Evaluating the public perception on domestic electricity tariff structure | Survey



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Go to survey (Sinhala version)

1. Purpose of the Survey

The EESoc panel discussion was initiated with the purpose of serving the power sector with an unbiased and a fruitful discussion regarding a timely issue. Considering the prime importance prevailing in the national power sector, the theme for the year 2013 is suggested as “Towards a rational consumer tariff”. The panel will provide suggestions on how Sri Lanka can move into a more rational tariff structure.

As we believe, the suggestion would definitely be a technically sound and feasible one considering all the engineering and economic aspects in the field. This survey is proposed with intention of integrating social aspects to this proposal to be suggested.

Whatever the suggestions, acceptance of this ultimately depends on the consumer perceptions and their impression on this change. Requirement of a change management programme is a highly essential and important aspect especially in Sri Lankan context. This can be achieved by conducting an effective communication between supply side and consumers, providing accurate information to consumers.

Before moving to a change management program, it is necessary to understand their interest, knowledge, behaviors, beliefs and attitudes towards the electricity pricing. EESoc is expecting to proceed this survey with the intention of all of above mentioned purposes, in collaboration with the EnergyzEE team.

2. Objectives of the Survey

  • Prepare the sample to represent the actual population based on the consumption of units.
  • Educate people on the different tariff structures and get a feedback (comments) on the tariff structures according to their personal views.
  • Get the public perception on the relationship between electricity cost and electricity tariff.
  • Evaluate the understanding of the public about the load profile in conjunction with electricity tariffs.
  • Evaluate according to the public perspective what communication channels are best suited to convey information about tariff and how those media could be effectively utilized

Introduction to Wind Power Plant technologies in the world


Renewable energy is the main concern of the global energy sector to face the energy crisis occurred with the depletion of fossil fuel. Wind energy is one of the prominent renewable sources of energy currently used globally. Following the global trend, Sri Lanka too has wind power plants connected to the national grid that consist of three main types of generators which are variable speed synchronous wind generators, doubly-fed induction wind generators and fixed speed asynchronous wind generators (FSAWD). This article talks about the main construction modes of each type of wind power plant available globally.

Fixed speed asynchronous wind generator

These types of generators are operated with less than 1% variation of rotor speed, which is also the reason to be called as fixed speed wind generators. They are equipped with a squirrel cage induction machine which is directly connected to the power grid (Figure 1). The speed of the rotor is determined by the frequency of the network not from the wind speed. It is done with the speed multiplier ratio and by the generator type. In order to increase the power production, most of the wind generators use two coils for low wind speed and high wind speed. There are 8 poles and 4-6 poles available respectively for each type of coils. These generators have used soft starters as for starting up of the generators since starting current is very high and it might also be a cause for voltage variation in weak power system network.

Mainly there are two types of fixed speed wind turbines available in the industry as pitch control and stall control. In pitch control type turbines, blades are not fixed to the hub so it can be rotated a few degrees to fully confront the wind in order to produce full power or be in line with wind direction to extract no power. In stall control type turbine blades are fixed to the hub rigidly and they are designed in a way that the airflow over the blades is a laminar air flow to turbulence flow at high speed.  But the drawback is, rigidly fixed blades limit the mechanical power extracted from the wind at high speed to protect the machines from overloading.


Wound rotor induction generator

Wound rotor induction generators use variable rotor resistance control in order to achieve output power control. These types of wind turbines can extract wind power in a optimum way, compared to squirrel cage induction wind generators so they are generally employed with variable speed wind turbines. They are stall controlled wind turbines (blades are rigidly fixed to the hub) to focus on the rotor resistance control.

Main objective of the rotor resistance controller is to obtain the operating point with maximum possible wind power extraction without exceeding machine limits. Wound rotor induction wind generator is illustrated in figure 2.


Variable speed doubly fed induction wind generator

Due to high energy efficiency and controllability, variable speed doubly fed induction wind generator has become more popular these days. This model is called doubly fed induction generator because the grid is powered by two feedings, shown in Figure 3, as one from the stator, which is connected to the grid directly while other is from the rotor connected to the grid via an AC/DC/AC converter. Converter of this turbine handles only 30% to 40% of the generator output.

Ability to change of rotor voltage allows control of operating conditions of the generator as in low speed drop in rotor speed direct the generator into a sub synchronous operating mode by absorbing power from the grid and also during high wind speed, the DFIG wind turbine operate at super synchronous speed delivering power originated from the rotor through the converters to the power system. Ultimately rotating speed of the DFIG rotor determines if the power is delivered to the power system via the stator only or via the stator and rotor.


Full power converter wind turbine generators

The ability of effectively decoupling the generator from the grid, improved fault response, operating at wide speed range has led to improve the popularity of full power converter wind turbine generators in the industry. There is a converter connected to the turbine as shown in Figure 4, to handle the entire output of the generator.

Introducing the new technology, full converter wind turbines are equipped with a permanent magnet alternator. This type of wind turbines with permanent magnet generators (PMGs) are excited by permanent magnets and it can also be excited by generator-side converters. These PMGs are normally connected to the grid via frequency converters. This makes a DC link from the power grid to the generator, as shown in Figure 4 and there is no any reactive power exchange between generator and power grid. As such the power factor of the wind power plant output is 1. The AC-DC converter is a diode-bridge rectifier and a buck-boost converter which controls the DC link voltage.
Reference:
O S D De Silva, H K C O Dayarathne, V I P Dasanayake, J G D S De Silva and A S Rodrigo; Wind Generator Dynamics: Modelling of Fixed Speed Asynchronous Wind Generator using PSS/E
ISSN: 2545-9557

Article By: Team SOID

Zero Energy Building Concept _ Lighting


As described in the previous article, improving the energy performance of a building can be considered as an important part of the country’s sustainable energy development process. In energy efficient building designs, the particular commercial, industrial buildings or the large scale housing schemes attend to their needs in the aspects of design, construction and maintenance under minimal consumption of energy without compromising either the functions of the building or the comfort as well as health of the occupants.

While looking for an energy efficient building, some particular areas can be identified which one should consider on. They are as follows,.
  1. Lighting
  2. Ventilation and air conditioning
  3. Building envelop
  4. On-site power generation
  5. Water conservation
So, let’s consider one by one and get a clear idea on how we can apply those facts to buildings in order them to be energy efficient. 
  1. Lighting

Usually artificial lighting accounts for a significant portion from total electric consumption of a building. Therefore lighting is normally known as the single largest consumer of energy in a building. Hence, a minimum amount of electrical energy has to be used to provide lighting to the quantity and quality of standards.

The following steps can be considered as some rules for achieving energy efficiency in lighting. 


  1. Use well-designed energy efficient lighting schemes.
    It is wiser to use the most energy efficient, cost effective lamp for each application. The use of incandescent or tungsten halogen lamps should be minimized thoroughly unless the application specially requires them. (Refer this article for more information about Star rating of CFL bulbs http://energyzee.blogspot.com/2013/01/star-rating-of-cfl-in-sri-lanka.html)

  2. Consider prompt and appropriate interior decorations. (specially colors)
    The ceiling height, windows, colours and reflectivity of room surfaces and furnishings directly affects the lighting condition of a building. Therefore special consideration should be paid for the interior features. ‘Light’ colours should be used for interior rooms and large windows should be used to reduce artificial lighting.

  3. Using intelligent controlling system
    Automatic controls such as daylight sensors, time based controls or occupancy sensors can be used to adjust the level of lighting when sufficient daylight is available. In addition to that, other artificial lighting strategies should be incorporated such as using infrared, ultrasonic or microwave sensors which respond to movement or object surface temperature and automatically turn on and off. 

  4. Increase the ability to get the maximum day light during the day time.
    Daylight strategies are essential to reduce the energy consumption of the building to a great extent. The positioning and sizing of the windows of the building must be carefully designed and planned in order to permit the maximum natural light into the building, thus reducing the use of artificial lighting and saving energy specially during the day time.
It can be seen that there’s an emerging trend among the people towards this fact and therefore the people who wish to build a house, do concern on design of the building so as to get the maximum use of the daylight. 

A comprehensive analysis of zero energy based approach to ventilation and air conditioning of a building would be presented in the next step of this article series.

Article image: http://technologygreenenergy.blogspot.com/2012/12/green-technology-blog.html

Article By:
Tharangi Gunarathna
Muditha Karunathilake

LECO introduces surge protection equipment



A stream of silver lines descending from heavens, lightening surely is impressive to behold. Charming and intriguing as it is, lightening can be lethal too. It has destroyed many a human life and caused quite a lot of damage to electrical equipment as well. Statistics reveal that the occurrence of lightning has aggravated recently, due to various environmental changes all over the world.

Worthiness of classifying lightning strikes

Why does lightening cause so much of damage is worth studying. Actually this cause of damage is due to two different strokes, based on the way of entry of lightning into the building. These strokes are basically known as direct strokes and indirect strokes. Direct lightning happen due to interception of lightning directly on exterior metal part of the building whereas indirect strokes enter into building with interception of lighting on service wires, other structure or induce high voltages on exterior metal parts of the building followed by the strokes which hit nearby ground.

Image Ref - http://www.lps-experts.be/lightning-risks/lightning-and-its-effects/
Selecting a  protection scheme

Worthiness of this study comes into play, when  an appropriate protection scheme  is being selected. These protection methods are chosen according to the level of protection needed from direct or indirect lightning strikes. 

Protection from direct strokes to the building has to be supplemented by air terminals, lightning arresters etc. whereas protection from indirect strokes is just a matter of time. A normal AC circuit breaker takes two factors into account in breaking a circuit, current rating as well as operating time. No matter how large the surge is, if it occurs within a very short period of time, the circuit breakers in your home or in your office won’t detect it. Since induced surges in the supply by lightning too takes place within a very short period of time, the current surge easily passes through normal AC circuit breakers, quite undetected, and these high inrush currents mean nothing but destruction. That is what it enables lightning to cause so much of damage. This scenario gives rise to a necessity of a more sensitive, sophisticated device to handle surges induced by lightning, to ensure the protection of human beings, livestock and the equipment.

Solution from LECO

In order to address the damages cause due to indirect lightning, LECO initiated a project to develop surge protectors, which is supposed to introduce a technology to ensure the protection of the electricity consumers and their equipment. Already, four types of surge protectors have been introduced by LECO, depending on the area of application, namely, surge arrester for single phase supply, surge arrestor for three phase supply, telephone and internet protection device and multimedia protection device.

Once the surge comes these devices get operated and arrest the surge. Until then it has no burden on the electrical system. Moreover, it also can detect subsequent multiple surges. LECO, with its world class test facilities, has ensured a high level of design efficiency, accuracy, quality, and reliability of their new invention using the local engineering technology. 

The electricity consumers who are interested in acquiring  protection from LECO introduced lightning surges, visit http://leco.lk/?page_id=1476 for more information.



Article By: Thisandu Kahingala
Contributed by: Pasan Gunawardana & Dilini Hansika

Battle of the Current - Paving the way of battle



Electricity is the key to make us masters of our environment, and most of us take it as a crucial part of our lives. But 150 years ago this was not the case. In the middle of the 19th century labor took place at only sun lit day time, and work itself was manual in slow motion without the aid of machinery. At night people stayed at home to avoid associated risks at night. Over the next century and half we transformed the environment dominated us to an environment dominated by us. Today we experience an electrified environment that responds to our many needs, with power that was transmitted through hundreds of miles in an interconnected transmission grid.

Emerging concept of electricity

In 600BC Greeks first discovered the static electricity that could be generated by rubbing amber, however it wasn’t until 18th century Benjamin Franklin theorized that electrical fluid is made up of charged particles. By harnessing this flow of particles or electrical current, engineers have laid the foundation, what would become the colossus of the modern electricity system, the Power Plant.

Nevertheless the successful integration of this power plants and commercial usage with domestic applications of the power, were made by conflicts aroused between two innovative industrial giants, “Thomas Edison” and “George Westinghouse”. The outcome or the winner of this competition would dominate and dictate how electrical generation and transmission would take place. The competition initiated as a battle to bring safer and low cost electricity to New Yorkers.

Thomas Edison
Nikola Tesla
George Westinghouse












Early, before the electricity, natural gas was made to light the streets and homes of people which were very dangerous. If the lamps went out the gas would continuously get accumulated in the room which eventually will lead to an explosion as there were no shut off valves or to control or detect any malfunction.

Edison and DC system

Poster: Edison's Electric Lamps
Eliminating these limitations, In 1879 Thomas Edison invented the first commercially viable incandescent light bulb which emitted light when heated by passing a low current. Soon he made a design for a complete system for lighting and power distribution method. On September 4th 1882 Edison opened the first electric utility to the mankind, the “Pearl Street Station”, in the heart of lower Manhattan financial district, New York, after many delays and cost overruns. Edison knew that this newly created product is going to be expensive and need to reach many customers in order to survive. However Edison’s choice of Direct Current (DC) made his product into a limited range and he could not transmit the power very far without losing tremendous amount of energy. So basically he would need a power plant every kilometer to provide consistent power to the public. As a consequence of it Edison’s distribution system and being a major investor in DC power, had a web of electric wires overhead, it has sometimes said that they blocked the sunlight at some places.

Edison's DC Distribution Network
Thomas Edison’s competitor George Westinghouse made his company, the “Westinghouse Electric” to perfect the Alternating Current (AC) as Westinghouse saw the future of the electrical industry hinge on long distance transmission. In this contest, Tesla was the key person who influenced AC system of Westinghouse electric company.

Tesla’s intervention

Nikolai Tesla, a Serbian born inventor perhaps the most important contributor to the development of human history as the inventor of power to change night into day, who paved the way to all of our modern electric conveniences with a simple flip of a switch, who envisioned the ground breaking concept for a new electric motor, for which the patent became the induction motor, which would go on to be the standard electric motor of the world.

In 1884, age 28, Tesla moved to New York with little money, to work for Thomas Edison. In fact Tesla redesigned Edison’s electric generators. Though Edison used Tesla’s brilliance, Tesla became unsatisfied with the compensation given to him and left Edison Tech eventually.

Paving the Battle

Tesla knew that there would be a better way to transmit power economically than the DC system and was determined to invent a new system, which would eventually be the global trend - the AC poly-phase system. In 1887 Tesla filed 7 new patents with designs encompass in Alternating Current.  The millionaire entrepreneur George Westinghouse thought that those inventions of Tesla will be the key to success in this battle and purchased all of the patents.

As future endurance of the products from both Edison and Westinghouse would largely depend on the electrification method, the war was initiated and developed gradually to ensure quality of relevant electrification systems. This was not a mere battle between Thomas Edison vs. George Westinghouse, this was essential as the technology won would dominate the industry for the foreseeable future.

For the next 2 decades, the battle of currents began both sides fighting for their own survival, even may be taking bitter turns. Expect the rest of the war of AC vs. DC from EnergyzEE.

Article By: Nirmal Undugoda

Importance of Sampur Coal Power Plant



Learn from past

“Power-cuts will be imposed from end of this month as hydro-power generation has been hit by a prolonged drought”. Walking back in our memory lane to 1994 era, this is a common heading in most of the newspapers. If I take you to the power generation situation in Sri Lanka exactly 10 years back, year 1994, 95% of total generation was made out of hydro-power whereas only the rest was made out of thermal power.
(More info: http://energyzee.blogspot.com/2013/04/norochcholai-coal-power-plant-in.html)

According to this circumstance, hydro power generation alone was not enough to accommodate the electricity demand during the severe drought period. Therefore, to overcome the impending power shortages, an idea for establishing a coal power plant had been emerging. Eventually that idea became a reality through Norochcholai coal power plant which was commenced in 2006 and first phase with 300MW added to the national grid in 2011.

Requirement of Sampur

Since existing total installed capacity in the country including Norochcholai power plant, would not be enough to cater the ever increasing electricity demand in the future, a new coal power plant with 500MW was suggested to establish in Sampur, Trincomalee.

With the contribution of both Norochcholai and Sampur coal power plants, the percentage of coal power electricity generation from the total electricity generation in Sri Lanka can be increased up to 55%. If the Sampur coal power plant cannot be completed and linked to the national grid by 2016, the operation of diesel power plants which is reduced to a certain amount now, has an inevitable room for increasing and that would lead to an uneconomical effect to the electricity pricing of the country.

Agreements with NTPC  

This project is a joint venture agreement between the Ceylon Electricity Board (CEB) and the National Thermal Power Corporation Ltd. (NTPC) of India. Both parties signed to the initial agreements in 2006 and implementation of the power plant would be carried out with equal equity (50:50) contributions by NTPC and CEB.

The memorandum of understanding for  the  Sampur Coal Power Project  will be signed later in June once the cabinet approval is granted to the cabinet paper which has already been submitted.
           
Profile of NTPC

NTPC Limited is the leading electricity utility company in India. Based in New Delhi, NTPC currently has an electricity power generation capacity of 41,184 MW and it has plans to reach 17,000 MW by 2017. Apart from the core business of engineering, construction and operation of power generating plants, NTPC is engaged in providing consultancy to power utilities both local and overseas.

Reasons for the delay

The original reason for the delay of the commencement of this project was not having a agreed Power Purchase Rate in the agreement arrived at by the NTPC and the CEB in September 2011.  The reasons for this disagreement were excessive heat rate(the quantity of coal required to generate a unit of electricity)  and higher operational and maintenance cost involved with the power plant.

The heat rate was stated as 2,600 kilo calories to generate a unit of power from the plant and this was not in acceptable level according to energy experts in the field. The excessive heat rate would result in the coal plant maintaining a low efficiency level and sought changes to a more moderate level.

Current situation

But after the rounds of  negotiations which CEB had with NTPC,  they have agreed to reduce the heat rate  down to 2,160 kilo calories during the first year of operation.The NTPC has also agreed to reduce the Operation and Maintenance cost  up to a certain extent during these negotiations.

Will coal reserves be diminished in the future?

Frankly saying, we should agree with the fact  that coal mines will be diminished one day  and  producing electricity using coal power would no longer be a viable option in the future. But until then coal would be the most economical source to meet the rapid increase of electricity demand. Some may argue this future increase of demand might satisfied through renewable sources like wind and solar more economically and environmentally friendly. But it is actually not when capacity cost and reliability come into play.
(More info: http://energyzee.blogspot.com/2013/01/norochcholai-power-plant-coal-vs.html)

Repeating the history 

Due to the dragging of the implementation of Norochcholai CPP, we had to experience power cuts in the recent past. Repeating the history, implementation of Sampur CPP is getting delayed over the past few years. So there is no wonder if we have to face another power-cut or a price hike by 2017.

Reference

http://www.hcicolombo.org/index.php?option=com_news&task=detail&id=3354661
http://www.ceylontoday.lk/27-25733-news-detail-sampur-to-lose-big.html
http://www.thesundayleader.lk/2013/02/17/indias-entry-into-lankas-power-sector-delayed/
https://en.wikipedia.org/wiki/NTPC_Limited
http://www.dailymirror.lk/news/29576-sampur-agreement-likely-to-be-signed-this-month.html
http://dbsjeyaraj.com/dbsj/wp-content/uploads/2012/07/SM71812.jpg

Article By: Harshani Amanda
Contributors: Shamil Rupasinghe and Akila Pramod

From an engineering trainee’s diary _Transmission line planning




The following article is based on my experience as a trainee electrical engineering undergraduate in “Lighting Sri Lanka-Hambanthota Project (LSHP)” under Ceylon Electricity Board (CEB).

Transmission and distribution lines are the live veins of a country’s power system. They simply interconnect generating stations, grid substations and distribution substations. In Sri Lankan context, we have generation voltages around 13.5 kV, transmission voltages of 132 kV and 220 kV and distribution voltages of 33 kV (CEB) and 11 kV (LECO and small portion of CEB). The ultimate objective of a power system utility such as CEB is to keep the above mentioned “live veins” as healthy as possible while keeping the generation cost and other operating costs at a minimum while maximizing customer satisfaction. In order to achieve those objectives designing, planning and construction of transmission lines along with timely and proper maintenance, must be carried out with extreme care.

Planning is the initial stage of any transmission or distribution line development project. Planning process can be divided into three stages namely, long term planning, medium term planning and operation planning.

Long term planning

Long term planning emphasizes on topics such as need of construction of new transmission lines, development and introduction of new technologies for transmission (e.g. introducing HVDC system to Sri Lanka) and distribution (e.g. introduction of equipment such as “Fuse saver” to improve reliability of distribution system). Basically Transmission and generation planning branch of CEB carries out the above mentioned planning functions. Long term transmission planning is carried out as a rolling plan with a time horizon of ten years. This plan will cater the growing demand for electricity while incorporating new technologies to enhance the performance of the existing system.

Medium term planning

Medium term planning consists of defining characteristics of system voltages, transmission and distribution lines and substations etc. The time horizon is much shorter than that of long term planning.

Short term planning

Operational or short term planning involves in maintaining the quality and availability of the power system. Regular maintenance and unintended interruption handling falls under operation planning. Generally, this segment of planning is done by area engineers.

During my time in LSHP, I got the opportunity to study the planning process of 33 kV medium voltage lines. During the planning, answers to the following questions need to be obtained.

  • When the new distribution line or upgrading of the existing line is required?
  • What will be the capacity of the line? 
  • How many circuits are needed?
  • What is the quality of the supply and the reliability level?

In order to find successful and acceptable answers for the above questions, a large amount of data is required. The data requirement can be fulfilled by using the already available data and through surveys.

Concerns on planning

Accurate technique(s) of forecasting is a must for a successful transmission planning because the time period required to complete a transmission project, from planning to commissioning, may sometimes extend up to a decade. But within that time, the society, or in other words the beneficiaries of the transmission project, will change drastically. The living standards of the people will rise, new industries may be established and rapid development of infrastructures may attract more and more people to the area (in Hambanthota district, the electrification level was 66% at 2006 and now it is almost 100%). When forecasting, all such dynamic facts should be taken into account. One must not forget that such transmission line, plan and design at present, constructing in another two years and commissioning in another five years must  at least last for another three or four decade in operation.

Preparation for Planning

Generally an electrical study is carried out in planning stages for a proposed transmission line. The areas such as power flow study,system stability and dynamic performance,selection of voltage levels (generally, the standard voltage levels are used in Sri Lanka as a practice),voltage and reactive power flow control (mostly for transmission lines),insulation and over voltage design,conductor selection,loss calculation,and protection scheme design should be carefully analysed for reliable planning.

Financial viability

Even a sound electrical design might be rejected by final decision makers, if the project cost is not financially feasible. Financial and economic aspects play a vital role in any engineering development. and the designers should be able to justify the expenditure for the project against the expected benefits. Thus, a proposed design should be checked for both economical and financial feasibility using analytical tools such as Net Present Value (NPV), Internal Rate of Return (IRR) and Cost to Benefit Ratio (CBR) etc.
Finally, the optimum design is selected based on the economic and technical analysis. But the factors such as capacity and the prior experiences of the electricity utility and local constraints also govern the decision.

Transmission line design and construction 

My training diary is further filled with notes on transmission line designing and construction as well. I’m more than happy to share some insight from those areas in the upcoming articles.

Expressing my gratitude

I would be obliged to Mr. S. Bogahawatta, the project director of lighting Sri Lanka Hambantota project for his immeasurable support extended to my team during our internship in the project.

Terminology

HVDC -  High voltage direct current (HVDC) is a electric power transmission system uses direct current for the bulk transmission of electrical power.

Fuse saver - Fuse saver is a new class of intelligent, compact and low cost single phase circuit breaker that minimizes interruptions by protecting spur line fuses from blowing on transient faults



Article By: Ayantha Sampath