Biomass-Advantages and Disadvantages

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Biomass - Important facts 

Biomass advantages and disadvantages are associated with some very important facts. Day by day the conventional energy sources like fossil fuels is reducing. Finding sources for conventional energy is a very complicated and lengthy process. But with the increasing population, the need for new energy sources is also rapidly increasing in developing countries and in rural areas. Sometimes the grid power is not economically feasible to expand in those areas. In many south Asian countries like India, Bangladesh and Pakistan biomass is the first choice when it comes to the production of heat for cooking. Here you can find the impact of renewable energy on the global warming in India. The most important biogas plant found in India is Fixed Dome Type Janata Model

Biomass-Advantages and Disadvantages
image courtesy: http://renewableenergyhub.com/

Definition of biomass fuel?

Biomass is naturally produced from plants and animals. It is natural and organic. Biomass is one of the most cheapest non-conventional energy sources because it is produced from micro organisms. Biomass stores energy from sunlight by the photosynthesis process. Though it is cheap and clean it is not a popular form of energy source like fossil fuels. Especially in the developed countries biomass has lost its popularity. But in the rural areas biomass is widely used in small industries and for cooking purposes. Some examples of biomass fuels are wood, manure, animal and human wastes, crops, manure etc. In the last two decades biomass has become very common alternative energy. 

Classifications of biomass 

Biomass is generally classified in two big classes 
  1. Solid biomass  like - weeds, agricultural residues, coconut shells, cotton stock con cob etc. 
  2. Powdery biomass like - rice husk, ground, cofee husk, sugarcane smashes parts etc. 


Biomass advantages and disadvantages 

If you talk about the advantages and disadvantages of biomass energy then we will see that there are very few cons. There are different techniques for the energy harnessing. One of the biggest disadvantage of biomass energy is that sometimes some biomass fuels are needed direct burning. Wood or dried cow dung cakes are some of the sources which need direct burning. And this can cause some pollution. So if not taken care of, biomass can produce severe environmental problems as it releases a lot of carbon. As a result the balance in the ecosystem can be hampered. 
We cannot deny the fact that biomass can be a good alternative fuel to fossil fuels. Biomass can be collected from various sources. So if this energy is harvested in a way that creates negligible harm then it can dispel some of the energy crisis of the world. So for the proper use of the biomass energy , appropriate policy should be made. Awareness about the potential biomass energy advantages and disadvantages should be created. All the energy sources have their own advantages and disadvantages. With proper guidelines and policy biomass can be a great sustainable and low cost clean energy. Like any other energy sources there are advantages and disadvantages of using biomass energy. Let's discuss about them: 

Advantages
  • Biomass energy is renewable or alternative. 
  • Biomass is carbon neutral. 
  • It is  inexhaustible fuel source. 
  • Biomass produces very low amount of  carbon compared to fossil fuel energy;
  • The environmental impact is minimum if the direct burning burning is avoided. Instead of that fermentation or pyrolysis can be used 
  • Alcohol and other forms of fuels produced from biomass is very clean burning and environment friendly. 
Disadvantages
  • Fossil fuels are more efficient than biomass fuels. 
  • Sometimes biofuel production can be proved a little expensive. 
  • Some biomass production plants need a lot of space to grow the raw materials of the plant (crops and plants)
  • Direct burning can produce pollution by particulate emission. 

Conclusion

In developing and rural areas biomass is still used in heating purposes and also for cooking. Using biomass farmers can do their agricultural activities. These days almost 16% of the world's total energy supply from biomass. In developing countries 40% of the rural supply come from the biomass energy. A number of environmental groups are strongly opposing the wide use of forest biomass use because of high carbon emission. For the better realization of biomass advantages and disadvantages, I think this post will be very helpful. Biomass fuels can be great option to replace the fossil fuels as a source of  power generation in rural, developing as well as developed countries

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Tidal Energy - Advantages and Disadvantages on electricity generation

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Tidal Energy - How Tidal energy works- An introduction 

All flowing water carry with them kinetic energy. When such water encounters a turbine, part of the momentum of the flowing water is transferred ton to the turbine, causing it to rotate. The rotation of the turbine cam then be used to generate electricity. So for electricity generation purpose we must know about tidal energy advantages and disadvantages.  Whether the water is om the open ocean, an estuary or a river, its motion can thus be utilized in generating energy. The tides occurring in the oceans are one such source of energy based on the movement of the water. If we analyze the tidal energy pros and cons then we will find that tidal energy is renewable and the output of this energy varies with the variation of the tidal range.

Now How tides are generated ?

  • Tides are generated by the gravitational forces of the sun and moon on the oceans. 
  • by the spinning of the earth around its axis 
  • and the relative positions of the earth, moon and the sun. 

 What are tides and tidal current ? 
Tides are the periodic vertical rise and fall of ocean water. The period between consecutive high tides is 12.5 hours. The tidal rise and fall of water is accompanied by periodic horizontal and to and fro motion of water called tidal currents. Tides and tidal current is intimately related. So we are already a getting an idea about the pros and cons of tidal power.

Difference between Tidal Energy and Wave Energy 


  • Tidal energy differs from wave movement. Waves have a period of only about 6 seconds, whereas tides have a period of about 12.5 hours. 
  • Waves are caused by surface winds, whereas tides are caused by the gravitational forces of sun and moon on ocean water. 
Have a look - 

The amplitude of tides covers a wide range from 25 cm to 10 m. The speed of the tidal currents is in the range of 1.8 km/h to 18 km/h. The tides and and tidal currents possess renewable energy. The rise and fall of water follows a sinusoidal curve.

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Advantages and disadvantages of tidal energy to generate electricity 

Advantage 
  1. The biggest advantage of tidal power, besides being inexhaustible, is that it is completely independent of the uncertainty of precipitation (rain). Even a continuous dry spell of any number of years will have no effect whatsoever on the tidal power generation.  
  2. A great environmental advantage of tidal power generation is - its free from pollution because it does not use in any fuel and also does not produce any unhealthy waste like gases, ash or atomic refuse. 
  3. Electricity generation from tidal power  do not require large areas of valuable lands because they are mainly on the seashore, 
  4. Peak power demand can be effectively met when it works in combination with thermal or hydroelectric systems. 
advantages and disadvantages of tidal energy


Disadvantage and solutions to tidal energy cons 

There are a number of reasons why the power generation is still novelty, rather than a normal source of energy, The reasons are -


  1. The fundamental drawback to all methods of generating tidal power is the variability in output caused by the variations in the tidal range. 
  2. The tidal ranges are highly variable and , thus the turbines have to work on a wide range of head variation. This is a great disadvantage of using tidal energy to generate electricity as this affects the efficiency of the plant. 
  3. Since the tidal power generation depends upon the level difference in the sea and an inland basin, it has to be intermittent operation, feasible only at certain stage of tidal cycle. This intermittent pattern could be improved to some extent by using multiple basins and a double cycle system. 
  4. The tidal range is limited to a few meters. As bulb turbine technology was not well developed for this range, use of conventional kaplan runners was the only alternative. This was found to be unsuitable. Now, with the development of reversible flow bulb turbines, this difficulty is overcome. 
  5. The duration of power cycle may be reasonably constant, but its time of occurrence keeps changing, introducing difficulty in the everyday planning of the load sharing grids. This handicap can be removed now with the help pf computerized programming. 
  6. Sea water is corrosive and it was feared that the machinery may get corroded. Stainless steel with a high chromium content and a small amount of molybdenum and the aluminium  bronzes proved to be good corrosion resistant at La Rance project. The vinyl paint exhibited good results. 
  7. Construction in seas or estuaries is found difficult. 
  8. Cost is not favorable compared to the other sources of energy. 
  9. It is feared that the tidal power plant would hamper the other natural uses of estuaries such as fishing or navigation. 

Please Read:

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Solar Concentrator Classification: Advantages of Solar Concentrator

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Introduction: Definition of Solar Concentrators:


Solar Concentrator is a device which concentrates the solar energy incident over a large surface onto a smaller surface. The concentration is achieved by the use of suitable reflecting or refracting elements, which results in a increased flux density on the absorber surface compared to that existing on the concentrator aperture. In order to get a maximum concentration an arrangement for tracking the sun’s virtual motion is required.  An accurate focusing device is also required. Thus a solar concentrator consists of a focusing device, a receiver system and a tracking arrangement. Temperature as high as 3000 degrees Celsius can be got from a solar concentrator. So they have potential applications in both thermal and photovoltaic utilization of solar power at high temperatures.
Solar concentrating devices have been used for a long time. In Florence as early as 1695, a diamond could be melted by solar energy. Lavoisier carried out a number of experiments with his double-lens concentrator. The knowledge concentrator dates back even time of Archimedes, whose book "On Burning Mirrors" is an evidence of this fact. Many uses of concentrators were reported in the eighteenth and nineteenth centuries, particularly in heat engines and steam production. The advantages of concentrator are as follows: 

Solar Concentrator Classification: Advantages of Solar Concentrator

The advantages of solar concentrator


1. It increases the intensity by concentrating the energy available over a large surface onto a smaller surface (absorber)
2. Due to concentration on a smaller area, the heat loss area is reduced. Further, the thermal mass us much smaller than that of a flat plate collector and hence transient effects are small.
3. The delivery temperatures being high, a thermodynamic match between the temperature level the task occurs.
4. It helps in reducing the cost by replacing an expensive large receiver by a less expensive reflecting or refracting area.

Disadvantages of Solar Concentrator


However, concentrator is a optical system and hence the optical loss terms become significant. Further it works on beam component of solar radiation, resulting in loss of diffuse component. Although the basic concepts of flat plate collectors are applicable to concentrating systems, a number of complications arise because of non-uniform flux on absorbers, wide variations in shape, temperature and heat loss behavior of absorbers and finally the optical considerations in the energy balance conditions. It may be noted that higher the concentration of the collector, higher is the precision of optics and more is the cost of the unit. In addition to the complexity of the system, the maintenance requirements are also increased.

Classification of solar concentrator


Solar concentrators may be classified as (i) tracking type and (ii) non-tracking type. Tracking may be continuous or intermittent and may be one-axis or two -axes. As the sun may be followed by moving either the focusing part or receiver or both; concentrators can be classified accordingly. Further the system may have distributed receiver or central receiver.
The concentrators may also be classified on the basis of optical components. 
They may be 

1. Reflecting or refractory type
2. Imaging or non-imaging type
3. Line focusing or point focusing type

The reflecting or refracting surface may be one piece or a composite surface, it may be a single stage or two stage type system and may be symmetric or asymmetric. In practice however hybrid and multistage systems, incorporating various levels of the features, occur frequently.

Types of solar concentrators


There are a number of methods by which the flux radiation on receivers can be increased. Some of them have been discussed here:

   Tracking Concentrators classification: 


   Tracking Concentrators can be further classified as


    Concentrators with one axis tracking 

    These are used to achieve moderate concentration. A few of them have been described below.

i.    Fixed Mirror Solar Concentrator (FMSC)
ii.  Cylindrical Parabolic Concentrator
iii.  Linear Fresnel Lens/reflector
         (Follow the link of one axis tracking concentrator for getting the description of all three concentrators)

Concentrators with two-axes tracking 

           In order to achieve a high concentrators for high temperatures solar processes, concentrators with double curvatures are used. These requires two axes tracking of the sun. Some of these have been described below: 

i. Paraboloidal dish concentrators 
ii. Central Tower Receivers 
iii. Circular Fresnel Lens 
iv. Hemispherical bowl mirror

Non-tracking concentrators classification 

These are classified as follows: 

i. Flat Receiver with booster mirror 
ii. Tabor- Zeimer Circular Cylinder 
iii. Compound Parabolic Concentrator 
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Renewable Energy Sources: The Great Green Hope for clean environment

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Fossil fuel use is the prime cause of global warming and ocean acidification. Then the obvious solution to that problem is that:

  • Either some way is found out to use fossil fuels, but not let the resulting CO2 escape to the atmosphere, in other words to sequester (catch/lock up) the CO2 , or
  • To find other fuels which do not release CO2 (or other greenhouse gases) 

Renewable Energy Sources: The Great Green Hope 


The world is trying both the options. The sequestration of CO2 is very much possible theoretically, it is as of now uneconomical. Moreover, quantities of CO2 that must be sequestered is so huge that there is no way to store it without serious risks to environment and public safety.
Realizing the limitations of sequestering fossil fuel CO2, great hope has been pinned on the renewable energy sources. The year 2008 has seen more funds to be allocated globally to renewable – based power generation than ever before. The year also witnessed renewables getting higher share of funds than conventional energy sources for the first time ever.

How tough it is to find replacement which will be as efficient as petrol and diesel, and yet be non-polluting, can be gauged from figure below. It show s that the volumetric energy density, in other words energy packed in each liter of diesel is as much as double of that of ethanol and three times higher than liquid hydrogen. Petrol is more energy-dense than bio-diesel; also ethanol, hydrogen, etc. This means that if vehicles are to be run on liquid hydrogen- which is ultimate aim of most of the R&D- they have to have their tanks three times larger than what they were for the diesel engine. To put in other words, even if we succeed in finding fuels which are cleaner than petrol and diesel, we have little hope of finding fuels which are as efficient as the twoRenewable Energy Sources: The Great Green Hope
Fossil fuel use is the prime cause of global warming and ocean acidification. Then the obvious solution to that problem is that:
Either some way is found out to use fossil fuels, but not let the resulting CO2 escape to the atmosphere, in other words to sequester (catch/lock up) the CO2 , or
To find other fuels which do not release CO2 (or other greenhouse gases) 
The world is trying both the options. The sequestration of CO2 is very much possible theoretically, it is as of now uneconomical. Moreover, quantities of CO2 that must be sequestered is so huge that there is no way to store it without serious risks to environment and public safety.
Realizing the limitations of sequestering fossil fuel CO2, great hope has been pinned on the renewable energy sources. The year 2008 has seen more funds to be allocated globally to renewable – based power generation than ever before. The year also witnessed renewables getting higher share of funds than conventional energy sources for the first time ever.
How tough it is to find replacement which will be as efficient as petrol and diesel, and yet be non-polluting, can be gauged from figure below. It show s that the volumetric energy density, in other words energy packed in each liter of diesel is as much as double of that of ethanol and three times higher than liquid hydrogen. Petrol is more energy-dense than bio-diesel; also ethanol, hydrogen, etc. This means that if vehicles are to be run on liquid hydrogen- which is ultimate aim of most of the R&D- they have to have their tanks three times larger than what they were for the diesel engine. To put in other words, even if we succeed in finding fuels which are cleaner than petrol and diesel, we have little hope of finding fuels which are as efficient as the two. 

Renewable Energy Fuel and Power Sources

Figure: Fuel and Power Sources

Please Read the following articles : 

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Solar Air Heater Classification and Advantages

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This post provides the description and analysis of different types of solar air heaters used in space heating and drying purposes. The Solar air heaters have the following advantages over other solar heat collectors.

Solar Air Heater Advantages 

  • The need to transfer heat from working fluids to another fluid is eliminated as air is being used directly as the working substance. The system is compact and less complicated.
  •  Corrosion is a great problem in solar water heater. And this problem is not experienced in solar air heaters.
  •  Leakage of air from the duct does not create any problem.
  • Freezing of working fluid virtually does not exist.
  • The pressure inside the collector does not become very high. 
  • Thus air heater can be designed using cheaper as well as lesser amount of material and it is simpler to use than the solar water heaters.

Solar Air Heater Disadvantages 



  • Air heaters have certain disadvantages also the first and foremost is the poor heat transfer properties of air. Special care is required to improve the heat transfer. 
  • Another disadvantage is the need for handling large volume of air due to its low density. 
  • Air cannot be used as a storage fluid because of its low thermal capacity. 
  • In the absence of proper design the cost of solar air heaters can be very high. 

Solar Air Heater Applications  


The applicability of the solar air heater depends on various factors like high efficiency, low fabrication cost, low installation and operational cost and some other specific factors regarding specific uses. Extensive work in solar air heaters has been done. Various geometries have been proposed and their theoretical investigation is carried out. But it needs commercial exploitation.
 

Solar Air Heater Classification


A conventional solar air heater is essentially a flat plate collector with absorber plate, a transparent cover system at the top and insulation at the bottom and on the sides. The whole assembly is encased in a sheet metal container. The working fluid is air, though the passage for its flow varies according to the type of air heater.
Material for construction of air heaters are similar to those of liquid flat plate collectors. The transmission of solar radiation through the cover system and its subsequent absorption in the absorber plate can be given by expressions identical to that of liquid flat plate collectors. Selective coating on the absorber plate can be used to improve the collection efficiency but cost effectiveness criterion should be kept in mind.
 

Non-porous Type solar air heater


In non-porous type, air stream does not flow through below the absorber plate but air may flow above and/or behind the plate.

In first type, no separate passage is required and the air can flows between the transparent cover system and the absorber plate. ( see the figure). In this heater as the hot air flows above the absorber, the cover receives much of the heat and in turn, loses it to the ambient. Thus a substantial amount of heat is lost to the ambient and hence this air heater is not recommended.
The non-porous type with air passage below the absorber is most commonly used. A plate parallel to the absorber plate is provided in between the absorber and the insulation, thus forming a passage of high aspect ratio.
In another variety of non-porous type air heater, the absorber plate is cooled by air stream flowing on both sides of the plate.  


Depending on the type of the absorber plate, the air heater can be non-porous and porous. Figure below shows the non-porous absorber type air heaters.
non-porous type solar air heaters


It may be noted that the heat transfer between the absorber plate and the flowing air being low, the efficiency of air heaters is less. The performance, however, can be improved by roughening the absorber surface or by using a vee-corrugated plate as the absorber plate. Turbulence induced to the air flow helps increase the convective heat transfer.
The radiative loss from the absorber plate are significant, unless selective coatings are used, decreasing the collector efficiency. Also, the uses of fin may result in a prohibitive pressure drop, thus limiting the applicability of non-porous type.
 

Porous type solar air heater    


The second type of air heaters has porous absorber which may include slit and expanded metal, overlapped glass plat absorber and transpired honeycomb.

The sir heater with porous type of absorber has the following advantages: 


Advantages of porous solar air heater 


  • Solar radiation penetrates to a great depth and is absorbed along its path. Thus the radiation loss decreases. Air stream heats up as it passes through the matrix. 
  • The pressure drop is usually lower than the non-porous type. 


It may be noted however, that an improper choice of matrix porosity and thickness may cause reduction in efficiencies as beyond an optimum thickness, matrix may not be hot enough to transfer the heat to air stream.

Wire mesh porous bed formed by broken bottles and overlapped glass plate are some examples of porous type absorbers used in Solar air heaters

porous type solar air heater classification


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Geothermal Energy: Pros and Cons

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Every type of energy has its own advantages and limitations. In this article I will discuss about the pros and cons of geothermal energy.


What is Geothermal Energy?


The earth is a heat reservoir of heat energy in the form of molten interior. Surface manifestation of this heat energy is indicated by hot water springs and geysers discovered at several places. Heat can be experienced from the temperature rise of the earth’s crust with increasing depth below the surface. Radial temperature gradient increases proportionally to depth at a rate of 30 degree Celsius per kilometer. At a rate of 3-4 kilometers water bubbles up; while at a depth of 10-15 kilometers the earth’s interior is as hot as 1000 to 1200 degrees. The core of the earth consists of a liquid rock known as Magma having a temperature about 4000 degrees.

The geothermal heat is transferred to the underground reservoir of water which also circulates under the earth’s crust. Its heat dissipates into the atmosphere as warm water and steam vents up through the fissures in the ground as hot springs and geysers. Limitless heat generation by the magma and by radioactive decay of unstable elements like K40, Th232 and U235 which are abundant in the earth’s crust are forms of geothermal energy and considered as renewable energy resource. 
 
Before analyzing geothermal energy pros and cons one must have knowledge about structure of the earth’s interior. The earth consists of a series of concentric shells. Its internal structure can be divided into three parts – Crust, Mantle and Core. 
 
 
The crust

The solid crust of earth is 70-100km thick and can be divided into continental crust, 20-65 km under the continents and oceans crust 7 km under the ocean basins. The study of the seismic waves has indicated that the earth’s crust underneath continents is thicker than that of that underneath the oceans as seismic waves travels faster in oceanic crust than in continental. The oceanic crust consists of low density rocks (basalts) whereas the continental crusts largely contain the granite. Enormous amount of geothermal energy can be got from the cracks in the earth’s crust. Whenever a geothermal site is drilled. Steam, hot water gush out through the drilled hole and become a source of geothermal energy. 
 
The mantle 

 For the utilization of geothermal energy we must gain some basic knowledge about the layer underneath the crust. It is called the mantle. The upper rigid part of the mantle extends up to 100km below the separating crust and contains mainly iron and magnesium. The crust and upper mantle form ‘lithosphere’. The lower mantle extending up to 2900 km below the earth’s surface is less rigid and is hotter. This is known as ‘asthenosphere’ and is capable of being deformed. The phenomena of plate tectonics i.e. the movement of the earth’s crust is caused by the movement of the lithosphere over the asthenosphere. 
 
The core 

It forms about 35% of the earth’s mass and has a radius of 3500km. The outer core is molten or liquid while the inner core (radius 1170 km) is believed to contain nickel-iron alloy. The hot molten rock of the mantle is called magma. The outer core being in the molten state behaves like a liquid responsible for all the earthquakes and volcanic activities. A thermal gradient is created from core to mantle and earth crust. The outward of heat energy from molten hot interior of the earth to the cooler surface makes the earth to operate like a heat engine. That’s one of the advantages of geothermal energy. 
 

Geothermal Energy Pros and Cons

 
Actually geothermal energy is a great source of heat found under the earth’s crust. It has its own advantages and disadvantages. Already fossil fuels have started to diminish. And in the future geothermal energy is expected to produce a great amount of power with a relatively cheap rate. Despite all this pros geothermal energy is not used widely because of this problems. 
 

Geothermal energy disadvantages 

  •  Geothermal energy is not wide spread source of energy because to utilize geothermal energy perfect equipment and infrastructure is needed. So world wide installation of geothermal plants is not possible. For a efficient geothermal plant thousands of skilled manpower is needed.
  • The production of electricity from geothermal plant needs high installation cost because of setting up miles long pipe underneath the earth's crust. To get geothermal energy from a plant high skilled staff in needed which yields high cost.
  • Initial research is needed to be done before a setting up a geothermal plant because the natural steam production can be reduced in course of time. Geothermal fields can die and can cause a great deal of loss to the company.
  • All the countries cannot use geothermal energy because all countries fall in the geothermal field region. It is a great geothermal disadvantage.
  • While digging a geothermal field poisonous gas can come out from the site. This can cause great harm to the life of people and animal. This can also pollute the atmosphere. 
  • geothermal disadvantages include the problem of transportation. It cannot be transported easily. Once the geothermal energy is extracted from the field it can only be used in the plants of its surroundings.
 This were the major geothermal energy disadvantages. 

Geothermal energy advantages


  • The reliance on the fossil fuel will be drastically reduced if the proper utilization of geothermal energy is ensured. This will help the countries which have to bought a great amount of fossil fuel every year. 
  • The less the use of the fossil fuels the less the pollution of the environment. It is the most important advantage of geothermal energy. 
  • The running cost of geothermal energy is very low. The price is 80% less than the running cost of plant run by fossil fuels. 
  • Geothermal energy can used directly. From an ancient time people are relying on the geothermal energy for heating, bathing and washing. 
  • If geothermal energy is properly utilized it will create a great impact on the world economy and creat job opportunities for thousands of people. 
Finally we can say that the world energy consumption is rising. The demand for different energy sources are also increasing. In this situation the use of renewable energy with innovation can solve all the problems. So all the scientists and engineers try to know about geothermal energy pros and cons and make the world a better place.

Geothermal energy pros and cons


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Fixed Dome type – Janata Model Biogas Plant Construction

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Biogas can be a great alternative of fossil fuels. It is already in use in many rural areas. Biogas plants use animal waste, plant waste and human waste. All this wastes have great combustible property. Biogas is an excellent renewable energy source. It is produced by the digestion of waste materials by the means of anaerobic reaction. Anaerobic means the absence of Oxygen. In most of the rural areas cow and buffalo dungs is used as biomass fuel for producing gas. The typical composition of biogas is

Methane - CH4  (55 - 65 %)
Carbon dioxide CO2  (30-40%) 
H2 , H2S , N2      (< 10%) 

Biogas Technology involves the bacterial breakdown of the waste materials to produce Methane, Carbon Dioxide and Water . The process involves the following three steps - 

Hydrolysis 

Organics materials contains mainly carbohydrate mainly in the form of cellulose, hemicellulose and lignin. These have very complex structure which is not suitable for absorption. So these matters are converted into simple soluble materials by the action of celluolytic or hydrolytic bacteria. Concentration of bacteria in the organic materials, temperature and pH controls the rate of hydrolysis. pH between 6 to 7 and temperature between 30-40 degree Celsius is good for bacteria to work. 

Acid Formation 

Simple organic materials are turned into acid by acetogenic bacteria. 

Methane Formation 

Methanogenic bacteria turns the acid into methane, carbon dioxide, hydrogen, nitrogen and oxygen. The methane content is 60%. It has high calorific value. Very good for combustion and producing energy. 

Biogas plants 

Biogas plant converts the organic wastes like dung, human waste and plant wastes into a inflammable and it also produces a high quality organic manure as a by product. Most popular two designs of biogas plant is 

1. Fixed Dome Type Biogas plant (Janata Model) (Operates in constant volume)
2. Floating Drum type Biogas plant. (Operates in constant pressure)

In this article I will discuss about the first one - The Fixed Dome type or Janata Model biogas plant



Fixed Dome Type Biogas Plant - Janata Model 


Fixed Dome Type Biogas Plant

This type of biogas plant is very economical is design. It works with the constant volume principle. The main structure is made up of brick and cement masonry. This type of plant doesn't have any moving parts so it is safe from wear and tear. The operating pressure varies from 0 to 100 cm of water column. It is also known as Janata model.  


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What is the cheapest source of renewable energy ? - Biomass

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The conventional energy sources are rapidly depleting because of their excessive use in the modern world. And that's why energy or power generation sectors are very much interested in the utilization of renewable energy sources. The conventional energy source includes Natural Gas, Coal, Nuclear Energy, Crude oil etc. The price of these non-renewable fuels is almost touching the sky and getting closer every day. But the price of utilization of non-conventional energy source is not very cheap either. Cheap renewable energy source promises a greater power generation with a cleaner environment.


Expensive Conventional Energy Sources


Crude Oil


According to Brent Crude Oil the price of one barrel oil was $116! Yeah that’s right and yet oil is expected to remain the predominant source of energy production! The demand of oil will increase by 1.7% in the year of 2025 because of the energy consumption in USA and developing Asia. So it is high time we should look forward for a cheap reliable energy source. 

Natural Gas



Another very attractive non-renewable fuel is Natural Gas. According to the estimation the use of natural gas will be increased by 67% by the year 2025. And therefore the consumption of Natural Gas will be 151 trillion cft. If the consumption increases in that rate then it can be predicted that the life of Natural Gas will be very short on The Earth. 

Coal 



70% Steel production companies uses coal as fuel. 38% of the world’s electricity generation comes from coal. It has high calorific value but at the same time very detrimental to the environment. The high quality coal comes in exchange of a high price!

Nuclear Energy


Uranium is the main fuel for producing energy by nuclear fission reaction.  U235 is the primary fuel for nuclear power generation. According to World Nuclear Association the price of 1 kg Uranium stands US $2360 (After conversion enrichment, fabrication)! And it is only the operating cost!
Capital cost + Plant operating cost + External cost = $5300/kW!



Cheapest renewable energy sources


Expensive Non-conventional or Renewable Energy Sources


Solar Energy


Sun is the source of energy. The energy from the sun in 19 trillion toe (Ton of Oil Equivalent)/year. And the world’s energy consumption is only 9 billion toe. So a fraction of sun’s energy can fulfill the energy needs. Sun’s energy is extracted mainly by solar collectors. Photovoltaic Cells (PV) are used to store the energy from sun. A single solar panel for household use can cost up to $35000 according to the power output. And this cost does not account the taxes, battery and installation cost! So clearly it is not the cheapest source.

Wind Energy


We get wind because of the pressure difference on the different areas of the earth. The air moves from high pressure to low pressure area and it causes the wind. Wind energy is actually derived from solar energy because Sun heats the earth and creates temperature differences. Hot air expands and rises up and cool air near the oceans rushes and fill that space. That’s how air is circulated. Wind energy potential is not available for use in all the places. Energy density and normality depends on geographical locations. Wind energy is very erratic and irregular. Wind turbine design is very complex and needs a good investment. To create a large plant based on wind turbines, capital intensive technology is needed.

Geothermal Energy


The interior of the earth is full of molten materials. The inner core has solid materials and the outer core is filled up liquid rock named Magma (4000 degree Celsius). Geothermal resources can be divided into this two parts –

  •      Liquid dominant resource, which involves
  1.        Flash steam power plant 
  2.        Binary Cycle Power Plant
  •      Vapor dominated resource.


Though geothermal energy is a very good potential source, it has some limitations. Geothermal energy is available in the geothermal sites only.

Ocean Energy


It is kind of hydro energy but it is mainly derived from Thermal radiation of the sun. The surface water of the ocean is heated but the deep ocean water still remains cool. These temperature difference can be used to get OTEC (Ocean Thermal Energy Conversion). From the 19th century scientists are trying to make this plant work but it is not that popular because of the high cost of the plant. It needs very large diameter pipe which is needed to be submerged a kilometer or more than that to get the cool water.

Cheap Non-Conventional Energy Source


Hydropower source – Tidal Energy


Hydro power can be got from tides and waves. Tidal power plant needs mechanical equipment. This energy is mainly due to the pull of moon.
It can be
  •          Single basin single tide
  •          Double basin single tide
  •          Double basin with the power house in the separating dam.

 It can be proved very useful for the countries having large water reservoirs. The fuel cost is absolutely nil. But the erection of this type of plant can take years. And the rate of return is very low. So the plant owners or government can suffer, running this type of power plant. But it is one of the cheapest source of renewable energy.

Biomass


According to my studies I think Biomass is the most potential source for energy production. It can be got from forest areas, agricultural residues, Urban wastes, Industrial wastes and natural vegetation.

Biomass – The Cheapest source of Renewable Energy


Yes, I would say biomass because it can use aquatic crops, vegetable oil crops, and animal wastes even human wastes for fuel production. Every day almost 42 million tons of solid waste and 6000 million cubic meters of liquid waste are generated in urban areas. What you will do with all these huge waste materials? If these are utilized to produce power than it would be much better for our environment. And these waste materials are not expensive for sure. Biomass can provide us with biofuels and biogas.

Biofuels


Charcoal – These possess high energy density and can be burned at temperatures high as 600 degrees. Very good for household, commercial and industrial uses.

Briquetting – It can be produced from coconut shells, saw dust, wood chips etc. This are made into high density fuel element.

Vegetable oils – Palm, coconut, cotton, rapeseed and soybean oils can be used as bio fuels. These can mixed with diesel to form premium grade fuel.

Biogas –


Biogas can be produced from digestion of the waste materials like human waste, animal waste and plant waste.  Biogas is mixture of Methane, Carbon dioxide, Hydrogen, Hydrogen Sulfide and Nitrogen. Here Methane CH4 is predominant (55 -65%). Methane is very clean burner.
Biogas Plants are also very cheap to fabricate. There are two very popular designs to produce biogas
       
  •         Floating Drum Biogas Plant (KVIC model) or Chinese Biogas Plant
  •         Fixed Dome Type Biogas Plant (Indian Biogas plant design, Janata Model)

Biodiesel


Biodiesel can be produced by mixing organic oil with diesel. Non-edible oil seeds are much preferred for the production of the oil. These produces very small amount of CO2 and zero sulfur. These fuels have very high flash points so they are easily transported without any danger of self-ignition and combustion. This fuels give high octane ratings. Biodiesel can be produced from Jatropha Curcus, Jojoba, Sunflower, and Soybean and also from peanut. Amongst them Jatropha is the cheapest. It is economically favorable and it costs $0.08/kg of seeds! Where Jojoba seeds costs $3.39/kg.
So Biomass derivatives – biofuels, biogas and biodiesels are the cheapest source of renewable energy.






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Condenser Classification – De-aeration of Condenser

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What is Condenser  ? 


The primary purpose of the condenser is to condense the exhaust steam from the turbine and thus recover the high-quality feedwater for reuse in the cycle.
In order for a steam power station to operate an efficient-closed cycle, the condensing plant, cooling water (CW) system, and associated pumps must extract the maximum quantity of heat from the exhaust steam of the LP turbines
 

The primary functions of the Condensing plant are:

·         To provide the lowest economic heat rejection temperature for the steam cycle
·         To convert the exhaust steam to water for reuse in feed the cycle
·         To collect the useful residual heat from the drains of the turbine feedheating plant, and other auxiliaries. 
·         In so doing, the circulating cooling water temperature being low enough, it creates a low back pressure (vacuum) for the turbine to exhaust to. 
·         This pressure is equal to the saturation pressure corresponds to the condensing temperature which is a function of the cooling water temperature. 
·         Since the enthalpy drop and hence turbine work, per unit pressure drop is much greater at low pressure than the high pressure end of the turbine. 
·         The condenser, by lowering the back pressure a little bit increases the work of the turbine, increases the plant efficiency, and reduce steam flow for a given output 
·         The lower the pressure, the greater the effects

 
Condensing power plants are, therefore, much more efficient than non-condensing ones.
(Why Condensing power plants are much more efficient than non-condensing ones, I think you got the answer)

 

Some other functions of Condenser: Additional Condenser Objectives

 
In addition to the condenser satisfying the primary functions, its design must also be capable of meeting the following objectives:

·         To provide the turbine with the most economic back pressure consistent with the seasonal variations in CW temperature or the heat sink temperature of the CW system.
·         To effectively prevent chemical contamination of the condensate either from CW leakage or from inadequate steam space gas removal and condensate de-aeration.
·         The aim of the designs is to ensure that these objectives are met within the framework of the following practical considerations:

 i. Economies of size, space and pumping power

 ii.  Ease of maintenance and construction

 iii. An economical turbine back pressure is from 1.0 to 3.5 in Hg abs

Classification of Condensers:

• There are two broad classes of condensers:

Direct contact type condensers — the condensate and CW directly mix and come out as a single stream

Surface condensers — are shell-and-tube type Heat Exchanger where the two fluids do not come in direct contact and the heat released by the condensation of steam is transferred through the walls of the tubes into the cooling water continuously circulating inside them. 


Direct Contact type condenser

When low investment is desired and condensate recovery is not a factor, direct-contact condensers are effective.

They are relatively simple to build and operate, are limited to sizes less than 250,000 lb. (114 tons) of steam per hour 

Direct Contact type condensers can be of three types:

·         Spray condenser
·         Barometric condenser
·         Jet condenser


 Direct Contact Spray Type


·         In a spray condenser the cooling water is sprayed into the steam which by mixing directly with cold water gets condensed.
·         Part of the condensate, equal to the turbine exhaust flow, is sent back to the plant as feedwater. 
·         The remainder is cooled in a dry cooling tower to state 5 and is then sprayed on to the turbine exhaust thus, the cooling water continually circulates.

T-S diagram of direct contact spray condenser

Direct Contact Barometer Type

·         The cooling water is made to fall in a series of baffles to expose large surface area for the steam fed from below to come in direct contact.
·         The condensed steam and the cooling water mixture falls in a tail pipe to the hot well below the tail pipe compresses the mixture to atmospheric pressure at the hot well by virtue of its static head
direct contact barometer type condenser

Direct Contact Jet Type

·         In the jet-type Condenser the height of the tail pipe is reduced by replacing it with a diffuser
·         The diffuser helps raising the pressure in a short distance than a tail pipe
·         In all direct contact Condensers the non-condensable gases must be removed which is usually done with a steam-jet air ejector (SJAE)


Surface Type Condensers


·         Surface Condensers shell and tube heat exchangers are mostly used in power plants
·         For the convenience of cleaning and maintenance cooling water flows through the tubes and steam condenses outside the tubes
·         Present-day condensers have heat transfer surface areas that exceed 1 million ft2 (93000 m2)
·         Condensers are designed with one, two, or four water passes.
·         The number of passes determines the size and effectiveness of a Condenser.

Schematic of two pass surface condenser
 

Single Pass Condenser

In an A single-pass condenser cooling water flows through all the Condenser tubes once, from one end to the other.

Two Pass Condenser


In Two-pass condenser water enters half the- tubes at one end of a divided inlet water box. And then passes through these tubes to an undivided water box at the other end. Then they reverse direction and passes through the other half of the tubes back to the other side of the divided water box.

Typical Two Pass Surface Condenser for a large steam power plant


Single Pass Condenser should be used or two pass? 
A single-pass condenser with the same total number size of tubes, i.e., the same heat-transfer area, and same water velocity, requires twice as much water flows but results in half the water temperature rise and thus lower condenser pressure

Thus such a single—pass condenser is good for plant thermal efficiency and reduces thermal pollution, but requires more than twice the water and hence four times the pumping power

Water boxes are often divided beyond the divisions required by the number of passes


A divided water box single-pass condenser may have a partition in both the inlet and outlet water boxes at opposite ends of the condenser — allows half the condenser to operate while the other half is being cleaned or repaired. 


Divided water boxes have duplicate inlet and outlet connections, each with its own circulating water circuit. 
 
Many large modern-day power plants usually have two or more low-pressure turbine sections in tandem.
The condenser may be divided into Corresponding sections or shells.  

Single Pressure Condenser

 
When the turbine exhaust pressure in all sections is same, i.e. when the exhaust ducts are not isolated from each other, it is known as a single-pressure condenser. 
 

Multi-Pressure Condenser


If the exhaust ducts are isolated from each other, these individual condenser shell pressures will increase because the circulating water temperature will increase as it flow from shell to shell — a multi-pressure condenser

Why multi pressure condenser is preferable than single pressure condenser?
 
A multi-pressure condenser results in efficiency improvement because the average turbine back pressure is less compared with that of a single-pressure condenser (Which is determined by the highest circulating water temperature)

In essence, condensers are almost custom designed to suit individual requirements of steam flow available cooling water flow and temperature, available space and other variables. 

Surface Type Condenser Design Considerations


A condenser design can be established for a given performance rating based on eight principal variable which are

·         Total heat transferred, which is a function of 
 
Ø  Weight of steam to be considered.
Ø  Enthalpy of steam less enthalpy of condensate. 
Ø  Enthalpy loss or gains of drains and make up. 
 
·         Absolute static steam pressure.
·         Cooling water flow rate
·         Cooling water inlet temperature.
·         Cooling water outlet temperature.
·         Cooling water velocity through tubes.
·         Effective heat transfer surface, which is a function of:

 Ø  Number of tubes
Tube length
Tube diameter
Tube thickness
Tube material
Number of cooling water passes
Ø  Service conditions:

o   Tube cleanliness
o   Air in-leakage


The tube material can be:
  • Cupronickel (70% Cu, 30% Ni)
  • Aluminum brass (76% Cu, 22% Zn. 2% AI
  • Aluminum bronze (95% Cu, 5% AI)
  • Muntz metal (60% Cu, 40% Zn)
  • Admiralty alloy (71 % Cu, 28% Zn, 1 % Sn)
  • Stainless steel
Temperature profile of a condenser

De-aeration or Air Removal of condenser
 

Air may leak into the condenser shell through flanges or sometimes comes along with steam which has leaked into the exhaust end of the turbine along the shaft


This air affects the condenser performance badly because of the following reasons:

·         It reduces the heat transfer considerably
·         It reduces the condenser vacuum and increases the turbine exhaust pressure thus reducing the turbine output

 Good de-aeration within a condenser requires time, turbulence and good venting equipment

·         The cold condensate falling from the lower tubes must have sufficient falling height and scrubbing steam for reheat and de-aeration

·         The scrubbing steam is provided by allowing some of the incoming steam to pass through an open flow area directly to the bottom tubes to reheat the condensate — non condensable are more easily released from a hotter than a colder liquid.
·         Once the non-condensable are released, they are cooled to reduce their volume before being pumped out of the condenser

·         For this a number of water tubes, about 6 to 8% in the tube bundle, are set aside for this function. 

·         This, called an air-cooler section, is baffled to separate the non condensables from the main steam flow

·         Most of the condensation takes place on the main bank of tubes and the air is drawn over another smaller bank which is shielded from the main bank by a baffle and is called the a aircooler. 
·         Here, further condensation takes place at a lower temperature and thus, there is saving in feedwater as well as in air ejection load.


Air Cooler section in condenser


·         Jet pumps are used to pump out the non-condesables — known as steam jet air ejectors (SJAE)

Ø  In a two-stage ejector, main steam is used at a reduced pressure that enters a driving nozzle in the first stage ejector
 
Ø  It exits with a high velocity and momentum and reduced pressure

Ø  This reduced pressure draws in the non-condensables from the condenser

Ø  By a process of momentum exchange, the gases are entrained by the steam jet

two stage steam jet air ejector with inter condenser and after condenser


·         The combined flow of steam and gas is now compressed in the diffuser of the first-stage ejector and discharged into a small inter-condenser, where the steam is condensed by passing across cooling pipes in much the same manner as the main condenser.
·         Cooling here, however, is accomplished by the main condenser condensate and is part of the feedwater heating system, resulting in improvement in efficiency of the plant.
·         The non-condensables and any remaining steam are then passed to the second stage ejector, where they are compressed further and passed to an after-condenser


Vacuum efficiency of a Condenser

Sometimes a term called ‘Vacuum efficiency’ is often used a regard to a condenser

It is defined as:

Vacuum efficiency = (Vacuum produced by steam condenser inlet/Barometric pressure - Saturation pressure at exhaust steam pressure)


Condenser efficiency

 
Another term called ‘condenser efficiency’ is also used sometimes.


Which is defined as:

Condenser efficiency = (Actual temperature rise of cooling water/Maximum temperature rise of cooling water)


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