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7/31/2019 Project Renewable s217173 Bimal Neupane
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ENG 426-Rewenable Energy
Photovoltaic and Wind- Hybrid Sustainable Power
System
Final ProjectThis project includes the design and cost analysis of a small scale hybrid sustainablephotovoltaic and wind system for a house.
Lecturer: Jai Singh Submitted By: Bimal Raj Neupane (s217173)
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Contents
LIST OF ABBREVIATIONS ......................................................................................................... 3
1. Executive Summary ......................................................................................................................... 4
2. Need of Renewable Energy ............................................................................................................. 5
3. Types of renewable energy ............................................................................................................. 6
3.1 Solar energy .................................................................................................................................. 6
3.2 Wind energy .................................................................................................................................. 6
3.3 Biomass energy ............................................................................................................................. 6
3.4 Geothermal energy ....................................................................................................................... 7
3.5 Wave and Tidal Energy .................................................................................................................. 7
4. Project description .......................................................................................................................... 8
4.1 Introduction .................................................................................................................................. 8
4.2 Solar Radiation and Wind Speed in Darwin ................................................................................ 12
5. Calculation and Estimation ........................................................................................................... 17
5.1 For the PV System ....................................................................................................................... 17
5.2 Installation and cost of PV .......................................................................................................... 21
5.3 For the wind System ................................................................................................................... 24
5.4 Calculating Payback period for the Hybrid System ..................................................................... 25
6. Conceptual Design ........................................................................................................................ 25
7. Standard Components of a PV/ Wind Hybrid Unit ....................................................................... 28
8. Conclusion ..................................................................................................................................... 29
9. Appendix ....................................................................................................................................... 30
10. Reference .................................................................................................................................. 36
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LIST OF ABBREVIATIONS
PV: Photovoltaics
NT: Northern Territory
MWh: Megawatt hours
kWh: kilowatt hours
kV: Kilovolt
RET: Renewable Energy Target
MW: Megawatts (capacity)
REC : Renewable Energy Certificate
Avg: average
m/s: metres per second
DC: Direct Current
AC: Alternating Current
%: Percent
QLD: Queensland
WA: Western Australia
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1. Executive SummaryEnergy is important for the survival of all living organisms which plays a vital role in shaping
the human condition and civilization. Energy is essential for survival, so the production and
consumption of energy are some of the most important activities of human life. Moreover, it
is clear that the process of energy used and changing of daily needs create human to discover
new energy during their civilization such that: energy = progress = civilization. Energy is an
essential element for economic development of any nation. However, exhaustible energy
sources in the world are limited; there is an urgent need to focus attention on development of
renewable energy sources and use of energy efficient technologies.
Australia has naturally gifted renewable energy and is a prime leader in a number of
technologies, such as research and development for photovoltaic modules and fuel cells, solar
thermal and wind power system. The impetus of renewable energy development in Australia
is gaining rapidly due to the urgent need of to diminish the greenhouse gas emission.
Australia is blessed with the highest average solar radiation of any continent in the world,
which means our solar industry has the greatest potential to lead the world. Moreover, solar
energy is Australias largest energy resource; the average amount of solar energy that falls on
Australia is about 15,000 times the nations energy use. In all parts of Australia, except
Southern Victoria and Tasmania, solar radiations are average to very good. Sunlight can be
used to generate electricity, provide hot water, and to heat, cool and light buildings.
Australia has among the best wind resource in the world and wind energy has become the
cheapest renewable energy technology. Its current cost is only two to three cents more per
kWh than the national electricity market pool prices, and this premium is reducing. Wind
energy integrates well in to the electricity grid; it is a proven technology and involves a short
construction period.
Financial analysis seeks to ascertain whether the proposed project will be financially viable in
the sense of being able to meet the demand and whether the proposed project will satisfy the
return expectations of those who provide the capital. The viability parameters considered are
cost analysis and payback period of the hybrid system.
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2. Need of Renewable Energy
The economic growth and prosperity of any country or region in the world is related to the
level of its consumption of energy. As the start of industrial revolution, energy consumptionincreases due to more vehicles on the road, more industries and more electricity generation
and the unlimited burn of fossil fuel such as coal, oil and natural gas. That consequently leads
to depletion of energy sources and degradation of environment which stretching the resources
of our planet to breaking point. When it comes to the future of energy, the world needs a
reality check.
With rapid rise in energy prices, concern over pollution, depletion of resources and
environment degradation the awareness for limited resources around the world has increased
dramatically. Use of fossil and nuclear fuels which causes greenhouse emissions, inefficient
use of energy and release of harmful pollutants to the atmosphere causing threat such as air
pollution, acid rain and the danger of nuclear radiation. Governments with vision have come
to realise that generation of electrical power through non-renewable sources of energy is not
enough. The power of the future must be environmentally friendly as well.
Australias stationary energy sector, which includes electricity derived from coal- fired
power, is responsible for around 50 precent of our greenhouse gas emission. Australias
environmental, economic and energy security is at risk from climate change unless we can
compete in a low carbon world. Any successful climate change solution must first target the
energy sector specifically.
Projections on the energy demand in the early years of 21st century are alarming. The
estimates are about100 million tonnes per year for petroleum, 400 million tonnes per year for
coal and 100,000 MW per year for power. This energy scenario poses a great challenge for
our technology, and also to our environment, which is suffering a tremendous pressure.
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3. Types of renewable energy
3.1 Solar energy
Solar energy is a renewable free source of energy that is sustainable and totally inexhaustible,
unlike fossil fuels which are finite. It is also a non-polluting source of energy and it does not
emit any greenhouse gases when producing electricity. To put solar generation systems into
perspective, the Suns energy falling on Australia in one day is equal to half the total annual
energy required by the whole world, it has now become possible to harness this abundantly
available energy very reliably for many purposes by converting it to usable heat or through
direct generation of electricity. Solar panel which converts light energy to the electricity can
be used to provide electricity on a small scale to homes to supplement the electricity supply
from the national grid or can be used to power whole towns.
3.2 Wind energy
Wind power harnesses the energy in the wind through wind turbines. This energy is one of
the safest and cleanest forms of energy. These produce energy on various scales, including
wind power farms that provide energy to support a large number of homes through to home-
made wind turbines. Wind farms are now a familiar aspect of the environment. Because the
power output scales approximately as the cube of the wind speed, existing wind farms in
Australia are concentrated along the windy southern littoral districts.Although wind is free
and clean, the erection of wind turbines has faced some fierce criticism, especially from
people who live near proposed wind farms.
3.3 Biomass energy
Bioenergy uses biomass directly to generate fuel or electricity. This includes using wood
from tree, waste from other plants and manure from livestock. Biomass can be used to
generate electricity, light, heat, motion and fuel. Converting biomass energy into useable
energy has many environmental benefits. It uses waste materials that are usually dumped, and
uses up methane (a greenhouse gas). Fuels such as ethanol can be made from biomass and
used as an alternative to petrol to power motor cars. The main conversion routes are direct
combustion, gasification, Pyrolysis, Biochemical and Fermentation process.
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3.4 Geothermal energy
Geothermal energy uses heat energy from the beneath both from kilometres deep into the
Earth's crust in volcanically active locations of the globe or from shallow depths of the earth
surface. It is expensive to build a power station but operating costs are low resulting in low
energy costs for suitable sites. Ultimately, this energy derives from heat in the Earth's core.
The potential for geothermal energy in Australia is truly enormous. The estimation of the
energy contained in the upper 5 kilometres of Australias crust at 1 Joules, which is
the equivalent of about 2.6 million years energy supply at 200405 consumption levels.
3.5 Wave and Tidal Energy
Ocean power uses the oceans tides, currents or waves to produce electricity. Power comes
from the waters movement, i.e. either the changes in height of the tides or the oceans
current. Wave power is sourced from winds blowing on oceans, tidal energy by the
gravitational pull of the moon on the ocean.
Different technologies adopt different methods for harnessing the oceans energy. However,
the most common oceanic power generation system uses a turbine to drive an electricalgenerator.
Tidal
Tidal power is a special form of hydropower that exploits the bulk motion of the tides. Tidal
barrage systems trap sea water in a large basin and the water is drained through low-head
water turbines. In recent years, rotors have been developed that can extract the kinetic energy
of underwater currents.
Wave
The waves on the surface of the sea are caused mainly by the effects of wind which can be
used to generate intermittent power. Floating buoys, platforms, or submerged devices placed
in deep water, generate electricity using the bobbing motion of the oceans waves.
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Renewable energy carries with itself a number of benefits providing social, environmental
and economical security. The following criteria should be met by efficient energy sources:
Not deplete or adversely affect natural resources;
Have minimal or no negative impact on environment or society; Be safe to consume today and not possess the uncertainty risk for future generations.
Protect air, land and water against pollution;
Have little or no emissions of greenhouse gases or net carbon;
Meet the needs of consumer today and in the future in an accessible and efficient way;
All these criteria could be met by renewable energy and thus it could become sustainable for
future.
4. Project description
4.1 Introduction
A Hybrid power system is the combination of two or more energy conversion technique, to
maximize the use of renewables, resulting in a system with lower emissions than traditional
fossil-fuelled technologies. In this project, I chose the solar panels and a small wind turbine
hybrid generation technique to power a one bedroom unit house located at 256 Casuarina
Drive, Nightcliff, Darwin.
The major advantage of wind energy is that when used together with solar panels, the
reliability of the system is enhanced. This would create more output from the wind turbine
during the winter, whereas during the summer, the solar panels would produce their peak
output. Hybrid energy systems oftentimes yield greater economic and environmental returnsthan wind, solar, geothermal or tri-generation stand-alone systems by themselves.
Additionally, the size of battery storage can be reduced as there is less reliance on one
method of power production.
The radiant heat and light energy from the Sun is called as solar energy. This is the most
readily and abundantly available source of energy. Since ancient times this energy has been
harnessed by humans using a range of innovations and ever-evolving technologies. The earth
receives more energy in just one hour from the sun than what is consumed in the whole world
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for one year. This energy comes from within the sun itself through process called nuclear
fusion reaction. In this reaction four atoms of hydrogen combine to form one helium atom
with loss of matter. This matter is emitted as radiant energy.
Photovoltaic (PV) literally stands for electricity from light. A photovoltaic cell is a special
semiconductor diode that converts visible light into DC (direct current). Certain PV cells are
able to transform infrared (IR) or ultraviolet (UV) rays into DC power. PV cells consist, in
essence, of a junction between two thin layers of dissimilar semiconducting materials, known
respectively as p-type (positive) and n-type (negative) semiconductor. These semiconductors
are usually made from thin layers (two or more) of semi-conducting material, usually silicon.
When this silicon is exposed to light it generates electrical charges and with the use of metal
contacts this can be conducted away as direct current (DC). A single cell has small electrical
output, so multiple cells are combined together and encapsulated to form a PV module (also
called panel). This module is the principle and basic building block of entire PV system and
numerous modules can be put together to give the desired electrical output. Contemporary PV
cells are able to convert 10 to 20 percent of radiant energy into electrical energy. In years to
come, this efficiency will be improved to produce even better results. The different types of
PV systems are multi-crystalline Silicon Cells, Mono-crystalline Silicon Cells, Amorphous
Silicon, Thick-Film Silicon and Other Thin films etc.
Mono-crystalline module (Single Crystalline):
A mono crystalline panel is constructed using one single crystal. Metal strips are laid over the
entire cell and act as a conductor that captures electrons. Mono crystal panels are slightly
more efficient (about 12-17%) in the real world. However, it is slightly expensive than other
PV cell.
Polycrystalline module:
Polycrystalline (or multi-crystalline) modules which is easier to make are consist of a number
of different crystals, fused together to make a single cell. These are very similar to single-
crystalline in performance and degradation, except they are slightly less efficient, typically
11-14%.
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Thin Film or Amorphous module:
Thin film panels are produced very differently from crystalline panels i.e. sprays the silicon
onto a base as a thin film. Thin-film panels are significantly less efficient (about 6-8%) than
crystalline panels, and a greater number is required for the same output. The primary
advantages of thin film panels lie in their low manufacturing costs and versatility.
Type of PV Mono-crystalline module Polycrystalline module Thin Film or
Amorphous module
Advantage Most efficient module
available
Cost effective to
manufacture compared to
mono-crystalline
Partially shade tolerant
Takes up small area on roof Takes up small area on roof Uses less silicon - low
embodied energy
Most popular technology on
market
Most effective in
hotter climate
Disadvantage More expensive to produce Not as efficient as mono Poor efficiency
Has more silicon - high
embodied energy
Has more silicon - high
embodied energy
Takes up more roof
space for same output
Table.1 Comparison of different types of PV module
The energy output of PV cell depends on:
1. The annual total amount of solar radiation available on the site
2. The orientation(azimuth) and tilt(elevation) of the PV arrays
3. The peak power rating of the array
4. The energy conversion efficiency of the PV modules
5. The efficiency of the inverters used to convert the DC power from the PV arrays in to
AC
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Wind turbine harness the power of the wind in which the wind blows the blades and forced
round, driving a turbine which generates electricity. The stronger the wind, the more
electricity produced. Wind power is a proven and reliable technology that is widely used in
Australia, in which wind farms produce on average capacity factors of 3035%, making wind an
attractive option. At the end of 2009, there were about 33 wind farms in Australia, most of which have
turbines of from 1.5 to 3 megawatts (MW). The total operating wind generating capacity at the end of
2009 was 1877 MW providing 1.3% of Australia's national electricity demand. Some specifications
that need to produce wind energy are:
1. Have at least 4.5 m/s average wind speed.
2. The site should be unobstructed from tall buildings and trees.
3. It is recommended to site the wind turbine generator at least 6 m above any
surrounding obstacles such as trees or buildings.
4. The local zoning allows a structure that is at least 12.8 m (42 feet) tall. i.e. the taller
the tower, the better the power output.
5. The visual impact and closeness to homes should be considered because of noise and
shadow flickering.
6. The overall cost should be considered in relation to locating the equipment and
distribution costs like long cables.
In Practice, wind turbines are designed to work between certain wind speeds. The lower
speed, called the cut in speed, is 4 - 5 m/s. At this speed the energy produced from the wind
is not much greater than the amount of energy lost in friction and electrical losses. The cut
out speed is the highest speed the machine can safely stand without being damaged and the
rated speed is the wind speed at which the particular machine achieves its maximum output.The figure 1 shows the typical power curve of a wind turbine at different wind speed.
(Source:www.aie.org.au)
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Figure 1: Power curve of a wind turbine
(Source:http://www.bwea.com/pdf/briefings/technology-2005.pdf)
The amount of electricity produced from a wind turbine depends on three factors:
1. Wind speed: The power available from the wind is a function of the cube of the wind
speed. Therefore if the wind blows at twice the speed, its energy content will increase eight-
fold.
2. Wind turbine availability: This is the capability to operate when the wind is blowing, i.e.
when the wind turbine is not undergoing maintenance.
3. The way wind turbines are arranged: Various factors such as environmental considerations,
visibility and grid connection requirements often take precedence over the optimum wind
capture layout.
4.2 Solar Radiation and Wind Speed in Darwin
The figures 1 and 2 which are listed below shows the average solar radiation and wind speed
throughout the Australia.
Location: Darwin; Latitude: 12.42 S Longitude: 130.89 E; Elevation: 30 m
http://www.bwea.com/pdf/briefings/technology-2005.pdfhttp://www.bwea.com/pdf/briefings/technology-2005.pdfhttp://www.bwea.com/pdf/briefings/technology-2005.pdfhttp://www.bwea.com/pdf/briefings/technology-2005.pdf7/31/2019 Project Renewable s217173 Bimal Neupane
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Figure 2: The potential for solar power generation in Australia
(Source:http://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdf)
Figure 3: The potential for wind power generation in Australia
(Source:http://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdf)
http://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdfhttp://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdfhttp://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdfhttp://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdfhttp://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdfhttp://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdfhttp://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdfhttp://www.science.org.au/reports/documents/AusRenewableEnergyFuture.pdf7/31/2019 Project Renewable s217173 Bimal Neupane
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Statistics Jan Feb Mar Apr May Jun Jul Aug Sep Oct Nov Dec Annual Years Plot Map
Temperature
Mean maximum
temperature (C)31.8 31.4 31.9 32.7 32.0 30.6 30.5 31.3 32.6 33.2 33.3 32.6 32.0 70
1941
2011
Mean minimum
temperature (C)24.8 24.7 24.5 24.0 22.1 20.0 19.3 20.4 23.1 24.9 25.3 25.3 23.2 70
1941
2011
Rainfall
Mean rainfall (mm) 426.2 376.1 317.8 101.7 21.1 1.9 1.2 5.1 15.8 70.0 140.0 252.4 1738.4 701941
2011
Decile 5 (median)
rainfall (mm)411.0 361.4 282.8 75.0 4.3 0.0 0.0 0.0 6.4 52.8 140.5 227.4 1709.8 70
1941
2011
Mean number of days
of rain 1 mm18.9 18.1 16.8 7.2 1.7 0.3 0.2 0.4 1.6 4.9 9.9 14.1 94.1 70
1941
2011
Other daily elements
Mean daily sunshine
(hours)5.7 5.7 6.8 8.7 9.6 9.9 10.1 10.3 9.8 9.5 8.4 6.9 8.5 60
1951
2011
Mean number of clear
days0.6 0.7 1.9 6.2 12.1 16.3 17.6 19.0 15.1 9.2 3.6 0.9 103.2 56
1954
2010
Mean number of
cloudy days24.2 21.6 19.6 11.5 6.5 3.8 3.4 2.6 3.4 5.5 11.5 20.4 134.0 56
1954
2010
9 am conditions
Mean 9am
temperature (C)28.0 27.7 27.6 27.4 25.6 23.3 22.8 24.4 27.0 28.7 29.2 28.8 26.7 56
1954
2010
Mean 9am relative
humidity (%)81 83 82 74 65 60 60 64 68 69 72 76 71 56
1954
2010
Mean 9am wind speed
(km/h)
11.4 11.1 9.0 10.5 13.6 14.7 13.0 10.7 9.0 8.8 8.7 9.9 10.9 691941
20109am wind speed vs
direction plot
3 pm conditions
Mean 3pm
temperature (C)30.2 30.0 30.5 31.7 31.2 29.9 29.6 30.2 31.2 32.0 31.9 31.2 30.8 56
1954
2010
Mean 3pm relative
humidity (%)70 72 67 52 43 38 37 40 47 52 58 65 54 56
1954
2010
Mean 3pm wind speed
(km/h)17.8 18.6 16.4 16.5 17.0 16.2 17.1 19.0 20.9 19.9 17.7 17.5 17.9 69
1941
2010
3pm wind speed vs
direction plot
Table 2 A summaries of the major climate statistics of Darwin
(Source:http://www.bom.gov.au/climate/averages/tables/cw_014015.shtml )
http://www.bom.gov.au/climate/cdo/about/definitionstemp.shtml#meanmaxtemphttp://www.bom.gov.au/climate/cdo/about/definitionstemp.shtml#meanmaxtemphttp://www.bom.gov.au/climate/cdo/about/definitionstemp.shtml#meanmaxtemphttp://www.bom.gov.au/climate/cdo/about/definitionstemp.shtml#meanmintemphttp://www.bom.gov.au/climate/cdo/about/definitionstemp.shtml#meanmintemphttp://www.bom.gov.au/climate/cdo/about/definitionsrain.shtml#meanrainfallhttp://www.bom.gov.au/climate/cdo/about/definitionsrain.shtml#meanrainfallhttp://www.bom.gov.au/climate/cdo/about/definitionsrain.shtml#decile5rainfallhttp://www.bom.gov.au/climate/cdo/about/definitionsrain.shtml#decile5rainfallhttp://www.bom.gov.au/climate/cdo/about/definitionsrain.shtml#decile5rainfallhttp://www.bom.gov.au/climate/cdo/about/definitionsrain.shtml#daysofrainhttp://www.bom.gov.au/climate/cdo/about/definitionsrain.shtml#daysofrainhttp://www.bom.gov.au/climate/cdo/about/definitionsother.shtml#meansunshinehttp://www.bom.gov.au/climate/cdo/about/definitionsother.shtml#meansunshinehttp://www.bom.gov.au/climate/cdo/about/definitionsother.shtml#cleardayshttp://www.bom.gov.au/climate/cdo/about/definitionsother.shtml#cleardayshttp://www.bom.gov.au/climate/cdo/about/definitionsother.shtml#cloudydayshttp://www.bom.gov.au/climate/cdo/about/definitionsother.shtml#cloudydayshttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amtemphttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amtemphttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amrhhttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amrhhttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amwindhttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amwindhttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amwindplothttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amwindplothttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean3pmtemphttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean3pmtemphttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean3pmrhhttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean3pmrhhttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean3pmwindhttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean3pmwindhttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amwindplothttp://www.bom.gov.au/climate/cdo/about/definitions9and3.shtml#mean9amwindplothttp://www.bom.gov.au/climate/averages/tables/cw_014015.shtmlhttp://www.bom.gov.au/climate/averages/tables/cw_014015.shtmlhttp://www.bom.gov.au/climate/averages/tables/cw_014015.shtmlhttp://www.bom.gov.au/climate/averages/wind/wrselect.shtmlhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pm.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmDec.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmNov.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmOct.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmSep.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmAug.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmJul.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmJun.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmMay.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmApr.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmMar.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmFeb.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.3pmJan.pdfhttp://www.bom.gov.au/jsp/ncc/cdio/cvg/av?p_stn_num=014015&p_prim_element_index=46&p_display_type=statGraph&period_of_avg=ALL&normals_years=allYearOfData&staticPage=http://www.bom.gov.au/climate/averages/climatology/relhum/IDCJCM0014_relative_humidity.shtmlhttp://www.bom.gov.au/jsp/ncc/cdio/cvg/av?p_stn_num=014015&p_prim_element_index=44&p_display_type=statGraph&period_of_avg=ALL&normals_years=allYearOfData&staticPage=http://www.bom.gov.au/jsp/ncc/cdio/cvg/av?p_stn_num=014015&p_prim_element_index=41&p_display_type=statGraph&period_of_avg=ALL&normals_years=allYearOfData&staticPage=http://www.bom.gov.au/climate/averages/wind/wrselect.shtmlhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.9am.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.9amDec.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.9amNov.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.9amOct.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.014015.9amSep.pdfhttp://www.bom.gov.au/clim_data/cdio/tables/pdf/windrose/IDCJCM0021.01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