The Future of Renewable Energy in Bangladesh: A 2041 Roadmap for Solar, Wind, Hydro, and Biomass Meta Description: Bangladesh's renewable energy roadmap to 2041 — solar rooftop policy, offshore wind in the Bay of Bengal, cross-border hydro imports, biomass, BESS, and the engineering path to a 20% renewable grid.
Showing posts with label Electric power. Show all posts
Showing posts with label Electric power. Show all posts
Tuesday, July 21, 2026
Future of Renewable Energy in Bangladesh
Labels:
Electric power,
Solar System,
Wind Power
Sunday, March 29, 2026
Most of our Electricity Comes from What?
Labels:
Electric power,
Electricity generation
Saturday, January 24, 2026
Electrical Power Cable Is an Electrical Transformer
How does an electrical power cable work as an electrical power transformer? It may be your question. It’s true that we know electrical power cable works as a capacitor, because the condition to be a capacitor, two metallic components need to be placed in parallel.
Location:
Dhaka, Bangladesh
Tuesday, December 30, 2025
How Important the Electricity in Our Daily Life?
| Electricity in Life |
Importance of Electricity in Our Daily Life
Electricity is one of the most important blessings that the creator has given to mankind as a result of modern science. Now days electricity is so important that science itself is paralyzed without electricity. So it has also become a part of our modern life, and one cannot think of a world for a single moment without electricity.
Labels:
Electric power,
Electricity
Location:
Dhaka, Bangladesh
Switching and Earthing Operating Procedure
Switching and Earthing Operative Procedure in Electrical Energy Network
Switching and Earthing Operative Procedure in Electrical Energy Network
The keywords of this article are Switching & Earthing; we are not going to learn technical details about switching and earthing procedures in this piece, but we would like to keep in limit our focus on the key points for the safe operation of the switching & earthing system.
Location:
Dhaka 1216, Bangladesh
Solar Controlled Air Cooler Project
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| Solar Controlled Air Cooler Project |
A "solar-controlled air cooler" is an air cooling system that primarily uses electricity generated from solar panels, often with a smart control mechanism to maximize solar usage and, in hybrid models, seamlessly switch to grid power when needed.
Sunday, November 9, 2025
What is the Leading Power Factor?
![]() |
| Power Factor |
In electrical engineering, the power factor measures how effectively electrical power is being used. It's a ratio of the real power (measured in watts) to the apparent power (measured in volt-amperes). A power factor can be leading, lagging, or unity.
The leading power factor occurs when the current leads the voltage. This usually happens when the load is capacitive, like in capacitor banks or certain types of lighting.
Having a leading power factor is often desirable for power systems because it can help counteract the effects of inductive loads, which usually cause a lagging power factor.
Wednesday, October 22, 2025
Thunderstorm & Lightning Early Warning System Network
![]() |
| Thunderstorm & Lightning Early Warning |
A Thunderstorm & Lightning Early Warning System Network is a sophisticated, integrated system designed to detect, track, and predict lightning and thunderstorm activity in real-time, providing alerts to at-risk areas and users to enable timely safety and operational protocols.
Wednesday, September 24, 2025
Electricity Myth and Fact in Our Socity
Electricity Myths Can Be a Killer
There are lots of juicy myths on various subjects like earthquake, eclipse, etc. in almost every nation; but the fact is that electricity myths are not jukes or fun, just a little mistake can cause of severe electrical shock, burn or even death!!
If you don’t sure or without advice from electrician, do not believe any myth on electricity. To know the fact, contact your nearest electricity utility company or any electrical professional or electrician.
Labels:
Electric power,
Electricity,
Hazards,
Safety-Induction
Location:
Dhaka, Bangladesh
Wednesday, January 1, 2025
What Happen If Cables Placed In Magnetic Metal Conduit
Labels:
Cable-Engineering,
Electric power,
Electric power distribution,
Electric power transmission,
Electrical network,
High voltage,
Power cable
Location:
Dhaka, Bangladesh
Wednesday, January 17, 2024
What Is the Voltage Classification?
Nominal Voltage Classification in Transmission and Distribution System
To identify the voltage level effortlessly in a transmission and distribution system a significant voltage classification is essential. The voltage class is used not only to identify the level of system voltage, but the main importance is to classify the Apparatus voltage ranges for the operation and maintenance of an electrical energy transmission and distribution system.
Labels:
Electric,
Electric power,
Electric power distribution,
Electric power transmission,
Electrical network,
Electrical-Engineering,
Electricity
Location:
Dhaka 1216, Bangladesh
Sunday, December 3, 2023
Ola Electric Achived Record-Breaking Sales
Ola Electric achieved record-breaking sales in November, The Economic Times published a news article in their industry section.
Tuesday, October 10, 2023
New Electrical Vehicle Charger 2023
| Fig-Electrical Vehicle Charger: Photo credit Luxman Group |
An electric vehicle (EV) charger is a device or infrastructure that allows electric vehicles to recharge their batteries. EV chargers come in various types, each with different charging speeds and capabilities.
Saturday, June 24, 2023
ENERGY SAVING TIPS FOR YOUR HOME APPLIANCES
The
Domestic Sector accounts for 30% of total energy consumption in the country.
There is a tremendous scope to conserve energy by adopting simple measures. This
information is a guide, which offers easy, practical solutions for saving energy in Home Appliances. Please, take a few moments to read the valuable tips
that will save energy & money and ultimately help conserve our natural
resources.
It would be useful to know which gadget consumes how much electricity. Economic use of home appliances can help in reducing electricity bills. The following table shows the energy consumption of various appliances normally used at home:
It would be useful to know which gadget consumes how much electricity. Economic use of home appliances can help in reducing electricity bills. The following table shows the energy consumption of various appliances normally used at home:
Labels:
Electric,
Electric power,
Life-Style
Location:
Dhaka 1000-1200, Bangladesh
Monday, April 24, 2023
How Measure Electricity Made Simple - Even Your Kids Can Do It
How to measure Your Electricity?
We are thinking about measuring
electricity today, did you know that Ben Franklin helped us learn about
electricity over 250 years ago? Even though we cannot see electricity, this does not mean that we cannot measure it. In fact, performing measurements is often the only way to tell whether electricity is actually flowing through a wire. Have you ever heard of a volt, an amp, or a watt? Do you know the difference between voltage, current and power?
| Photo: You can use a digital multi-meter to measure voltage, current, and resistance. |
Fear? Not If You Use How to Measure Electricity The Right Way!
Labels:
Electric,
Electric power,
Electricity
Location:
Dhaka, Bangladesh
Electron Drift Velocity Basic
What is the definition of Electron Drift Velocity?
Drift velocity is the average velocity with which electrons 'drift' in the presence of an electric field. It's the drift velocity (or drift speed) that contributes to the electric current. In contrast, thermal velocity causes random motion resulting in collisions with metal ions.The definition of drift speed can be understood by imagining randomly moving electrons in a conductor. Free electrons move in a conductor with random speeds and random directions. When we apply an electric field through a conductor, randomly moving electrons experience an electric force in the direction of the field.
Electron Drift Velocity Calculation
The calculation of the electron drift velocity formula or equation is as below:
We start with the acceleration of the electrons,
a = F/m = eE/m.
The average velocity gained, i.e. the drift velocity, due to this acceleration = a*t = eEt/m.
The density of conduction electrons in copper. or 0.15 mm/s! Compare this to the random thermal speed, of the electrons which is about 106 m/s or about 1010 times faster!.
So we learned that when an external field is applied across the conductor the free electrons acquire a net velocity opposite to the direction of the electric field. The average velocity acquired by them is called drift velocity.
The density of charge carriers:
The density of charge carriers, n, is the number of free electrons per unit volume. It tells how good a conductor the material is. A lower value of n means that the electrons will have to move faster in order to produce the same current.
Conductors, like metals, have high values of n – around 1028per m3
Insulators, such as plastic, will have very low values of n – these may be close to 0
Semiconductors, for example, silicon, have values of n in between the two – this means they conduct better than insulators but not as well as conductors.
Wednesday, March 1, 2023
What is Ferrite Bead?
A ferrite bead is an electronic filter circuit that is also known by many different names- a ferrite block, ferrite core, ferrite ring, EMI filter, or ferrite choke.
Interestingly is that most people who use laptops, computers, or similar electronic types of equipment are familiar with Ferrite Beads, we see them every day, but many of us do not know the name of this guy.
It looks a like short barrel at the end of old USB cables, data cables, etc.
Sunday, October 20, 2019
Safety Clearance to Exposed Live Conductors
Working Safety Clearance and Phase Gap between Exposed Live Conductor
Herein this article we will focus on “safety clearance to live bare live conductors during working in electrical power distribution substations or switching stations” and “phase gap or safety clearance to electrical energy transmitting energized conductors between others power conductors, communication conductors or transportation navigation system” to ensure safety for human and property, as well as operate a proficient electrical energy network system.
Lines crossing or approaching each other as pe Bangladesh Electricity Distribution Code
(1) Where an overhead line crosses or is in proximity to any telecommunication line, either the owner of the overhead line or the telecommunication line, whoever lays his line later, shall arrange to provide for protective devices or guarding arrangements, in a manner laid down in the Code of Practice or the guidelines in this respect, if any, and subject to the following provisions:-
(2) When it is intended to erect a telecommunication line or an overhead line which will cross or be in proximity to an overhead line or a telecommunication line, as the case may be, the person proposing to erect such line shall give one month’s notice of his intention so to do along with the relevant details of protection and drawings to the owner of the existing line.
(3) Where an overhead line crosses or is in proximity to another over head line, guarding arrangements shall be provided so to guard against the possibility of their coming into contact with each other. Where an overhead line crosses another overhead line, clearances shall be as under:- Minimum clearances in meters between lines crossing each other,
Circuit/Line
|
Clearance in Meter
|
|||||
Lower↓
|
Upper→
|
11 - 66 kV
|
132 kV
|
230 kV
|
400 kV
|
800 kV
|
1
|
Low Voltage
|
2.5
|
3.0
|
4.6
|
5.5
|
8.0
|
2
|
11 - 66 kV
|
2.5
|
3.0
|
4.6
|
5.5
|
8.0
|
3
|
132 kV
|
3.0
|
3.0
|
4.6
|
5.5
|
8.0
|
4
|
230 kV
|
4.6
|
4.6
|
4.6
|
5.5
|
8.0
|
5
|
400 kV
|
5.5
|
5.5
|
5.5
|
5.5
|
8.0
|
6
|
800 kV
|
8.0
|
8.0
|
8.0
|
8.0
|
8.0
|
(4) A person erecting or proposing to erect a line which may cross or be in proximity with an existing line, may normally provide guarding arrangements on his own line or require the owner of the other overhead line to provide guarding arrangements as referred.
(5) In all cases referred to in the preceding clauses the expenses of providing the guarding arrangements or protective devices shall be borne by the person whose line was last erected.
(6) Where two lines cross, the crossing shall be made as nearly at right angles as the nature of the case admits and as near the support of the lines as practicable, and the support of the lower line shall not be erected below the upper line.
(7) The guarding arrangements shall ordinarily be carried out by the owner of the supports on which it is made and he shall be responsible for its efficient maintenance.
Safety Clearance during Works in Substations
Sponsored:
Line crews often work in a substations or switching stations where all the equipment and conductors are not possible to be dead; but possible to ensure minimum safe distance for the working section from the exposed live section following as below:
1. Dead or working section should be identified clearly and barricaded appropriate barrier-rope;
2. Electrical live or non-working portion must be defined with appropriate signs;
3. Recommended notices, flags must be used with recognizable languages and universal signs;
4. Approved types of ladder must be used, not allowed over heighted ladder and others objects;
5. Must follow the minimum horizontal and vertical safety clearances from exposed live conductor or equipment following the degree of voltages as per international standard under a senior authorized persons;
Accordance to BS 7354:1990, the minimum safety working clearances in horizontal and vertical is as below:
Rated Voltage
|
Safety Working Clearance
| |
Horizontal
|
Vertical
| |
Not exceeding 11 kV
|
1.6 m
|
2.6 m
|
Exceeding 11 kV but not exceeding 33 kV
|
1.8 m
|
2.8 m
|
Exceeding 33 kV but not exceeding 66 kV
|
2.1 m
|
3.1 m
|
Exceeding 66 kV but not exceeding 132 kV
|
2.7 m
|
3.7 m
|
Exceeding 132 kV but not exceeding 275 kV
|
4.2 m
|
5.2 m
|
Exceeding 275 kV but not exceeding 500 kV
|
5.4 m
|
6.4 m
|
Phase Gap or Safety Clearance between Exposed Overhead Live Line and Ground
An overhead line route which crosses or is in proximity to a high risk locality shall be given special consideration. As National and International references on the risk assessment of overhead lines for guidance in the correct identification and recommended minimum mitigating measures.
Where practical all new overhead lines will be routed to avoid the need to pass in close proximity to high risk localities. However where lines are specifically identified as being in close proximity to fishing or high amenity areas.
Right of Way Clearance (As per GETCO Standard)
Must maintain the required clearance space around the transmission line, trees below the transmission line to mitigate and avoid as far as practicable, a tree entering the required clearance space around that line if the tree falls.
KV
|
Min ROW
|
66 KV
|
18 Meter
|
132 KV
|
27 Meter
|
220 KV
|
35 Meter
|
400KV
|
52 Meter (Single Circuit)
|
400 KV
|
48 Meter (Double Circuit)
|
Allowance for Creep
Allowance must be made for the effects of creep in conductors and setting out errors as the specified clearance must be maintained for the life of the conductor. This allowance shall be as follows:
Conductor Type
|
Additional Clearance Required
|
Copper
|
450mm
|
Aluminium Alloy
|
600mm
|
ACSR
|
600mm
|
Minimum Height above Railway as Per IE-1957
Voltage
|
Broad Meter & Narrow Gauges
|
Up to 66 KV
|
14.00 Meter
|
Above 66KV up to 132KV
|
14.60 Meter
|
Above 132KV up to 220KV
|
15.40 Meter
|
Above 220KV up to 400KV
|
17.90 Meter
|
Above 400KV up to 500KV
|
19.30 Meter
|
Above 500KV up to 800KV
|
23.40 Meter
|
Clearance between conductors and Trolley / Tram wires (IE Rule 78)
KV
|
Clearance (Min)
|
66 KV
|
2.4 Meter
|
132 KV
|
2.7 Meter
|
220 KV
|
3.0 Meter
|
Clearance for Telephone line Crossings Power Line
Low and Medium Voltage
|
1.2 Meter
|
High Voltage Line Up to 11KV
|
1.8 Meter
|
High Voltage Line Above to 11KV
|
2.5 Meter
|
Extra High Voltage Line
|
3.0 Meter
|
Permissible Min ground Clearance of Electrical Line
KV
|
Ground Clearance
|
Over National Highway
|
66 KV
|
6.1 Meter
|
8.0 Meter
|
132 KV
|
6.1 Meter
|
8.6 Meter
|
220 KV
|
7.0 Meter
|
9.8 Meter
|
400KV
|
8.8 Meter
|
10.8 Meter
|
Clearance to Waterways
Item
|
Description
|
Clearance (m)
| ||
Lowest conductor (line or earth) to Towpath level or adjacent bank
|
0.433 kV
|
66kV
|
132kV
| |
1
|
River Trent
|
18.3
|
19.2
|
19.8
|
2
|
River Ouse
|
23.2
|
23.2
|
23.8
|
3
|
Aire & Calder Canal
|
14.3
|
15.2
|
15.9
|
4
|
Sheffield & South Yorkshire canal
|
14.3
|
15.2
|
15.9
|
5
|
Calder & Hebble Canal
|
14.3
|
15.2
|
15.9
|
6
|
Other Canals
|
11.3
|
15.2
|
12.8
|
7
|
Reservoirs
|
12.3
|
15.2
|
15.6
|
Clearance from Buildings to low, medium and high voltage lines
Sponsored:
Voltage
|
Description
|
Distance
|
Low & Medium Voltage
|
Flat roof, open balcony, verandah roof ,When the line passes above the building a vertical clearance from the highest point
|
2.5 Meter
|
Low & Medium Voltage
|
Line passes adjacent to the building a horizontal clearance from the nearest point
|
1.2 Meter
|
Low & Medium Voltage
|
Line passes above the building a vertical clearance
|
2.5 Meter
|
Low & Medium Voltage
|
Vertical distance or line passes adjacent the building a Horizontal clearance
|
1.2 Meter
|
11 KV to 33 KV
|
Vertical distance or line passes above or adjacent to any building or part of a building
|
3.7 Meter
|
Above 33 KV
|
Line passes above or adjacent to any building or part of a building
|
3.7+(0.3 for every additional 33 KV )
|
Up to 11 KV
|
The horizontal clearance between the nearer conductor and any part of such building
|
1.2 Meter
|
11 KV to 33 KV
|
The horizontal clearance between the nearer conductor and any part of such building
|
2.0 Meter
|
Above 33 KV
|
The horizontal clearance between the nearer conductor and any part of such building
|
2.0 + (0.3 for every additional 33 KV )
|
Minimum Clearance between Lines Crossing Each Other (IE-1957)
System Voltage
|
132KV
|
220KV
|
400KV
|
800KV
|
Low & Medium
|
3.05
|
4.58
|
5.49
|
7.94
|
11-66KV
|
3.05
|
4.58
|
5.49
|
7.94
|
132KV
|
3.05
|
4.58
|
5.49
|
7.94
|
220KV
|
4.58
|
4.58
|
5.49
|
7.94
|
400KV
|
5.49
|
5.49
|
5.49
|
7.94
|
800KV
|
7.94
|
7.94
|
7.94
|
7.94
|
Clearance above ground of the lowest conductor As per IE Rule 77
Overhead Line Across Street
| |
Low and Medium Voltage
|
5.8 Meter
|
High Voltage
|
6.1 Meter
|
Overhead Line Along Street (Parallel To Street)
| |
Low and Medium Voltage
|
5.5 Meter
|
High Voltage
|
5.8 Meter
|
Overhead Line Without Across or Along Street
| |
Low/Medium /HT line up to 11KV If Bare Conductor
|
4.6 Meter
|
Low/Medium /HT line up to 11KV If Insulated Conductor
|
4.0 Meter
|
Above 11 KV Line
|
5.2 Meter
|
Above 33KV Line
|
5.8 Meter + Add 0.3 meter for every additional 33KV
|
Clearances from Buildings of low & medium voltage lines (IE Rule 79)
For Flat roof, Open Balcony, Verandah Roof and lean to Roof
| |
Line Passes Over Building Vertical Clearance
|
2.5 Meter
|
Line Passes Adjustment of Building Horizontal Clearance
|
1.2 Meter
|
For pitched Roof
| |
Line Passes Over Building Vertical Clearance
|
2.5 Meter
|
Line Passes Adjustment of Building Horizontal Clearance
|
1.2 Meter
|
Minimum Clearance Spaces Surrounding a Transmission Line
Nominal voltage
|
Dimension
vertical below
|
Dimension
horizontal
|
66 kV
|
3000 mm
|
3000 mm
|
Over 66 kV,
less than 220 kV
|
3700 mm
|
4600 mm
|
220 kV
|
3700 mm
|
4600 mm
|
275 kV
|
4200 mm
|
5000 mm
|
330 kV
|
4700 mm
|
5500 mm
|
500 kV
|
6400 mm
|
6400 mm
|
Clearance to Obstacles for Nominal system Voltage 230kV (as per PGCB)
xxxThe minimum clearances defined below shall not be infringed at the specified maximum conductor temperature with the phase conductors and suspension insulators hanging vertically or deflected to any angle up to 70° from the vertical.
This is describe as Minimum Clearance for where maximum conductor temperature is 80°C.
Ground (see note d) (m) 8.0
Roads (m) 14.0
Buildings, structures, walls or other objects on which a person can stand or against which he can lean a-
Ladder (m) 7.0
Trees (m) 5.5
Shrubs (m) 5.5
Railways (measured from railway track) (m) 18.0
River Crossing (m) 25.0
Where:
Clearances are measured to the nearest projection of an object.
For ladder clearances also apply to earthed metal clad buildings.
For trees clearances applicable to trees under the transmission line and to trees adjacent to the line. Clearances also applicable to trees falling, towards the line with conductors hanging in a vertical plane.
For ground clearance shall be measured from the highest flood level.
Clearances Where Transmission Lines Cross for 230kV (as per PGCB)
Where a transmission line crosses above or below another transmission line, the following clearances shall be obtained.
In still air, and with the phase conductor temperature of the lower transmission line at 5°C or 80°C for 400 kV line whilst the assumed phase conductor temperature of the higher transmission line is at its maximum operating temperature, the following minimum clearances between the lowest conductor (phase or earth) of the higher transmission line are applicable:
The highest conductor (phase or earth) of the lower transmission line 5.5 m
The voltage specified is that for which transmission lines are ultimately designed to operate.
Clearances are determined by the ultimate voltage of either the upper or lower transmission line, whichever is the greater.
Clearances are determined by the ultimate voltage of the upper/lower transmission line.
In addition to the above at the point of crossing, the clearance in (a) shall be obtained assuming the conductors of the lower transmission may swing up to 45° from the vertical. The sags of the upper and lower transmission lines shall be those at the maximum operating temperature.
Location:
Dhaka, Bangladesh
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