Saturday, 25 March 2017
Build a Battery Circuit for Backup and Standby Operation
- BD139 – NPN power transistor used for driver stages in hi-fi amplifiers and television circuits because of its low voltage at 80 V maximum and high current at 1.5 A maximum.
- Bridge Rectifier – also known as bridge rectifier which has four diodes arranged in a bridge configuration where the output voltage has the same polarity with either polarity of the input voltage.
- 1N4002 – a 1.0 Amp Silicon rectifier with voltage range of 50 to 1000 Volts and possessing features such as guaranteed high temperature soldering, high current capability, diffused junction, low reverse leakage, utilizes void-free molded plastic technique for low cost construction, and carries Underwriters Laboratory Flammability Classification of 94V-0 by its plastic package.
Battery Circuit for Backup and Standby Operation


The circuit of 7V backup battery is widely applied in several uninterruptible power supplies that efficiently function in times of power outage. Some models are incorporating the use of Lithium Ion and NiCd types of batteries. The most advantage feature that the circuit brings is providing backup power for emergency and important loads. Other models are created with high power capability to support high power applications.
Thursday, 9 March 2017
Crossover For Subwoofer
The crossover network is intended for use when an existing audio installation is to be extended by the addition of a subwoofer. Often, this additional loudspeaker is one that has been lying around for some time. If its frequency response extends down far enough, all is well and good, but a filter is then needed to cut off any frequencies above, say, 150 Hz. Often, a subwoofer network is an active filter, but here this would necessitate an additional power supply. The present network is a passive one, designed so that the speaker signal of the existing system can be used as the input signal.
Circuit diagram:
![]() |
Since the bass information is present in both (stereo) loudspeakers, the signal for the sub woofer can simply be tapped from one of them. The network is a 1st order low-pass filter with variable input (P1) and presettable cut-off frequency (P2). The signal from the loudspeaker is applied to terminal ‘LSP’. Voltage divider R1-R2-P1 is designed for use with the output signal of an average output amplifier of around d 50 W. The crossover frequency of the network may be varied between 50 Hz and 160 Hz with P2. The values of R3, P2, and C1, are calculated on the assumption that the subwoofer amplifier to be connected to K1 has a standard input resistance of 47 kΩ.
If this figure is lower, the value of C1 will need to be increased slightly. It is advisable to open the volume of the subwoofer amplifier fully and adjust the sound level with P1. This ensures that the input of the subwoofer amplifier cannot be overloaded or damaged. Make sure that the ground of the loudspeaker signal line is linked to the ground of the subwoofer amplifier. If phase reversal is required, this is best done by reversing the wires to the subwoofer. If notwithstanding the above additional protection is desired at the input of the subwoofer amplifier, this is best effected by ‘overload protection ’ elsewhere in this site.
Copyright: Elektor Electronics
Wednesday, 8 March 2017
Home Network for ADSL
The increased availability of fast ADSL Internet connections has made it more attractive to install a small RJ45 Ethernet network in the home. Not only can you exchange files between computers, you will also have fast Internet access for everybody! This does of course require an ADSL modem with a router. It’s not possible to use a simple USB modem on its own. For laptops we recommend wireless Ethernet connections. If you find the laying of cables too difficult or inconvenient you can also add wireless capabilities to ‘ordinary’ PCs. You should bear in mind that the range of wireless connections could sometimes be disappointing. When a network is set up round a router you should use a star configuration for the cabling. This means that only a single PC is connected to each router socket.
- orange/white
- orange
- green/white
- blue
- blue/white
- green
- brown/white
- brown
Copyright: Elektor Electronics
Sunday, 5 March 2017
Types of Actuators used for Motion in Automation with Advantages Disadvantages
Types of Actuators used for Motion in Automation with Advantages & Disadvantages
• Air Motors
• AC Induction Motors
• Clutch/Brake
• Stepper Motors
• Hydraulic Motors
• Servomotors
3) Clutch/Brake –
4) Stepping Motors –
Saturday, 4 March 2017
Music On Hold for Telephones
Wednesday, 1 March 2017
TDA1599 IF amplifier demodulator for FM radio receivers
Circuit Diagram:
![]() |
| TDA1599 IF amplifier/demodulator for FM radio receivers |
Thursday, 23 February 2017
Top 5 Reasons for a New Auto Sound System
Monday, 20 February 2017
SW Converter for Digital AM Car Radio
This circuit is purposely presented with many loose ends (not literally, of course) to stimulate experimenting with RF circuitry at a small outlay. Looking at the circuit diagram you may recognize a modified version of the SW Converter for AM Radios described elsewhere in this issue. The modifications were necessary to make the circuit compatible with a digital rather than analogue AM car radio. The main difference between digital AM radios and their all-analogue predecessors is that tuning is in 9 kHz (some-times 4.5 kHz steps) in compliance with the international frequency allocation for the band. Obviously, that particular step size, desirable as it may be on MW, is a stumbling block if you want to use a digital AM receiver in combination with a frequency step-up converter for SW, where chaos reigns and there is no fixed step size. The first attempt was to make the crystal oscillator variable by about 5 kHz each way.
Circuit diagram :
SW Converter for Digital AM Car Radio Circuit Diagram
Unfortunately, despite serious efforts, the crystal could not be pulled more than 1 or 2 kHz so another solution had to be found. After studying the NE/SA602/612 datasheet, it was found that a variable LC based oscillator was the best alternative. The circuit worked after winding a resonant LC circuit and adding a 0.1 µF series capacitor to block the DC component on pin 6 of the NE602 (612). When the tuning was found to be a bit sharp with the original capacitor, a simple bandspread (or fine tuning) feature was added by shunting the LC resonant circuit with a lightly loaded 365 pF tuning capacitor (C10) which, like the main tuning counterpart, C8, was ratted from an old transistor radio. The tuning coil, L1, consists of 8 to 10 turns of 0.6-0.8mm dia. enamelled copper wire (ECW) on a 6-8 mm dia. former without a core. With this coil, frequency coverage will be from about 4 MHz to 12 MHz or so. Details on Tr1 may be found in the referring article.
Note that no tuning capacitor is used on the secondary — the input stray capacitance of the NE602 (612) does the trick. A BFO (beat frequency oscillator) was added to enable SSB (single sideband) signals to be received. The BFO built around T1 is simple, has a heap of output and is stable enough to hold an SSB signal for a few minutes without adjustment. The BFO frequency is tuned with C3. Tr2 is a ready-made 455 kHz IF transformer whose internal capacitor was first crushed and then removed with pliers. When S2 is closed the BFO output signal is simply superimposed on the NE602 (612) IF output to the MW radio. The converter should be built into a metal box for shielding. If you find that the BFO gives too much output, disconnect it as suggested in the circuit diagram and let stray coupling do the work. Sensitivity, even on a 1-metre length of car radio aerial, is quite amazing. Bearing in mind that most of the major international SW broadcasting stations like Radio NHK Japan, Moscow, BBC etc.) generate enough power to make sure that you will hear them, it is still quite exciting to hear such signals for the first time on your car radio.
Author : P. Laughton, VK2XAN – Copyright : Elektor Electronics
Friday, 17 February 2017
Build Electronic Project for Home Made Movie Maker
Here the pictures are shadows cast by low-voltage lamps. There are four Lamps in all, which glow in sequence cyclically. This gives the illusion of a simple but realistic movie.
Fig. 1 shows the circuit for the movie maker. It is driven by clock pulses provided by NAND gates N1 and N2. The flickering frequency is adjustable through preset VR1. A suitable rate for perceiving continuous motion is 16 Hz. The clock pulses are fed to counter IC CD4022 (IC2). IC2 has eight outputs, but only the first four (0-3) are used in this circuit. The outputs go high one at a time, in sequence. The fifth output (output 4) is connected to the reset input so that the counter is immediately reset at the fifth count and the first output (output 0) goes high.
The counter outputs are fed to CD4049 hex buffer (IC3). The buffer outputs drive transistors T1 through T4 in a sequence. As each transistor conducts, the lamp connected to it glows. The lamps are rated at 0.3A so these provide enough light to operate the movie show in a dimly-lit room.
Fig. 1: Circuit for movie maker:

Assemble the circuit on a general-purpose PCB. Power-on the circuitusing switch S1 and make sure that the outputs of IC2 (0 through 3) are normally low but briefly go high three-four times within a second. Also ensure that the lamps flash one at a time in a repeating sequence. If the sequence appears to be wrong or any of the lamps fails to glow, check the wiring. The light shield and film holder can be made of a thin card, sheet metal or plywood. Strictly adhere to the various dimensions as shown in Fig. 2. Otherwise, the shadow images may fail to register properly when projected.
Use a plastic cabinet as shown in Fig. 3 to hold the circuit board and battery. Owing to the power requirements of the lamps, it is more economical to use four 1.5V cells in a battery box. Else, you can use a 6V power adaptor.
Fig. 2: Assembly arrangement:

There are two ways of mounting the lamps. The more satisfactory but more expensive method is to bolt the four lamps. Alternatively, drill four 1cm dia. holes on the front of the cabinet, wedge the base of the lamps in these holes and solder wire to the bases.
Fig. 3: Plastic case with assembled circuit:

The easiest way to prepare the film frames is to photocopy the desired drawings onto transparent films. Alternatively, trace them on a transparent acetate film or draughtsman's film, using a fine marker pen. Align all the drawings on the frames and project onto the screen.
Fig. 3: Flim making:

Working of the circuit is simple. First of all, fix the clock frequency at about 16 Hz. Place the film on the holder. Ensure a distance of 12 cm between the screen and the assembled unit and power-on the circuit using switch S1. Now you can see your drawings as a short movie clip on the screen.
EFY note. We have tested this circuit without the mechanical arrangement.
Thursday, 16 February 2017
Music On Hold for Telephones
Here is a simple circuit for music-on-hold with automatic shut off facility. During telephone conversation if you are reminded of some urgent work, momentarily push switch S1 until red LED1 glows, keep the telephone handset on the cradle, and attend to the work on hand. A soft music is generated and passed into the telephone lines while the other-end subscriber holds. When you return, you can simply pick up the handset again and continue with the conversation. The glowing of LED1, while the music is generated, indicates that the telephone is in hold position. As soon as the handset is picked up, LED1 is turned off and the music stops.
Circuit diagram :
Music-On-Hold for Telephones Circuit Diagram
Normally, the voltage across telephone lines is about 50 volts. When we pick up the receiver (handset), it drops to about 9 volts. The minimum voltage required to activate this circuit is about 15 volts. If the voltage is less than 15 volts, the circuit automatically switches off. However, initially both transistors T1 and T2 are cut off. The transistor pair of T1 and T2 performs switching and latching action when switch S1 is momentarily pressed, provided the line voltage is more than 15 volts, i.e. when the handset is placed on the cradle. Once the transistor pair of TI and T2 starts conducting, melody generator IC1 gets the supply and is activated. The mu-sic is coupled to the telephone lines via capacitor C2, resistor R1, and the bridge rectifier.
With the handset off-hook after a ring, momentary depression of switch S1 causes forward biasing of transistor T2. Mean-while, if the handset is placed on the cradle, the current passing through R1 (connected across the emitter and base terminals of pnp transistor T1) develops enough voltage to forward bias transistor T1 and it starts conducting. As a consequence, output voltage at the collector of transistor T1 sustains for-ward biasing of transistor T2, even if switch S1 is released. This latching action keeps both transistors T1 and T2 in conduction as long as the output of the bridge rectifier is greater than 15 volts. If the handset is now lifted off-hook, the rectifier output drops to about 9 volts and hence latching action ceases and the circuit automatically switches off.
EFY lab note. The value of resistor R2 determines the current through resistor R1 to develop adequate voltage (greater than 0.65 volts) for conduction of transistor T1. Hence it may be test selected between 33 kilo-ohms and 100 kilo-ohms to obtain instant latching.) The total cost of this circuit is around Rs 50.
Author : SIBIN K. ZACHARIAH - Copyright : Electronicsforu
Thursday, 9 February 2017
Why You Should Use Normally Closed For Stop Buttons
I have been asked by many of you to explain the use of normally open and normally closed logic when working with PLC programming.
Recently, I wrote an article containing a collection of ladder logic examples, but one of the examples made some confusion. In the start/stop circuit made with ladder logic I used a normally closed contact in the ladder logic.
But, I realized that I’ve made a mistake.
Some of you noticed that in order to make this example follow good practice, I should use a normally open contact in the ladder logic, and a normally closed contact as input actuator. By doing so, the input will be not produce dangerous situations under failure.
To explain this further I will divide the PLC logic into two parts. At last I will show how you should merge the two:
- Hardware Logic
Input actuators and wiring (what is actually connected to the input). - Software Logic
The logic of your PLC program (the logic you program into the PLC).
Hardware Logic
Let’s begin with some digital inputs and some actuators to connect to these.All digital inputs, and therefore all the digital input actuators have two states:
- OFF (0)
- ON (1)
But the digital actuators can not only have two states. They can also have one of two functions:
- Normally open
- Normally closed
The difference between connecting normally open actuators and normally closed actuators to a digital input is when you activate the actuators.
Take these two rules and remember them. This is the difference between normally open and normally closed:
1. Normally Open Input Actuators
In the default state (inactivated) of a normally open actuator the input bit is 0.When you activate a normally open actuator the input bit will switch to 1.
2. Normally Closed Input Actuators
In the default state (inactivated) of a normally closed actuator the input bit is 1.When you activate a normally closed actuator, the input bit is 0.
This can also be illustrated in a table:
| State of the actuator | Input bit | |
| Normally Open | Inactivated (0) | 0 |
| Activated (1) | 1 | |
| Normally Closed | Inactivated (0) | 1 |
| Activated (1) | 0 |
Normally closed actuators has the opposite effect on the state of the inputs they’re connected to compared to normally open actuators.
Keep in mind that the state of the actuator affects the state of the input and thereby the input bit. Each time the PLC scan cycle reaches the step where it updates the input bit, these are the values that the input bits will be updated to.
Software Logic
When you are developing a PLC program you will also be using logic. But instead of hardware logic with actuators you will now have ladder logic contacts or boolean instructions.This is often where some confusion occurs. Because this other type of logic looks very similar to the hardware logic. In fact, the PLC programming language ladder logic is made to look like electrical circuits.
Just like the input actuators you have both normally open and normally closed contacts available in PLC programming. Often they are referred to as examine if closed (XIC) and examine if open (XIO).
The ladder logic symbols look almost like the electrical symbols for normally open and normally closed contacts, and the function of these are the same. I can even plot the same table, but this time for the PLC logic:
| Input bit | Result | |
| Examine If Closed | 0 | OFF (0) |
| 1 | ON (1) | |
| Examine If Open | 0 | OFF (1) |
| 1 | ON (0) |
As you might notice, the columns have moved and changed. The result of the boolean instructions (XIC and XIO) is now dependent on the values of the input bits. Just like the state of the input bit is dependent on the state of the actuators.
State of actuator –> Input bit –> Result of boolean instruction
At last a column containing all the results of the boolean instructions. The result is what comes after the instruction in your ladder diagram. If you have a coil connected after the bit logic instruction, the result column will be equal to the state of that coil.
Merging Software Logic and Hardware
When you create a new boolean instruction in your PLC program you will give it a certain address. This is the address of a single bit (boolean is 0 or 1 and so is a single bit). Once you’ve given the instruction an address, the state of that particular bit will now be represented as the state of that instruction.For example you can give an instruction the address of one of the PLC inputs. When doing so, the state of the instruction will now represent the state of the input. Because each PLC input has its own bit in the PLC memory. The state of each of these bits represents the state of the corresponding input.
Let’s move back to the start/stop example, which is really just a latch of a coil with an instruction to break the latching.
Here’s an illustration of how the whole system would look like, including both hardware and software:
Notice that I use a normally open contact as input actuator, even for the stop button. This is because I’ve already used normally closed logic in the software.
When the input actuator is activated, the input bit will turn ON or 1. But in my ladder logic I’ve used an examine if open instruction and given it the address of that input.
As you can see in the table above, the result of an examine if open instruction will be 0 if the input is 1.
This is good because in the ladder logic, the instruction has to break the connection and thereby the latching of the output.
But, since the state of the input has to be 1 to break the connection (result 0), the input actuator has to turn the input ON or 1 when activated.
In the table with input actuators above, you can see that a normally open contact will change the state of the input to 1 when activated. In that way, you can use the two tables to choose between normally open and normally closed logic.
But this is not good practice.
What Is The Difference Between Normally Closed And Normally Open Inputs?
Using normally open contacts as PLC inputs is good. But for stop functions it can be bad. This is because normally open contacts can create dangerous situations when they fail…Let me explain that a little further.
How could a circuit like the one in the example with just 2 inputs fail?
What if one of the wires broke:
Now, the stop button (the normally open contact) will have no function when the system is failing (wire-break). The wire break is one fail, but that produces another fail: The stop button isn’t working. And since the stop button is a critical function, this is why this solution is not good practice.
How could this solution be good practice?
By using a normally closed contact as stop actuator. This is because the normally closed contact as an input actuator won’t create dangerous situations under failure. Meaning that when a fail occurs (the wire-break), the input will act as the normally closed contact has been activated. So, if the wire to the stop button breaks, the same will happen as if someone activated the stop button. The latch will break.
When the input actuator is changed from normally open to normally closed, the state of the input is also changed. Before the input was always 1 or ON, when the actuator wasn’t activated. But now, the input is 0 or OFF when the actuator isn’t activated.
This means, that for the stop button to work as in the previous example, the boolean instruction should now be examine if closed instead of examine if open. If you, once again, look at the table you will see that.
Since, the input is always 1, an instruction with the result of 1 (when the input is 1) will do the job. The result of the examine if closed instruction is 1.
Now, the stop button works together – hardware and software. You can see below, what happens when the stop button is activated:
At last you might wonder why I didn’t do the same thing with the start button. That input is also a normally open contact, but with examine if closed (normally open logic) in the software.
Just like that stop button, the start button will not work if the wire breaks.
Remember that wire-breaks and other failures shouldn’t produce dangerous situations. Well, even though the start button will not work under a wire-break, the start button is not a critical function.
Why is the start function not a critical function?
Because it is not dangerous if the machine, motor or another movable part cannot start.
Conclusion
To develop you PLC program with what’s known as good practice, you should always keep in mind what will happen when the system is failing. Your system can fail in many different ways, but often the critical one is wire-break.Wire-break often occurs because wires are the weakest point in a typical PLC system. Wires often go along movable parts, and are therefore exposed to a risk of being cut or ripped apart.
Another very common fail, that behaves in almost the same way as a wire-break, is loose connections. All your inputs are connected with wires. The weak points here are the connections. From the input screw-terminal on the PLC to the terminals on the input actuators are all in risk of being loose and creating a bad connection. Sometimes even no connection, which is just like a wire-break.
Do you know about other common fails, that can cause risk in a PLC program?

