electrical
energy produced and the costs required are known; calculating the amount of gas
that can be converted from generator fuel into business products and conducting
financial analysis.
RESULTS
AND DISCUSSION
The location selection is determined based on the availability of space
on the platform for the planned installation of the solar-wind system. The
available area measurement is carried out as a basis for determining the number
of solar panels and wind turbines that can be installed. The Southeast Sumatra
block has five platforms with an area on the top deck that can be used for the
planned installation of a solar-wind system, namely platforms 1, 4, 13, 15, and
17. The available areas at the five platforms are 6 meters long and 6 meters
wide. 5.5 meters. The structure of these areas is still very strong for the
installation of solar panels and wind turbines. The coordinates of the location
and available area on the platform are shown in table 1.
Table
1
Coordinates
of location and area
|
Platform |
Coordinate |
Area available (m2) |
|
|
Latitude |
Longitude |
||
|
1 |
4° 40' 01.0690" S |
106° 37' 44.3799" E |
33 |
|
4 |
4° 40' 51.2002" S |
106° 36' 36.2460" E |
33 |
|
13 |
4° 35' 04.7263" S |
106° 38' 34.5579" E |
33 |
|
15 |
4° 34' 48.0600" S |
106° 39' 37.6259" E |
33 |
|
17 |
4° 33' 35.3402" S |
106° 42' 01.2200" E |
33 |
The solar-wind energy system in the Southeast Sumatra Block aims to
supply electricity to equipment that does not have a direct impact on oil and
gas production. The equipment includes lighting and air conditioners. The air
conditioner used has a capacity of 1 pk with a power of 840 W, while each
lighting lamp has a power of 150 W. The lighting and air conditioner on the
bridge is on or on continuously. Based on the results of data collection and
calculations, it is obtained that the electrical load needs of lighting lamps
and air conditioners in the selected locations, as shown in table 2.
Table
2
Electricity
requirements of secondary equipment on site
|
Platform |
Lighting lamp (150 watt) |
Air conditioner
(1 pk) |
Total power (kW) |
Total power per day (kWh/day) |
||
|
Amount |
Power (kW) |
Amount |
Power (kW) |
|||
|
1 |
40 |
6 |
3 |
2,52 |
8,52 |
204,48 |
|
4 |
36 |
5,4 |
3 |
2,52 |
7,92 |
190,08 |
|
13 |
36 |
5,4 |
3 |
2,52 |
7,92 |
190,08 |
|
15 |
40 |
6 |
3 |
2,52 |
8,52 |
204,48 |
|
17 |
36 |
5,4 |
3 |
2,52 |
7,92 |
190,08 |
1. Component Selection
The selection of the SunPower E20-327 solar
panel was carried out by considering the capacity, efficiency, dimensions, and
service life of the product. These solar panels are easily
available in the market. The number of solar panels that can be
installed at each location of the platform is 15 units and each solar-wind
system at the site only requires 1 converter. The specifications of the
SunPower E20-327 solar panel are shown in table 3.
Table 3
Specifications of SunPower E20-327 solar panels
|
Rated power |
327 W |
|
Type |
Monokristalin |
|
Efficiency |
20,4% |
|
Maximum current (Isc) |
6,46 A |
|
Maximum voltage (Voc) |
64,9 V |
|
Panel dimension (long x wide) |
1558 x 1046 mm |
|
Lifetime |
25 years |
The type of wind
turbine used is the horizontal type by considering the capacity, tower height,
mill diameter, and lifetime. The Xzeres Skystream 3.7 wind turbine has a
capacity of 2.4 kW with a mill diameter and tower height according to the
bridge structure. The diameter of the wind turbine blade is an important
consideration because of the limited installation area on the platform. Wind
turbines can be placed in all four corners of the available area by considering
the distance between the mills. The available area on the platform is 6 meters
long and 5.5 meters wide, so the maximum number of wind turbines that can be
installed is 4 pieces.
Table 4
Xzeres Skystream 3.7 wind
turbine specifications
|
Rated
power |
2,4 kW |
|
Cut
in speed |
3 m/s |
|
Cut
out speed |
63 m/s |
|
Generator |
AC |
|
Mill diameter |
3,72 m |
|
Tower height |
11,07 m |
|
Lifetime |
20 years |
The converter
consists of an inverter to convert DC current to AC and a rectifier to convert
AC current to DC. The choice of converter is carried out by considering the
peak load and capacity of the solar panels. The converter used in this study is
the Schneider Conext XW+8548 which has a power capacity of 6.8 kW.
Table 5
Specifications of the Schneider
Conext XW+8548 converter
|
Rated power |
6,8 kW |
|
DC input voltage |
40-64 Vdc (48Vdc nominal) |
|
Maximum
DC input current |
180 A |
|
Maximum
battery charging current |
140 A |
|
Frequency |
50/60 Hz |
|
AC input voltage |
165-280 V |
|
AC output voltage |
230 V ± 3% |
|
Efficiency |
95% |
|
Dimension (height x wide x thick) |
58 cm x 41
cm x 23 cm |
|
Lifetime |
10 years |
Batteries
are selected by considering the appropriate capacity and dimensions because of
limited storage room. The PowerSafe SBS-190F 12V battery is a Valve Regulated
Lead Acid (VRLA) type battery. The batteries will be used with a series
arrangement of 4 batteries in 1 string so that it increases the voltage to 48V.
Table 6
PowerSafe SBS-190F battery
specifications
|
Voltage |
12 V |
|
Power capacity |
2,57 kWh |
|
Maximum capacity |
214 Ah |
|
Roundtrip efficiency |
97% |
|
Maximum
charging current |
190 A |
|
Maximum
discharging current |
983 A |
|
Dimension (long x wide x height) |
56,1 cm x 12,5 cm x 31,6 cm |
|
Lifetime estimation |
5 years |
The optimization
using the HOMER software is limited to 10 strings battery arranged in parallel.
Limiting the number of batteries is carried out by considering the availability
of battery storage room on each platform. If there are 4 batteries in series on
each string, then 40 batteries are needed in each off-grid solar-wind system.
This means that a total of 200 batteries are needed in off-grid solar-wind
system for 5 locations in the Southeast Sumatra Block.
2. Technical Analysis
Solar radiation
data on GHI (Global Horizontal Irradiance) and annual wind speed in the
Southeast Sumatra Block area obtained using the HOMER software are shown in
Figures 2 and 3. The data was obtained in February 2022. Each platform has
similar data on solar radiation and wind speed because of nearby location
coordinates. The average solar radiation data is 5.05 kWh/m2/day, while the
average wind speed data is 4.45 meters per second.

Figure 2.
GHI solar radiation data in the Southeast Sumatra Block area

Figure 3.
Wind speed data in the Southeast Sumatra Block area
3. Off-grid Solar-Wind System
The HOMER software
calculates total electrical energy produced by solar panels and wind turbines.
Calculation of power on solar panels consider the rating decrease factor,
efficiency, and temperature. The system configuration in the off-grid
simulation can provide electricity supply to load of 27.5 kWh per day with a peak
load of 2.1 kW. The summary of the off-grid system technical data simulation
result is shown in table 7.
Table 7
Technical simulation results on
off-grid systems
|
Variable |
Solar
Panel |
Wind
Turbine |
Converter |
Battery |
|
|
Amount |
15 unit |
4 unit |
1 unit |
10 strings |
|
|
Capacity |
4,91 kW |
8,4 kW |
6,8 kW |
103 kWh |
|
|
Operational |
4.380 hours per year |
6.396 hours per year |
7.766 hours per year |
- |
|
|
Average
output power |
0,81 kW |
1,08 kW |
0,765 kW |
- |
|
|
Energy in |
- |
- |
6.995 kWh per year |
4.126 kWh per year |
|
|
Energy out |
- |
- |
6.700 kWh per year |
4.006 kWh per year |
|
|
Electricity |
Production |
7.077 kWh
per year |
9.466 kWh
per year |
- |
- |
|
16.543 kWh per year |
|||||
|
Consumption |
10.047 kWh
per year (27,5 kWh
per day) |
||||
|
Excess |
6.056 kWh per year (36,6%) |
||||
The total
electricity production of the off-grid solar-wind system in the Southeast
Sumatra Block is 82,715 kWh per year and electricity consumption is 50,235 kWh
per year. Gas fuel consumption is 0.4 MSCF per 1 kW, so the gas fuel
consumption that can be reduced based on electricity consumption from the
off-grid solar-wind system is 20,094 MSCF per year.
4. On-grid Solar-Wind System
The on-grid
solar-wind system is built without using batteries, so it does not require investment
or operational costs for batteries. The simulation is carried out by providing
a load of 8 kW or 192 kWh per day. The load is assumed to be close to the value
of the lighting and air conditioner loads on the platforms used as research
locations. The summary of the on-grid system technical data simulation result
is shown in table 8.
Table 8
Technical simulation result of
on-grid system
|
Variable |
Solar Panel |
Wind Turbine |
Converter |
|
|
Amount |
15 unit |
4 unit |
1 unit |
|
|
Capacity |
4,91 kW |
8,4 kW |
6,8 kW |
|
|
Operational |
4.380 hours per year |
6.267 hours per year |
4.380 hours per year |
|
|
Average output power |
0,81 kW |
1,08 kW |
0,774 kW |
|
|
Energy in |
- |
- |
7.077 kWh per year |
|
|
Energy out |
- |
- |
6.780 kWh per year |
|
|
Electricity |
Production |
7.077 kWh per year |
9.466 kWh per year |
- |
|
7.077 + 9.466 = 16.543 kWh per year |
||||
|
Consumption |
6.780 + 9.466 = 16.246 kWh per year (44,5 kWh per day) |
|||
|
Excess |
16.543 - 16.246 = 297 kWh per year (1,8%) |
|||
The total electricity
production of on-grid solar-wind system in the Southeast Sumatra Block is
82,715 kWh per year, while electricity consumption is 81,230 kWh per year. Gas
fuel consumption is 0.4 MSCF per 1 kW, so the gas fuel consumption that can be
reduced based on electricity consumption from the on-grid solar-wind system is
32,492 MSCF per year.
5. Financial Analysis
The project is
planned for 25 years. The variables used as assumptions in the financial
analysis are component prices, a discount rate of 3.5%, and an average
inflation rate of 1.87 in 2021. The cost calculation in this study is
influenced by the cost of the main components without taking into account the
costs of construction, material delivery, and system commissioning.
The initial
investment cost of the solar-wind system in this study is limited to the price
of the main components. Overall price information for the main components of
the solar-wind system is obtained from various sources. The difference in the
initial investment cost of the two systems lies in the battery component. The
initial investment cost of the on-grid solar-wind system is lower because it
does not use batteries in its application.
Table 9
Initial investment cost of
off-grid solar-wind system in Southeast Sumatra Block
|
Component |
Amount |
Price |
Total Price |
|
Solar panel SunPower E20-327 |
75 |
$650 |
$48.750 |
|
Wind turbine Xzeres Skystream 3.7 |
20 |
$12.000 |
$240.000 |
|
Converter Schneider Conext XW+8548 |
5 |
$5.000 |
$25.000 |
|
Battery
PowerSafe SBS-190F |
200 |
$350 |
$70.000 |
|
Total cost |
$383.750 |
||
Table 10
Initial investment cost of
on-grid solar-wind system in Southeast Sumatra Block
|
Component |
Amount |
Price |
Total Price |
|
Solar panel SunPower E20-327 |
75 |
$650 |
$48.750 |
|
Wind turbine Xzeres Skystream 3.7 |
20 |
$12.000 |
$240.000 |
|
Converter Schneider Conext XW+8548 |
5 |
$5.000 |
$25.000 |
|
Total cost |
$313.750 |
||
HOMER
software performs the process of calculating the net present cost (NPC) of the
total costs incurred during the project period minus the total costs incurred
during the project period. Levelled Cost of Electricity (LCOE) is the average
cost of electrical energy from producing consumable electricity. Investment
costs (CAPEX), operational costs (OPEX), NPC, and LCOE were simulated using the
HOMER device for each platform, where all five platforms had the same
solar-wind system configuration. Solar panels are assumed to be without
operational and maintenance costs because they can be carried out by company
workers. The annual wind turbine operating and maintenance costs are assumed to
be 10% of the price, which is $1200. The converter operating and maintenance
costs are assumed to be $250 per year (5% of the price), while battery
maintenance costs are assumed to be $17.5 per battery. The summary of the
results of the financial optimization of the solar-wind system on each platform
obtained from the simulation results of the HOMER software is shown in table
11.
Table 11
Financial simulation results of
the solar-wind system on each platform
|
Variable |
Off-grid system |
On-grid system |
|
Investment cost (CAPEX) |
$76.750 |
$62.750 |
|
Operational cost (OPEX) |
$8.830 per year |
$5.878 per year |
|
Net Present Cost (NPC) |
$257.526 |
$183.094 |
|
Levelized Cost of
Electricity (LCOE) |
$1,25 per kWh |
$0,55 per kWh |
The off-grid solar-wind system in the Southeast Sumatra
Block can reduce gas fuel consumption by up to 20,094 MSCF per year. If the
selling price of gas in the Southeast Sumatra Block is $6.6 per MSCF, then the
selling value of gas is $132,620 per year. The return on investment (ROI) value
for the off-grid solar-wind system is calculated at 21% and the payback period
is 56-57 months. The gas sales value of the on-grid solar-wind system is
$214,447 per year with an ROI of 57% and a payback period of 21-22 months. The
net present value (NPV) for the off-grid system is $1,190,475, while the
on-grid system is $2,812,995. The NPV value is greater than zero, so it can be
said that the investment in the solar-wind system is feasible.
CONCLUSION
The purpose
of this study is to determine how much electrical load can be supplied by the
solar-wind system, how much gas fuel consumption can be reduced by implementing
a solar-wind system, and what is the economic value.
Based on the
result of the research, the off-grid solar-wind system can provide electricity
supply of 50,235 kWh per year (137.6 kWh per day) in the Southeast Sumatra
Block. Meanwhile, the on-grid solar-wind system can provide electricity supply
of up to 81,230 kWh per year (222.55 kWh per day).
Gas fuel consumption from turbine generators
can be reduced by the use of an off-grid solar-wind system in the Southeast
Sumatra Block by 20,094 MSCF per year. Meanwhile, the on-grid solar-wind system
is able to reduce the use of gas fuel by 32,492 MSCF per year.
The economic
value of the off-grid solar-wind system in the Southeast Sumatra Block based on
gas sales of $132,620 per year obtained NPV of $1,190,475 (NPV > 0), ROI of
21%, and a payback period of 56-57 months. The on-grid system with gas sales of
$214,447 per year resulted in an NPV of $2,812,995 (NPV>0), an ROI of 57%,
and a payback period of 21-22 months. Both solar-wind systems have a positive
economic value so they are feasible to implement. It can be considered and
recommended the application of an on-grid solar-wind system for platforms
rather than an off-grid solar-wind system.
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