School of Electrical Engineering, Electronics and Automation

Friday, 23 October 2015

Introduction to Fault-Tolerant Embedded Systems

Introduction to Fault-Tolerant Embedded Systems 01 TESLA Institute

 

 

 

 

 

 

 

 

 

 

 

 

We all use electronic systems in our day-to-day life. Many times we have seen that when systems fail, things get difficult. Consequences can be serious if failure happens in a critical function. For example, imagine you are travelling in an aircraft and the main controller controlling the aircraft fails. When applications that involve safety of our lives fail, how we handle them becomes critical.

 

Reliable systems are designed based on the data collected about the failure of the components used in the system. Reliability is a figure that can be predicted based on certain parameters for every system. Essentially, reliability is just a predicted number based on probability and does not let the system work in case of failure.

A fault-tolerant (FT) system, on the other hand, will work even if there is a single or multiple faults (based on design) in the system.

Another critical aspect that we need to remember is how fault-tolerance is implemented. Let us take the example of a telephone exchange. If there is a problem in the phone line or line interface in the exchange, the fault can be rectified only when we replace the faulty part with a good one. However, if the controller controlling the exchange fails, this not only affects the user but also leads to revenue loss as all metering information for on-going calls will be lost. So, most service providers expect exchange controllers, and not the subscriber interface, to be fault-tolerant.

 Introduction to Fault-Tolerant Embedded Systems TESLA Institute

There are certain applications like aircraft

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Saturday, 11 July 2015

Electromagnet


An electromagnet is a type of magnet in which the magnetic field is produced by an electric current. The magnetic field disappears when the current is turned off. Electromagnets usually consist of a large number of closely spaced turns of wire that create the magnetic field. The wire turns are often wound around a magnetic core made from a ferromagnetic or ferrimagnetic material such as iron; the magnetic core concentrates the magnetic flux and makes a more powerful magnet.

 

The main advantage of an electromagnet over a permanent magnet is that the magnetic field can be quickly changed by controlling the amount of electric current in the winding. However, unlike a permanent magnet that needs no power, an electromagnet requires a continuous supply of electrical energy to maintain a magnetic field.

 

Electromagnets are widely used as components of other electrical devices, such as motors, generators, relays, loudspeakers, hard disks, MRI machines, scientific instruments, and magnetic separation equipment. Electomagnets are also employed in industry for picking up and moving heavy iron objects such as scrap iron and steel.

 

 

History

Danish scientist Hans Christian Orsted discovered in 1820 that electric currents create magnetic fields. British scientist William Sturgeon invented the electromagnet in 1824. His first electromagnet was a horseshoe-shaped piece of iron that was wrapped

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Tuesday, 19 May 2015

Dual Motor Control for Robots

 

 Dual Motor Control for Robots - TESLA Institute


Presented here is a simple circuit that can drive two motors for a small robot, allowing the robot to negotiate an obstacle course. Two light-dependent resistors (LDRs) are used to detect the obstacle and the motors are driven correspondingly to avoid the obstacles automatically. Two H-bridge motor circuits are used that can drive each motor forward or backward, or stop it, independently.

Circuit and working


Fig. 1 shows the circuit of dual motor control. The circuit is built around four-channel multiplexer CD4052 (IC1), light-dependent resistors (LDR1 and LDR2), four BC547 npn transistors (T1 through T4), four BC338 transistors (T7, T8, T11 and T12), four BC327 pnp transistors (T5, T6, T9 and T10) and a few other components.

Dual Motor Control for Robots - TESLA Institute

Fig. 1: Circuit of the dual motor control

As mentioned earlier, there are two H-bridge circuits to drive the two motors. Motor M1 drives the left side, while motor M2 drives the right side. Each H-bridge circuit is built around a pair of npn and pnp transistors as shown in Fig. 1. Each driving transistor has a diode connected between

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Wednesday, 15 April 2015

Concentrated Solar Power

Reportstack announces that it has published a new study Concentrated Solar Power (CSP): Market Shares, Strategy, and Forecasts, Worldwide, 2014 to 2020. The 2014 study has 436 pages, 190 tables and figures. Worldwide markets are poised to achieve significant growth as the Concentrated Solar Power (CSP) integrates molten salt storage technologies and leverages the existing steam electrical power generating capacity.

The concentrated solar power market is set to explode despite environmental objections to the technology. The latest CSP launch, Ivanpah solar electric generating system is an engineering marvel that delivers on the full promise of solar energy. Ivanpah

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Thursday, 2 April 2015

Signal Diode

Signal Diode 01 TESLA Institute
The semiconductor Signal Diode is a small non-linear semiconductor devices generally used in electronic circuits, where small currents or high frequencies are involved such as in radio, television and digital logic circuits. The signal diode which is also sometimes known by its older name of the Point Contact Diode or the Glass Passivated Diode, are physically very small in size compared to their larger Power Diode cousins.

Generally, the PN junction of a small Signal Diode is encapsulated in glass to protect the PN junction, and usually have a red or black band at one end of their body to help identify which end is the cathode terminal. The most widely used of all the glass encapsulated signal diodes is the very common 1N4148 and its equivalent 1N914 signal diode.
Small signal and switching diodes have much lower power and current ratings, around 150mA, 500mW maximum compared to rectifier diodes, but they can function better in

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Tuesday, 31 March 2015

Semiconductors



If Resistors are the most basic passive component in electrical or electronic circuits, then we have to consider the Signal Diode as being the most basic “Active” component. However, unlike a resistor, a diode does not behave linearly with respect to the applied voltage as it has an exponential I-V relationship and therefore can not be described simply by using Ohm’s law as we do for resistors.

Diodes are basic unidirectional Semiconductor Devices that will only allow current to flow through them in one direction only, acting more like a one way electrical valve, (Forward Biased Condition). But, before we have a look at how signal or

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Sunday, 22 March 2015

Friday, 20 March 2015

Wednesday, 11 March 2015

Resistance



 
An electron traveling through the wires and loads of the external circuit encounters resistance. Resistance is the hindrance to the flow of charge. For an electron, the journey from terminal to terminal is not a direct route. Rather, it is a zigzag path that results from countless collisions with fixed atoms within the conducting material. The electrons encounter resistance - a hindrance to their movement. While the electric potential difference established between the two terminals encourages the movement of charge, it is resistance that discourages it. The rate at which charge flows from terminal to terminal is the result of the combined effect of these two quantities.

The flow of charge through wires is often compared to the flow of water through pipes. The resistance to the flow of charge in an electric circuit is analogous to the frictional effects between water and the pipe surfaces as well as the resistance offered by obstacles that are present in its path. It is this resistance that hinders the water flow and reduces both its flow rate and its drift speed. Like the resistance to water flow, the total amount of resistance to charge flow within a wire of an electric circuit is affected by some clearly identifiable variables.

First, the total length of the wires will affect the amount of resistance. The longer the wire, the more resistance that there will be. There is a direct relationship between the amount of resistance encountered by charge and the length of wire it must traverse. After all, if resistance occurs as the result of collisions between charge carriers and the atoms of the wire, then there is likely to be more collisions in a longer wire. More collisions mean more resistance.

 

Second, the cross-sectional area of the wires will affect the amount of resistance. Wider wires have a greater cross-sectional area. Water will flow through a wider pipe at

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Saturday, 14 February 2015

Happy Valetine's Day


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Mission of TESLA INSTITUTE is to be the leading provider of scientific information on education in Electrical Engineering, Electronics, Automation and Computer Technology. TESLA INSTITUTE offer new teaching method. Generally our idea can be simple describe as: Problem -> Thinking -> Searching solution -> Real problem solution Big part of study at TESLA INSTITUTE school is realized as solving problems and practical real life projects, which give student many experiences already at school. So as alumni students of TESLA INSTITUTE have so many practical experiences for their future employers. Our alumni are ready to talk about real professional things on their job interview We teach, we share and spread knowledge. You are welcome to learn at TESLA INSTITUTE

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