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Thermal Plants

Thermal Plants
electric resistor

SWITCHYARD and GENERAL SIGNIFICANCE

Electrical energy management system ensures supply of energy to every consumer at all times at rated voltage, frequency and specified waveform, at lowest cost and minimum environmental degradation. The switchgear, protection and network automation are integral parts of the modern energy management system and national economy.

The modern 3-ph, 50 Hz, AC interconnected system has several conventional and non-conventional power plants, EHV AC and HVDC Transmission system, Back to Back HVDC coupling stations, HV Transmission network, substations, MV and LV Distribution systems and connected electrical loads. The energy in electrical form is supplied to various consumers located in vast geographical area, instantly, automatically, and safely with required quality at all times. The service continuity and high quality of power supply have become very important.

For fulfilling the foresaid purpose, a state of the art, scientifically and technologically advanced SUBSTATION is required. Sub-Station is the load control center of the thermal plant where power at rated voltage, frequency and waveform is exported/imported as per requirements.

The substation at GHTP Lehra Mohabat has only one 220 KV switchyard. There are two output units each having a capacity of 210 MW. The generating voltage is limited to 15.75 KV and this voltage as stepped up by two-generator transformer 15.75/220 KV manufactured by BHEL. A part of 15.75 KV supply is fed to unit auxiliary transformer, which is stepped down to voltage 6.6 KV which is used to run the major auxiliaries of the plant.

After step up, the 220 KV output from the generator transformer is fed to either of the two bus bars through relays and circuit breakers and these are connected to various feeders through various equipments.

DIFFERENT TYES OF EQUIPMENTS USED IN SUB-STATIONS

1. BUS-BARS: –

Bus bar is a term used for main bar of conductor carrying an electric current to which many connections may be made. These are mainly convenient means of connecting switches and other equipments into various arrangements.

At GNDTP there are two 220 KV bus bars. These are made of aluminium and all the incoming and outgoing supplies are connected through the bus bars.

2. LIGHTENING ARRESTORS: –

These are equipments designed to protect insulators of power lines and electrical installations from lightening surges by diverting the surge to earth and instantly restoring the circuit insulation to its normal strength with respect to earth.

3. CURRENT TRANSFORMERS: –

The main purpose of current transformer is to step down the current to a level that the indicating and monitoring instruments can read. When rated current flows through its primary winding, a current of nearly 1 amp will appear in its secondary winding.

The primary is so connected that the current being passes through it and secondary winding is connected to an ammeter. The CT steps down the current to the level of the ammeter.

4. POTENTIAL TRANSFORMER: –

These are used to step do the voltage to a level that the potential coils of indicating and monitoring instruments can read. These are also used to feed the potential coils of relays. The primary winding is connected to the voltage being measured and the secondary winding to a voltmeter. The PT steps down the voltage to the level of the voltmeter.

5. POWER TRANSFORMER: –

These are used to step up down the voltage from one a.c voltage to another a.c voltage level at the same frequency. Shunt reactor in EHV substations is to provide reactive power compensation during low loads.

6. WAVE TRAP: –

Wave trap is used to prevent high frequency signals from entering other zones.

7. INDICATING AND METERING INSTRUMENTS: –

Ammeters, voltmeters, watt meters, KWH meters, KVAR meters are installed in sub-station to watch over the currents flowing in the circuit and the voltages and the power loads.

8. ISOLATORS: –

One of the cardinal measures for ensuring full safety in carrying out work on equipment in electrical installations is to disconnect reliably the unit or the section on which the work is to be done from all other live parts of the installation. To guard against mistakes, it is necessary that apparatus, which makes a visible break in the circuit such as isolators, should do this.

Isolators do not have arc control devices therefore cannot be used to interrupt currents at which the arc will be drawn across the contacts. The open arc in these is very dangerous, in that it will not only damage the isolator or the equipment surrounding it but will also cause the flashover between the phase in other words, it will result in short circuit in the installation i.e. why isolators are used only for disconnecting parts after de-energizing them by opening their respective circuits by use of their circuit breakers.

9. EARTHING SWITCHES: –

Earthing switch is used to discharge the voltage on dead lines to earth. An auxiliary switch to provide interlock always accomplishes it.

10. CIRCUIT BREAKERS: –

Circuit breakers are mechanical devices designed to close o open contact or electrical circuit under normal or abnormal conditions. CB is equipped with a strip coil directly attached to relay or other means to operate in abnormal conditions such as over power etc. In GNDTP three types of CB are used. SF6 CB is used to control 220 KV in switchyard.

VCB are used to control 6.6kv in switchgear & ABCB are used to control 415 KV in switchgear.

In sulphar puffer type SF6 CB is filled with SF6 gas at single pressure (4to6kgf/cm2). The pressure and gas flow required for arc extinction is obtained by piston action.

In double pressure type SF6 CB the gas from high-pressure system is released to into low-pressure system over the arc during the arc quenching process.

SPECIFICATIONS OF CB TYPE ELF-SL4-1

S. NO. SPECIFICATIONS RATINGS

1. Voltage 245KV

2. Normal current 3150 A

3. Lightening impulse withstand Voltage 1050V

4. Switching impulse withstand voltage 1050V

5. Short circuit breaking current 40KA

6. Short circuit withstand current And duration 40KA 3 sec

7. Line charging breaking current 125A

8. Operating sequence – First pole to clear factor 1.3

9. Supply voltage 220 V dc

10. Auxiliary circuit supply voltage 240 V dc

11. Air pressure 20.5 bar

12. Frequency 50 HZ

13. Mass 3800 kg

14. Rated current 1600 A

11. VARIOUS OTHER EQUIPMENTS

Shunt capacitors are used to provide compensation to reactive loads of lagging power factor.

Series reactors are used to reduce the short circuit current or starting currents. Neutral grounding resistors are used to limit the earth fault current.

Coupling capacitors are used to provide connection between high voltage line and power line carrier equipment.

Operating Voltage 230 V

Rated current 2000 A

Minimum short circuit current in bus bars 40 KV

Minimum phase to phase clearance 2.5 M

Number of horizontal levels of tubular bus bar/flexible bus bars 2.0 M

Height of tubular bus-bar of first level above ground 6 m

Height of tubular bus-bar of second level above ground 4 m

Tubular aluminium bus bar AL ASTMB241 4″IPS (International pipe standard)

VARIOUS SUBSYSTEMS IN SUBSTATIONS AND THEIR FUNCTION

S.NO. SYSTEM FUNCTION

1. Substation Earthing (Grounding) System – Earth mat – Earthing spikes – Earthing risers To provide an earth mat for connecting neutral points, equipment body, support structures to earth. For safety of personnel and for enabling earth fault protection. To provide the for discharging the earth currents neutrals, faults, surge arrestors over-head shielding wires etc. with safe step- Potential and touch potential.

2. Overhead earth wire shielding or lightning To protect the outdoor substation equipment from lightning strokes.

3. Illumination system (lightning) – For switchyards – Buildings – Roads, etc. To provide illumination for vigilance, operation and maintenance.

4. Protection system – Protection relay panels – Control cables – Circuit breakers – CT’s, PT’s, etc. To provide alarm or automatic tripping of faulty part from healthy part and also to minimize damage to faulty equipment and associated system.

5. Control cabling For protective circuits, control circuits, metering circuits.

6. Power cables To provide supply path to various auxiliary equipments and machines.

7. PLCC system power line carrier current system – Line trap – Coupling capacitor – PLCC panels For communications, telemetry, tele control power line carrier protection, etc.

8. Fire fighting system – Sensors, detection system – Water spray system – Fire protection control Panels To sense the occurrence of fire by sensors and to initiate water power spray, to disconnect power supply to affected region to pin point location of fire by indication in control room.

9. J Cooling water system – Coolers – Water tanks This system is required for cooling the valves in HVDC substation.

10. DC batteries sets and battery chargers Auxiliary low voltage DC supply.

11. Auxiliary stand by power System – Diesel generator sets – Switch gear – Distribution system For supplying starting power, stand by power for auxiliaries.

12. Telephone system For internal and external Communication.

12. BUS BAR ARRANGEMENT IN SWITCHYARDS

There are several ways in witch the switchyard can be connected in the electrical layout of generating station, receiving station or a switchgear in a distribution system. The following aspects in general affect the selection of the scheme:

1. Degree of flexibility of operations desired.

2. Importance of load and local conditions.

3. Economic conditions, availability, and cost.

4. Technical conditions.

5. Maintenance, safety of personnel.

6. Simplicity.

7. Provision of extension.

8. Protective zones.

DUPLICATE BUS BAR ARRANGEMENT

The duplicate bus bar system provides additional flexibility, continuity of supply and permits periodic maintenance without total shut down. In the event of fault o n one bus the other bus can be used.

While transferring the power to the reserve bus, the following steps may be performed:

1. Close tie circuit breaker, i.e. bus coupler. The two buses are now at the same potential.

2. Close isolators on reserve bus starting from far end.

3. Open isolators o9n main bus starting from far end.

Each pole of the circuit breaker comprises one or more interrupts or arc extinguishing chambers. The interrupts are mounted on support insulators. The interrupts enclose a set of fixed and moving contact. The moving contacts can be drawn apart by means of the operating links of the operating mechanism. The operating mechanism of the circuit breaker gives necessary energy for opening and closing of contacts of the circuit breaker.

13. RELAYS

Relay is a device by means of which an electric circuit (trip or alarm circuit) is controlled (closed) by change in the other circuit. Relays are automatic. The function of relay in power supply system is to recognize a start out and to initiate the operation of CB or other devices to isolate the defective elements with minimum disturbance to the normal power supply system. The must operate at required speed and stability to prevent the current and voltage to exceed their limits.

A few relays with their international codes are mentioned below:

S. NO. CODES TYPES

1. 27 Instantaneous under voltage relay

2. 99 Composite motor protection relay

3. 64 Earth fault relay

4. 87M Differential relay for motors

5. 50N Earth fault relays with times for time delayed operation

6. 95 Fuse failure relay

7. 80 Auxiliary supply for DC supervision

8. 80B DC supply control supervision

9. 80A Relay for mains

10. 500/L Triple pole over current definite term

11. 98 Trip circuit supervision relay

12. 87 Triple pole circulating current

13. 63 Auxiliary relay for transformer fault indication

14. 33B Auxiliary relay for stop

15. 25 Check synchronizing relay

16. 52SC Instantaneous high set over current relay

17. 2B Static time delay relay

18. 51RYB Single pole (IDMTL) Inverse definite Minimum time over current relay.

THE FAULT CLEARING PROCESS

During abnormal or faulty conditions the relays sense the fault and close the trip circuit of the circuit breaker.

As the relay contact close, the trip circuit is closed and the operating mechanism of the CB opens and an arc is drawn between them. The arc is extinguished at some natural current zero of a.c. wave.

o Fault Occurs: – As the fault occurs the fault impedance being low, the currents increase and the relay get actuated. The moving part of the relay moves because of the increase in the operating torque. The relay takes some time to close its contacts.

o Relay contacts close, the trip CB closes and trip coil is energized.

o The operating mechanism starts operating for the opening operations. The CB contacts separate.

o Arc is drawn between the breaker contacts. The arc extinguished in the CB by suitable techniques. The current reaches final zero as the arc is extinguished.

SWITCHGEAR

The switchgear constitutes all parts or equipments of power plant whose function is to receive and distribute electric power. It comprises of the following:

· Assemblies of switching apparatus

· Protective and indicating metering devices

· Interconnecting bus bar systems and relevant accessories

Functions of Switchgear: –

The functions performed by switchgear are listed below: –

· To facilitate redistribution of load, inspection and maintenance of system.

· To localize the effects of faults by operation of protective equipment so automatically disconnect faulty part from the system.

· To break efficiently short circuits without giving rise to dangerous conditions.

The switchgear has the responsibility of transmitting the power from the generator to the grid. However plant also needs power for its working. It is mandatory not to use more than 10% of the power developed by the plant. So that all the auxiliaries and lightening system of the plant must be designed in such a way that there consumption is in the limit.

There are two bus bars placed in ducts, which supply power to the switchgear and are fed by two station transformers ST-I and ST-II. The rating of these identical bus bars is 6.6 KV, 3150 Amps, 50 Hz. These are known as C-I and C-II station buses respectively. The material of conductor is Aluminium. C-I station bus feeds US-IA & US-2A buses and C-II feeds US-IB & US-2B buses. C-I & C-II buses are also interlinked. These unit service buses feed the different kinds of load.

The auxiliary voltage for the ac supply system is 6.6 KV and 415 V. 6.6 KV supply system is provided with high resistance grounded neutral with provision of alarm/ trip. 415V auxiliary supply system has solidly/high resistance earthed neutral. All the electric motors of 150 KW rating or below are rated at 415 V and motors above 160 KW are rated at 6.6 KV.

GENERAL ELECTRICAL SUPPLIES IN THE PLANT

Electrical Auxiliary System

· AC Auxiliary supply system

· DC supply system

AC auxiliary supply system is used to feed all the AC auxiliaries installed in the plant.

The DC supply system which consists of 220 V DC, 110 V DC,

+/- 24 V DC, 48 V DC etc. is used for control supplies as required for system control and protection equipment.

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Simple Electrical Equipment in Daily Life

Simple Electrical Equipment in Daily Life
electric resistance

Research shows that every year hundreds of people get killed each year in accidents which happen because of electrical failures and fires from short-circuits. They occur predominantly due to the ignorance of people who do not have the expertise to locate and rectify such errors, and also because many of them are too reluctant to seek professional help out of the misconception that the issue is not an important one. Some handy electrical test equipments must be kept at home for emergency purposes. Although it is still advisable that you get immediate professional assistance at the quickest, these tools could at least become useful to those who more or less have a fair idea regarding electrical testing.

Analogue Ammeters: They are used to measure the flow of current. The current level is displayed on a dial, in amperes, with the help of a pointer. This is helpful in determining the correct amount of power needed to run any electrical good.

Analogue Multimeters: As the name implies, this is required to measure important aspects regarding the flow of electricity like voltage, resistance and signal power and gives accurate reading in a very short span of time.

Analogue Voltmeters: They are used to determine the voltage of current passing through the circuit and also notify the user if there is a drop in voltage. The mechanism is easy to read with a simple needle point pointing the current voltage on a dial.

Circuit Tracers: This is also known by the name of signal tracers and is probably the most important of these testing devices, because they help in locating the fault in the circuit in the first place. They help to identify common problems like short circuits and breakages.

Clamp Meters: This equipment is very useful to electricians because it allows the user to measure electricity from a circuit without having to disconnect anything from the main wires. It gives all the necessary readings and help in identifying if the mechanism is under a heavy load.

Field Intensity Meters: These devices are used to measure the strength of any kind of electromagnetic field, and are very useful in detecting piping and equipments which are hidden from view or ferromagnetic ores buried in the earth.

Phase Meters: These are used in circuits where electricity is flowing in from three phases. They include instruments like Phase Testers and Phase Rotation Meters and provide accurate reading from all the three phases simultaneously.

Ground Resistance Testers: These equipments are used to test electrical grounding systems to determine the flow of power in between earth and the conducting objects. They are complicated to read and it is advisable that they be used only by those who have a sound knowledge of electrical testing equipment.

These electrical test equipments make the life of users comfortable and hassle-free.

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3 Benefits of Elenco Snap Circuits Jr 100 Electronics Kits

3 Benefits of Elenco Snap Circuits Jr 100 Electronics Kits
electric resistor

Few things are more exciting and rewarding than building something that really works. Most kids love the challenge of building their own electronic devices, whether it’s a simple robot or a bedroom alarm to keep out little siblings.

Various electronic kits are available, and the potential benefits go beyond the finished product. For a start, it’s a hands-on opportunity to become familiar with some terminology. By high school, science classes often include an introduction to electronics concepts, including circuit diagrams, resistors, and diodes. Kids who build electronics learn about basic physics, electricity, and how electronic devices work.

These are pretty challenging abstract concepts, which can be brought to life by using electronic kits to connect the right parts. For instance, rather than looking at a computer and seeing only a box with a screen, electronics enthusiasts can get their hands on real parts to help them see and better understand the inner workings and infinite expansion possibilities.

Electronic kits contain multiple parts, diagrams, and instructions. To be successful and create a working device, kids need to follow instructions systematically. Starting with electronic kits for beginners, there are multiple levels of difficulty to explore. Kids learn how to read instructions carefully and how to interpret schematic diagrams, developing both spatial and logical skills.

Building electronics requires persistence and patience. Starting with simpler kits allows these skills to be learned gradually. Snap-together versions are more gratifying for beginners, who are getting accustomed to the parts and language. Later, more difficult assemblies become interesting.

Electronics does not have to be a solitary pursuit. Some children’s kits, such as the Elenco Snap Circuits Jr 100, include interactive games to be played with friends. While most beginners start with electronic kits, there are endless possibilities for more advanced enthusiasts. In fact, there are clubs and online hobby groups. As projects get more complicated, kids can move on to more advanced electronic kits. Elenco Snap Circuits Jr 100 is a great place for beginners, but after mastering it, kids can advance to Elenco Snap Circuits 300 and Elenco Snap Circuits 500. There are also other brands available, such as Thames and Kosmos.

Have a science fair coming up? Electronic projects are an interesting way to explore physical concepts. Not only can a budding scientist build his or her own electronic device, but then there are many possible experiments that can be done with instruments like photo-electric cells, electromagnets, and generators.

Even beginners can make a wide variety of devices using Elenco Snap Circuits Jr 100, from radios and doorbells to a flying saucer. With so many options and parts, kids can experiment to build their own creations. Then there are electronic kits available that are specifically designed with one purpose in mind, such as making robotic vehicles, hydroponic gardens, race cars, weather observation centers, motorized dinosaurs, and digital recording instruments.

Most beginner electronic kits are solder-free, so they are straightforward and accessible for children. With practice and advancing skills, older kids can learn how to solder. Once this is mastered, there are many intriguing projects to make. Light dimmer switches, LED displays, combination code locks, and digital clocks make nice additions to any room. So next time you’re looking for an interesting and educational activity, think about an electronic kit.

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Description of an Attenuator Voltmeter

Description of an Attenuator Voltmeter
electric resistance

An attenuator voltmeter is defined as an instrument used for measuring the electrical potential difference, also known as voltage, between two points in the electronic circuit of different attenuators such as an optical attenuator and digital attenuator. Voltage is referred to as the electric potential energy per unit charge. It is responsible for driving a current from one electron to another electron. The corresponding International System of Units (SI units) for voltage is volt. The attenuator voltmeter can measure direct current (DC) or alternating current (AC).

In technical terms, all voltmeters are considered ammeters. This is because they measure electric current rather than voltage. Voltage is only measured when the electric current is transmitted in the electric circuit via resistance. Voltmeters are originally called galvanometers. Voltmeters are also known as multimeter because they also measure resistance and current.

The two types of attenuator voltmeter are the digital and analog voltmeters. A digital voltmeter usually features a voltage reference, an analog-to-digital converter, a power supply and a digital display unit. This kind of voltmeter directly displays numerals through the analog-to-digital converter. The digital display system could be a light emitting diode (LED) or a liquid crystal display (LCD) panel. There are several factors that may affect the accuracy of measurement of a digital voltmeter. Some of these factors include temperature and supply voltage variations. Users now prefer a digital voltmeter over an analog one because of its accuracy. To maintain its accuracy, periodic calibration of the voltmeter against a voltage standard is recommended.

Basically, an analog voltmeter contains a galvanometer, or current meter, which is in series with a high resistance. An analog voltmeter displays values on a dial, usually with a moving pointer or a needle. This kind of voltmeter may be employed to locate excessive resistance that may indicate an open circuit or ground. The impedance is the internal resistance of an analog voltmeter. This is commonly expressed in ohms per volt. An analog voltmeter is connected in parallel with the circuit being tested. This allows the meter to tap a small amount of electric current.

An attenuator is defined as a device which reduces the amplitude or power of a signal without distorting the signal’s waveform. This electronic device is used in audio and radio signal circuits. To measure the voltage difference in the attenuator circuit, the positive input terminal and negative input terminal are connected to a location in the electric circuit. When the attenuator voltmeter is already attached to the electric circuit, the circuit will be disturbed, which leads to change in the voltage being measured. The disturbance should be negligible enough so that it will not create significant change in the voltage. Some of companies that manufacture voltmeters are Onesto Electric Co. Ltd., China Electronics Zhejiang Co., Sunlogic Electrical Appliance Ltd., Tons International Ltd., People Ele. Appliances Group, Zhejiang Taizhou Wangye Power Co. Ltd., Shanghai Chenchang Power Technology Co. Ltd., Shaanxi Xieli Photo Electric Instruments Co. Ltd., Dongquan Zhengyang Electronic Mechanical Ltd. and Chac Technology Co. Ltd.

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Thin Film – An Ever-Present Item With Handful of Uses and Practical Applications

Thin Film – An Ever-Present Item With Handful of Uses and Practical Applications
electric resistor

About Thin film Electronic Components and Its Product Range:

There is a widely used product for everything from computer memory and drug delivery to batteries, dye-sensitized solar cells, and micro and nano-devices. It is also used in a variety of applications such as protective coatings, control of light and heat, and modification of surface properties. What exactly is thin film and how is it defined? Essentially, thin film is a layer of material that ranges from fractions of a nanometer to several micrometers in thickness. They are the most common in electronic semiconductor devices and optical coatings, although they have many other applications, some of which were mentioned above. You are probably familiar with the application of thin film in a typical household mirror, in which a thin metal coating is applied to the back of a sheet of glass in order to form the reflective surface.

It is particularly ferromagnetic and ferroelectric thin films, are being increasingly used in computer memory. Ferromagnetism is a mechanism in which materials form permanent magnets, a very important concept that is fundamental in electrical and electromechanical devices such as electromagnets, electric motors, generators, transformers, and magnetic storage. Ferroelectric, on the other hand, signifies that there is a permanent electric polarization than can be reversed in an external electric field. These are used in transducers and electromechanical actuators. It is being used in pharmaceuticals as a method of drug delivery. Another type of thin film, ceramic, is also widely used to protect materials against corrosion, oxidation, and wear. They are also used to produce thin-film batteries and dye-sensitized solar cells. Photovoltaic solar cells have been known to have high manufacturing costs, which in turn causes solar energy to be up to 5 times more expensive than traditional energy methods. Photovoltaic is the conversion of light energy into electricity using solar cells, which can reduce costs dramatically and make solar energy a more economically feasible source of energy. Recently, these solar cells have been produced using this technology, which requires less processing and fewer materials than the thick wafers previously used in solar cells. This reduction in cost and materials is paramount in helping solar energy become more prevalent.

As discussed, this technology has a handful of useful and practical applications. How does the manufacturing process work? This term itself refers to the entire process of manufacturing as well as the heater elements on the thermal print heads themselves. In simple terms, the process works by depositing a very thin layer of resistor material onto a substrate, followed by a thin layer of metal, through the use of chemical vapor deposition. Both these deposited layers are referred to as this. In comparison, thick film technology is more complex and requires that conductors be fabricated at twice the resolution, thus limiting the resolution.

This technology, especially thin-film cells, are manufactured by the following companies: Abound Solar, Aleo Solar, Anwell Technologies, Ascent Solar, Bosch Solar Energy, Daystar Technologies, Energy Conversion Devices, First Solar, Global Solar Energy, HelioVolt, International Solar Electric Technology, Konarka Technologies, Miasole, Nanosolar, Odersun, Q-Cells, Sanyo, Signet Solar, Solo Power, Solyndra, Sulfur cell, SUNGEN International Limited, and TEL Solar.

You can browse on web for leading distributor of all types of thin film components from a comprehensive list of manufacturers. On this site is where you can get tier 1 pricing from manufacturers which pass selected savings to you:

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Some Simple Facts About Ferrite Bead

Some Simple Facts About Ferrite Bead
electric resistance

Ferrite beads are a kind of electronic component which are used to restrain unwanted noise in the conducting wires. It has a hole in the center and is made of ferromagnetic element. It is a kind of electronic choke that acts as an effective shield to suppress noise that has higher frequency. It provides protection from interference coming from dual directions- one from a particular device and the other, to a particular device. Noise generating from high frequency circuits are generally ground leads, inter stage connections and power supply leads. If there is any unshielded conductor and active lead nearby, then they might facilitate the transference of energy from one to another. To prevent it, all that needs to be done is to place some ferrite bead on this leads, so that they can totally block this exchange of energy. Its-best part is that it can be used on any existing circuit.

The cable on which the bead is used works like an antenna, through which electronic energy passes, ferrite bead here controls the flow of energy and helps to decrease EMI. On the other hand, if there is another source of EMI, it prevents action of the cable as a conductor of energy (antenna) and absorbs all the interferences into itself.

The amount of electrical resistance provided by the bead depends on the kind of material it is made of, the level of frequency and also the size of the bead. As the level of frequency gets higher, it also increases to show its resistance to electrical power in the form of low-level of reactance and as reactance is very low, so it has a very low chance of resonance that could disturb attenuation effect. The resistivity of the bead is directly connected to the length of it. They are available in different sizes- lengthy beads are applied to the external cables, whereas smaller ones are used inside electrical goods in circuits on conductors or around the pins of circuit board conductors.

You can add more beads to the same cable to enhance their power of resistance. As the magnetic field is contained within the bead, it works all the same whether it is touching the cable or not I not. The bead used in the inductors acts as a filter, in that it provides prevention from high pitch RFI or EMI electronic noise. The blocked energy is sent up on the cable or it gets disintegrated at the lower level in the form of heat. But if this heat oversteps the threshold of Curie point, then it will lose its magnetic quality and will be stripped off its power to block noises.

Ferrite beads are generally small in size, so it enables only one turn through it. But the hole of the toroidal beads is bigger in size and it is used in cases where more turns are necessary to provide stronger impedance. The turn through the bead is counted by the time a cable passes through its center hole. Sometimes the level of impedance depends upon the turning pattern of the wire. The winding can be done clockwise, anticlockwise or in crisscrossed manner. This pattern is very important, as the pattern will show direct impact on the amount of impedance offered by the bead.

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Electrical Power and Energy

Electrical Power and Energy
electric resistor

Power is an electrical quantity that is measured in watts, and is the rate at which energy is either being absorbed or produced by a circuit. We know that light bulbs and heaters absorb energy and that the higher their value in watts the more energy they will consume. Likewise, batteries and generators produce energy and the greater their electrical rating the more power they can deliver to the load. The unit of electrical power is the watt with its symbol being a large letter “P” indicating constant DC power or a small letter “p” indicating a time-varying AC power.

Electrical power is related to energy which is the capacity to do work. It can also be defined as the rate of by which energy is transferred. If one joule of work is either absorbed or delivered at a constant rate of one second, then the corresponding power will be equivalent to one watt so power, P can be defined as 1Joule/sec = 1Watt. Then we can say that one watt is equal to one joule per second and electrical power can be defined as the rate of doing work or the transferring of energy.

Equally we can define energy as being watts per second or joules. So if the power is measured in kilowatts (thousands of watts) and the time is measure in hours, then the unit of electrical energy is the kilowatt-hour, (kWh) and 1 kWh is the amount of electricity used by a device rated at 1000 watts in one hour.

Kilowatt-hours are the standard units of energy used by the electricity meter in our homes to calculate the amount of electrical energy we use and therefore how much we pay. So if you switch on an electric fire with an element rated at 1000 watts and left it on for 1 hour you will have used 1 kWh of electricity. If you switched on two electric fires each with 1000 watt elements for half an hour the total consumption would be exactly the same amount of electricity – 1kWh. So, consuming 1000 watts for one hour uses the same amount of power as 2000 watts (twice as much) for half an hour (half the time). Then for a 100 watt light bulb to use 1 kWh or one unit of electrical power it would need to be switched on for a total of 10 hours (10 x 100 = 1000 = 1kWh).

So we now know that the unit of power is the watt with the power absorbed by an electrical circuit being given as the product of the voltage, V and the current, I which gives:

P (watts) = V (volts) x I (amperes)

Also, by substituting Ohm’s Law into the equation above we can also define a constant DC power as being:

P (watts) = I^2 (amperes squared) x R (resistance)

or

P (watts) = V^2 (voltage squared) / R (resistance)

Then there are three possible formulas for calculating electrical power in a circuit. If the calculated power is positive, (+P) then the circuit or component absorbs the power. But if the calculated power is negative, (-P) the circuit or component delivers power in other words it is a source of energy.

Power Rating

Electrical components are given a “power rating” in watts that indicates the maximum rate at which the component coverts the electrical energy into another form of energy such as heat, light or motion. For example, a 1/4W resistor, a 100W light bulb etc. So energy is used by electrical devices to convert one form of power to another so for example, an electrical motor will covert electrical energy into a mechanical force.

Electrical motors and other electrical systems have an efficiency rating defined as the ratio of power converted into work to the total power consumed by the device. Efficiency is expressed as a decimal fraction but is generally defined as a percentage value such as 85% efficient. So we can define efficiency as being equal to power output divided by power input x 100%.

The efficiency of an electrical device or motor will always be less than one (100%) due to electrical and mechanical losses. If an electrical device has an efficiency rating of 85% then only 85% of the input power is transformed into mechanical work the other 15% is lost in heat or other losses.

Domestic electrical appliances such as washing machines, driers, fridges and freezers also have energy efficiency ratings that indicate their energy usage and cost. These ratings are given as “A” for efficient and “G” for less efficient.

So remember, the more energy efficient is the device, the less energy it will consume and the more money you will save as well as being helpful to the environment.

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How To Check Whether Your DC Electric Motor Has Gone "Bad"

How To Check Whether Your DC Electric Motor Has Gone "Bad"
electric resistance

These days, direct current (or DC) electric motors are used in a wide range of applications, such as the moving windows and seats in your car. Because of the concealed nature of these motors, it can be highly difficult to complete any repairs or maintenance on them without having to pull whatever it is powering apart. This is why, once you have managed to get to your DC electric motor, you should always give it a quick check to see whether it has gone “bad” and needs to be replaced.

Begin by removing the DC motor from its mount, ensuring that you have also removed any source of electric power that could accidentally cause it to begin turning. You may need to follow the manufacturer’s instructions to do this, as some motors are very much wedged into position and could pose a risk of electrocution.

Next, you can test the electric motor’s continuity (or connection) by attaching it to a volt ohmmeter. Ensure that the meter is in the “ohms” position, then place the red and black leads into its connections (the red lead should be attached to the “ohms” and the black lead to the “common” point). Test that the meter is working properly by touching these two leads together – the screen should read zero ohms (or full continuity).

To test your DC motor, touch the leads of the ohmmeter to the leads of the motor. The meter’s screen should indicate a low resistance (somewhere between 10 and 30 ohms), but if it reads an infinite ohms or an open circuit you should rotate the end shaft of the motor. The ohmmeter should give different readings as this shaft is rotated (which is an indication that the electric motor itself is good, but that there is a problem with the electrical circuit. If the meter is still reading as an open circuit, the conducting brushes may have gone “bad”.

Use a screwdriver to remove the brushes from the end of the electric motor (you can find them under the plastic end caps at the opposite end of the motor to the drive shaft). Carefully inspect the brushes for any sign of cracks or breaks in the surface – the area of the brush that sits against the conductor or commutator should be smooth and curved. If there are any broken wires or springs, the motor will fail. If the brushes appear fine, then the problem may be with the commutator.

Take the screwdriver again and use it to remove the rear end cap of the DC electric motor (by removing the two screws that run the motor’s length). Inspect the plates that comprise the commutator assembly – there should be an opening between each. If you notice any broken wires or burnt varnish, the commutator has failed and its damaged parts will need to be replaced.

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The Benefits Of Scented Reed Diffusers

The Benefits Of Scented Reed Diffusers
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There are many benefits of reed diffusers over other means of adding a wonderful fragrance to your home and many people believe that there is no better way to fragrance your living space than a reed diffuser. As diffusers assume increasing popularity as a means of not only offering a home a wonderful fragrance but also oriental-looking home accents, an increasing number of candle businesses are offering electrical and reed diffusers as part of their range.

So why exactly are so many people considering reed diffusers rather than the more easy to use electrical oil diffusers, or even scented candles? In fact the scented candle business is not dropping but actually increasing, and with it so are sales of reed diffusers. The reason might be that people are turning to reeds rather than electrically heated equivalents that cost more money as power costs increase.

With a reed diffuser all you need are the reeds themselves, a jar or container and the fragrant oil – the reeds will last a long time before they become blocked – and then only if you permit them to dry out. Perhaps that needs a little explanation, so here is how the various types of home fragrances work.

Perfumed Sprays

Perfumed sprays are often used where bad odours are localized, such as in toilets and where you have pets. A quick spray generally masks the odour, though some can chemically react with the chemicals that create the bad smell and neutralize them. However, some of these sprays smell almost as bad the original odour! They are short lasting and generally do not offer the same delicate fragrances that those below do.

Scented Candles

Scented candles have essential oils mixed with the wax, so when the wax burns the essential oils are released. Candles offer the benefits of continuous emission of fragrant oil vapour so that the rooms in which they are used smell good for more than just the short period for which a perfumed spray is active.

Another benefit of scented candles is that they are available in a very wide range of shapes, colours and perfumes, and many of them are akin to mini works of art. People use perfumed candles in their homes as others would use figurines – to decorate the room visually as well as to provide it with a range of beautifully smelling fragrances that can be changed to suit your mood.

Electrical Diffusers

Diffusers work through heat evaporating essential oils and releasing them into your room. The term ‘essential’ in relation to oils indicates those which offer pleasant fragrances, such as rose, lavender, sandalwood, musk and many, many others. In essence, they work in much the same way as candles, only rather than a living flame heating up the essential oil bound in the wax, an electric current heats up a resistor, as in an electric fire, that reaches a temperature sufficient to evaporate the oil, thus releasing its fragrant vapour.

During operation, they are plugged into an electrical socket. Those with a cable can be set in your room anywhere you want, although you can also get diffusers that have a plug attached directly to it so that the diffuser is connected right at the socket.

Reed Diffusers

Reed Diffusers use no energy, except perhaps the natural warmth of your room. The essential oil is poured into a bottle or a jar, often beautifully designed and crafted just for this purpose, and a number of reeds are placed into the bottle. Reed diffusers use proper reeds such as rattan canes, with a spongy inside that absorbs the oil. Many try the same thing with bamboo canes or twigs, but it doesn’t work because the reed must contain capillaries that suck up the oil, which itself is a light essential oil that can be drawn up the reeds by capillary action and then evaporated at room temperature into your home.

The Benefits of Reed Diffusers

The benefits of reed diffusers over the other type of diffusers are that they do not need electricity and they last longer than candles. There is no problem with living flames when you have young children and pets in your home, and they look a lot better than their electrical counterparts do. You can leave them all night and they will work continuously with no danger from a flame or electricity.

For those who use them, the benefits of reed diffusers far outweigh any disadvantages they may offer, although it is difficult to think of one. They are inexpensive, look fabulous and modern and the fragrance they provide to your home is simply magnificent. Not only that, but the range of perfumes that reed diffusers can provide to your home is limited only by the essential oils that nature can provide.

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Different Types Of Digital Multimeters

Different Types Of Digital Multimeters
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Digital multimeters are an electrician’s best friend. They are gadgets used to measure voltage, current and resistance of a circuit of an electronic device or an in-home circuit. A digital multimeter, or DMM, produces highly accurate numerical readings and displays them on a LED screen. An analogue multimeter, on the other hand, display readings using a pointer that deflects on the printed dial screen. This may produce inaccurate readings resulting from human error. There are different types of DMMs and they function differently.

Fluke Digital Multimeter

Fluke digital multimeters carry out various calibration functions. They measure electric current, voltage and resistance across different components. Depending on the element that needs to be measured, the correct task can be selected on the selector knob. A Fluke DMM comes with a large display screen, making it very easy to note the readings. More innovative DMMs also come with features that measure temperature, frequency, pressure, humidity and duty cycle. The voltage, current or resistance reading is taken when the two leads are connected to the device being measured.

The Clamp Digitial Multimeter

A digital clamp multimeter is a testing tool used to measure electrical flow. The clamp part of the device is used for measuring amperage that is surging through an insulated cable. Normally, most digital clamp multimeters don’t possess the ability to measure electrical resistance. They typically measure current flow through the clamp portion and the volts using the probes. The clamp DMM’s main purpose is to read amperage through the cable and the circuit’s voltage. The power consumption, or Watts, can be calibrated by multiplying the amps and the volts readings.

DMMs For Various Voltage Outputs

When measuring AC or DC current across a circuit or a component, make sure that the digital multimeter matches its voltage level. More than damaging your electric gauging tool, you will put your own life in danger. There have been reports of injuries and deaths relating to the use of a wrong type of multimeters: smaller ones have been used to read installation circuits with high voltage. It is imperative that only experts handle multimeters to test electrical current and voltage.

DMMs are given the following rates:-

A. Category I – for testing electronic devices

B. Category II – for testing appliance and domestic loads

C. Category III – for small-sized industrial circuits

D. Category IV – for testing power lines and feeds of residential and commercial electrical mains

Digital multimeters can be an intimidating tool to use. But if you are knowledgeable in the field of electricity and handle it with precaution, you will realise that DMMs are the most useful appliances around. They help keep electrical devices, circuits and entire houses in check. By choosing the right type of DMM, you can keep yourself, your family and your home safe from electrical hazards.