Showing posts with label and. Show all posts
Showing posts with label and. Show all posts

Wednesday, 29 March 2017

Telephone line Based Audio Muting and Light On Circuit


Telephone line Based Audio Muting and Light-On Circuit. Very often when enjoying music or watching TV at high audio level, we may not be able to hear a telephone ring and thus miss an important incoming phone call. To overcome this situation, the circuit presented here can be used. The circuit would automatically light a bulb on arrival of a telephone ring and simultaneously mute the music system/TV audio for the duration the telephone handset is off-hook. Lighting of the bulb would not only indicate an incoming call but also help in locating the telephone during darkness.
.
Circuit diagram :
Telephone line Based Audio Muting and Light-On Circuit Diagram Telephone line Based Audio Muting and Light-On Circuit Diagram 
.
On arrival of a ring, or when the handset is off-hook, the inbuilt transistor of IC1 (opto-coupler) conducts and capacitor C1 gets charged and, in turn, transistor T1 gets forward biased. As a result, transistor T1 conducts, causing energisation of relays RL1, RL2, and RL3. Diode D1 connected in antiparallel to inbuilt diode of IC1, in shunt with resistor R1, provides an easy path for AC current and helps in limiting the voltage across inbuilt diode to a safe value during the ringing. (The RMS value of ring voltage lies between 70 and 90 volts RMS.) Capacitor C1 maintains necessary voltage for continuously forward biasing  transistor T1 so that the relays are not energised during the negative half cycles and off-period of ring signal. Once the handset is picked up, the relays will still remain energised because of low impedance DC path available (via cradle switch and handset) for the in-built diode of IC1. 

After completion of call when handset is placed back on its cradle, the low-impedance path through handset is no more available and thus relays RL1 through RL3 are deactivated. As shown in the figure, the energised relay RL1 switches on the light, while energisation of relay RL2 causes the path of TV speaker lead to be opened. (For dual-speaker TV, replace relay RL2 with a DPDT relay of 6V, 200 ohm.) Similarly, energisation of DPDT relay RL3 opens the leads going to the speakers and thus mutes both audio speakers. Use ‘NC’ contacts of relay RL3 in series with speakers of music system and ‘NC’ contacts of RL2 in series with TV speaker. Use  ‘NO’ con-tact of relay RL1 in series with a bulb to get the visual indication. 


Author : Dhurjati Sinha - Copyright : EFYmag

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Saturday, 25 March 2017

Build a Battery Circuit for Backup and Standby Operation


The circuit was designed to create a spare and reserve power source with the use of batteries during the absence of power from the mains.
  • 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.
One of the main components in the construction of this circuit is the transformer which is rated with 230V/10V with a given current of 0.5A. It will handle the transfer of electrical energy from one circuit to another via inductive conductors or windings. Other components include a bridge rectifier and an electrolytic capacitor. This will be followed by an 8V2 Zener diode rated at 0.4W, which provides the regulation of voltage in the transistor as it is connected in series with the base to produce a constant output voltage of 7.5 V.

Battery Circuit for Backup and Standby Operation 

 To produce the desired 7.5 V, there are five batteries used in this circuit with 1.5 V each, in series with diode D7. This voltage is hanging across the output terminals, which takes over in case of failure in the main supply. The power supply will be reduced to 7 V due to the voltage drop across D7. The presence of resistor R3 performs an additional operation where it drops the charging of dry cells or storage battery, when it stops working with the main supply. To obtain the actual resistance of R3, the voltage potential difference between the battery and the Zener diode D6 is divided by the reliable current drop which measures around 0.7 mA.

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.

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Wednesday, 8 March 2017

Monitor voltage and 5VDC and 12VDC Circuit Diagram


This circuit is a voltage monitor which operates on fixed testes ± 5 VDC and ± 12 VDC, and is easily constructed as shown in Fig. It is considerably simpler than the normal display using comparators and AND gates. The circuit is not intended to indicate the level of entries. If one of the testes fail, for example, -5 V line fails, the transistor Q3 remains on but the base-emitter junction of T2 is not, so that this transistor is cut off. When this happens, there is no current through D, which then turns off.

Monitor voltage + and - 5VDC + and - 12VDC Circuit Diagram

Monitor voltage + and - 5VDC + and - 12VDC Circuit Diagram


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Saturday, 4 March 2017

KONKA LED40 F3300C– KONKA LED42F3300C KONKA LED32F3300C – SMPS AND LED BACK LIGHT DRIVE – SCHEMATIC


Used ICs: FAN6755W smps control – 10N60L-B SMPS switching – OZ9902C  back-light led drive control


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Sunday, 26 February 2017

The Nexus 8 or Nexus Android 9 L and 64 bit processor could have these features and design


 
The Nexus 8 or Nexus Android 9 L and 64-bit processor could have these features and design
 
With the introduction of Android L, the latest operating system Google Android Lollipop might be called the  Nexus 8 or Nexus 9 could have another design that we had seen.
The Nexus Nexus 8 or 9 remains a mystery and although we saw earlier as might be the design of this new tablet, the latest concept shows us the tablet based on Android L and a 64 bits.

This recreation was created by Vishal Bhanushali and has posted up a video to illustrate what could be the new product from Google.

The Nexus 8 which would be manufactured by HTC would have a soft material at the back to allow it to have a good grip, especially that it would be very thin and light. This rear appears very similar to the rear of the Nexus July 2013.

8 The Nexus runs the latest version of Google's mobile operating system Android Android Lollipop L or (if they end up calling the company), which offers the Material Design (Design Material), as support for 64-bit processors could be Intel or Qualcomm.

Being manufactured by HTC, the Nexus 8 would have the two speakers in the front that are named BoomSound.

According to the creator of this concept, the Nexus 8 would result by the minimalist aspect of L and Android Nexus devices, like the good style that HTC has shown in recent years.

Although this is only a concept, it is very possible that Google present Neuxs 6 and 8 together with Android Nexus L (Lollopop) possibly in October this year. Wait for it to arrive this date to find which is what Google actually has prepared for us.

Readmore → The Nexus 8 or Nexus Android 9 L and 64 bit processor could have these features and design

Tuesday, 21 February 2017

Gibson Deluxe Tuners and why they suck



Please note that this post is part one of four posts. I highly recommend reading all four posts in order before acting on any of the information.

The other parts are located here:

Part 2: http://diystrat.blogspot.com/2009/01/gibson-deluxe-tuners-part-two.html
Part 3: http://diystrat.blogspot.com/2009/02/gibson-deluxe-tuners-fix.html
Part 4: http://diystrat.blogspot.com/2010/01/gibson-deluxe-tuners-revisit.html

I have a problem with one of the tuners on my Les Paul. It had the problem already when I bought the guitar a few years ago and I managed to do a temporary fix, but the problem has resurfaced.

Before I go on about it, let’s have a look at a typical stamped (open-backed) guitar tuner.


There are several components and many names for those components, so my apologies if I use ones that you are not accustomed to. Firstly, the tuner can also be called the tuning head, tuning peg, or the machine head (and possibly other names). It has a main plate, through which the main cylinder (or capstan), passes. The capstan is the shaft that the string itself passes through. On the end of the capstan is a gear, sometimes called the pinion gear, and a screw/bolt holds that on to the end of the capstan. Then we have another shaft or pin with the tuner knob (or button) on the end of it. This pin has a gear on it too (in fact they are one part in most cases), and this particular gear is known as a worm gear. From now on I will just refer to this shaft as the worm gear.

As an aside, and for any non-engineer-minded people out there, the reason a worm gear is used is because turning the button/knob will rotate the worm gear, which will in turn rotate the pinion gear and the capstan, thus tightening or loosening the string, whereas no matter how much you tighten the string, the pinion gear cannot force the worm gear to turn. This is a really good way to keep strings in tune without making it really hard to turn the knob.

OK, back to the description of the tuner. There is one further feature that I have not yet mentioned and that is the retaining “claws” which are part of the main plate and hold the worm gear in place. The claws stop the worm gear from moving away from the pinion gear or falling away from the main plate. The plate stops the worm gear from falling against the guitar and the pinion gear stops it from falling out in the direction of the capstan. So hopefully you can see that the worm gear cannot possibly fall out unless the pinion gear is removed.

Now to the Gibson Deluxe Tuners (and why they suck).


As you can see, the tuner has the same components as any standard open-backed tuner, but please note one subtle difference – the claws stop the worm gear from moving away from, or towards the pinion gear (i.e. from side to side), but not from falling away from the main plate! Seriously, it can just fall right off.

“But wait!”, I hear you Gibson Deluxe Tuner fans shouting, “The Gibson Deluxe Tuners have a back cover which stops the worm gear from falling away from the main plate!”

Well, you are correct, but this leads me to the problem with my tuner... the back cover has fallen off. And this brings me to my second criticism of Gibson Deluxe Tuner design. You would think that, if the back cover was the only thing holding the worm gear in place, it would be held on in a way that would be very hard to move.
Let’s have a look at their design.


The back cover is held on with two little tabs (one of mine is slightly damaged, but this happened while I was trying to find a solution to keeping it in place. It originally fell off with the tabs intact). Now as an engineer, I would think that a tab should at least fold over to keep something in place, but these ones just go into slots and do not appear to be twisted, folded, or in any other way modified once they go through the slots. In other words they are held in by “interference fit” only, so that they can come out just as easily as they went in [edit: actually, this isn't 100% correct - please see the comments at the end of this post]. Now let’s think about what’s on the end of the worm gear. That’s right, a big knob/button that sticks out and is basically on the end of a lever. What do we often use levers for? Well, for prising things out of place for one. The longer the lever, the easier it is. So one accidental knock on the tuning knob and you can dislodge the back cover, letting the worm gear fall out of place.

In the course of trying to find a single replacement Gibson Deluxe Tuner (which, not surprisingly, cannot be bought separately), I have noticed many other people scrambling to buy single replacements off ebay or asking if anyone has a spare one on musicians’ forums. A full set is not cheap either; around £60 would not be unusual. I wouldn’t even mind paying that if I though it was a good strong design, but I think you can guess by my rantings how much I think of these things. Unfortunately replacing them with anything other than originals devalues the guitar, so there isn’t much choice.

Additionally, on the front face of the guitar head you need to use a bushing (also called a ferrule) which stops the capstan from rubbing on the wood of the guitar when it is being rotated, and whereas these are normally press-in bushings on tuners of similar design to Gibson Deluxe Tuners, on the actual Gibson ones, they are screw-in bushings. Now I have no complaints about this, design-wise, I’m just saying that there are very few replacements available other than the Gibson Deluxe Tuners.

Gibson Deluxe Tuner bushing (and washer)



Standard bushing


So stay tuned (no pun intended) for the next blog post, where I will try to fix mine.
Readmore → Gibson Deluxe Tuners and why they suck

Sunday, 5 February 2017

Current Controlled Boost LED Driver and Black Soldermasks


The MAX16834 is a neat little chip (it's not the only one, there are plenty of others out there) that allows high efficiency designs for LED string driving. It provides a platform for a Buck or Boost converter design, as well as brightness adjustment via analog/PWM input pins, as well as a fault output (in case of open/short circuits for example) and also diverse other functionalities that can be quite useful. [ ]



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Tuesday, 31 January 2017

Small and Super Inverter


Here is a small and super inverter circuit project. This circuit can be used to power a small strobe or fluorescent lamp. It will generate over 400 VDC from a 12 VDC, 2.5 A power supply or an auto or marine battery. While size, weight, and efficiency are nothing to write home about - in fact, they are quite pitiful - all components are readily available (even from Radio Shack) and construction is very straightforward. No custom coils or transformers are required. If wired correctly, it will work.

Output depends on input voltage. Adjust for your application. With the component values given, it will generate over 400 V from a 12 V supply and charge a 200 uF capacitor to 300 V in under 5 seconds.

Super Inverter Circuit Diagram:

Inverter Circuit Diagram


For your less intense applications, a fluorescent lamp can be powered directly from the secondary (without any other components). This works reasonably well with a F13-T5 or F15-T12 bulb (but don't expect super brightness). Q1 does get quite hot so use a good heat sink.

Notes:
  • Construction can take any convenient form - perf board, minibox, etc. Make sure the output connections are well insulated.
  • C1 must be nonpolarized type - not an electrolytic.
  • D1 provides a return path for the base drive and prevents significant reverse voltage on the B-E junction. Any 1 A or greater silicon diode should be fine.
  • C2 is shown as typical energy storage capacitor for strobe applications. Remove D2 and C2 for use with a fluorescent lamps.
  • D2 should be a high speed (fast recovery) rectifier. However, for testing, a 1N4007 should work well enough. R2 limits surge current through D2.
  • The polarity of the input with respect to the output leads is important. Select for maximum voltage by interchanging the black output wires.
  • Mount Q1 (2N3055) on a heat sink if continuous operation is desired. It will get warm. Other NPN power transistors with Vceo > 80 V, Ic > 2 A, and Hfe > 15 should work. For a PNP type, reverse the the polarities of the power supply and D1, and interchange one set of leads (where a diode is used for DC output).
  • Some experimentation with component values may improve performance for your application.
  • When testing, use a variable power supply so you get a feel for how much output voltage is produced for each input voltage. Component values are not critical but behavior under varying input/output voltage and load conditions will be affected by R1 and C1 (and the gain of your particular transistor).

WARNING:
Output is high voltage and dangerous even without large energy storage capacitor. With one, it can be lethal. Take appropriate precautions. 

Inverter Circuit Diagram



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Monday, 30 January 2017

Simple and Small Roulette


This is a simple and small roulette circuit, whilst the switch S1 the output by pin 1 of the IC1a the voltage is “shrill”,The oscillator circuit output IC2b, IC2c go to work.timer pulse generator fed to IC3, a voltage “high” output to the output pins 3, 11, and pin 12 of the IC3, the LED1-LED10 light trail sequence. Section LED11 extravaganza high - low tip.

Simple and Small Roulette Circuit Diagram

Roulette Circuit Diagram

The output of pin 3, 2, 4, 7, 10, of IC3 represented by high points,Output pins 1, 5, 6, 9, 11 in its place of the IC3 with the low points.The bonanza instead of the LED12.The IC1b, IC2a and IC2d in the role of controls. Resistor R2 and capacitor C1 determine the era of the output “shrill” output from pin 1 of the IC1a.

The capacitor C1 through R2. at what time you press the switch and the voltage dump across C1 pray regularly raise until the most level. It will reset the flip failure IC1a befall the output by pin 1 is “low”. And the oscillator output circuit to break off working, but in attendance are certain LED light are pending, it can exist with the aim of we put a stop to up being the LED. So fix not apprehension, it choice switch a little time.since, particular a instance full stop with the aim of the R2 and C1. The campaign are compulsory to keep a 6-volt power supply. If tainted is 9 volts, have to try in favor of security reasons.



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Friday, 27 January 2017

Communication between Mitsubishi FX3U PLC and SCADA via RS485BD


Hi Friends, Here i want share with you a tutorial on how to establish Communication between Mitsubishi FX3U PLC and Elipse SCADA via RS485 BD 


The required Items for the setup is as follows


Sr. no.
Material
1
PLC Type : FX Series
2
CPU      : FX3U
3
Module   : FX3U RS485BD
4
SCADA Make : Elipse
5
SCADA Type : 20/300/ Unlimited Tags
6
Other





Figure Connection between PC(SCADA) & PLC(FX3U)


 The required cables are as follows

 

Sr. no.
Item
Description
1
Medoc cable
(MITSU-CAB2A)
Prog. cable for FX PLC
2
Converter Cables
*1
Comm. Cable for PC ,PLC &
Converter

 *1 To connect the SCADA to the controller the RS 232 to RS 485 Converter  is used. The Converter is having RS422/485 port for connecting to PLC & RS232 port on other side for connection to PC.



As the FX-485BD Port is used, PLC parameter settings are required on PLC side.
PLC Parameter Configuration for Channel1:
1. Baud Rate: 9600.
2. Data Bits: 7 bits
3. Parity : Even
4. Stop Bit: 1 bit
5. Sum Check: Yes
6. Transmission Control: Without CR, LF
7. H/W Type: RS485
8. Station No.: 01
PLC Communication Parameter Settings using GX Developer:

PLC Communication Parameter Settings using GX Developer

 SCADA Program settings



 SCADA Driver Details:

 

Driver
MELSEC-A.dll
Version
1.02
Latest Update
2004.10.20
Driver Help
Melsec-A_US.pdf

 

Driver Setting Parameters:
P1: 1 (Comm. Port)
P2: 3721(Comm. Parameters: 9600 bps, 7 data bits, Even
Parity & 1 stop bit)
P3: 300 (Timeout in milliseconds)
P4: 10 (For RS485)
Other needed Configuration is done through “Extra  Configuration “Dialog as follows:



• Snap shot of Driver Settings in Elipse SCADA software
 

Step 1: Enter the Driver Parameters P1-P4.



Driver Parameters
Step 2: Click on “Extra” button to edit settings.



 Step3: In “Extra” menu select “Protocol” option to edit Protocol  Settings.


“Protocol” option

 Tag Addressing Parameters:
 

The Tags are generated by using N1-N4 parameter settings as follows:
 

N1: Station Number (e.g.: 1)

N2: CPU Number (normally 255)

N3: Variable Type (e.g.: 14 for D Register)

N4: Variable Address (e.g.:10 for D10 Register)

Scan: User Defined
 

• Snap shot of Tag Addressing Parameters in Software
 
Tag Addressing Parameters

If you like the this Tutorial on PLC please Share this.
 

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Saturday, 7 January 2017

Using the high low side driver IR2110 explanation and plenty of example circuits



In many situations, we need to use MOSFETs configured as high-side switches. Many a times we need to use MOSFETs configured as high-side and low-side switches. Such as in bridge circuits. In half-bridge circuits, we have 1 high-side MOSFET and 1 low-side MOSFET. In full-bridge circuits we have 2 high-side MOSFETs and 2 low-side MOSFETs. In such situations, there is a need to use high-side drive circuitry alongside low-side drive circuitry. The most common way of driving MOSFETs in such cases is to use high-low side MOSFET drivers. Undoubtedly, the most popular such driver chip is the IR2110. And in this article/tutorial, I will talk about the IR2110.

You can download the IR2110 datasheet from the IR website. Here's the download link:
www.irf.com/product-info/datasheets/data/ir2110.pdf

First let’s take a look at the block diagram and the pin assignments and pin definitions (also called lead assignments and lead definitions):


Fig. 1 - IR2110 block diagram (click on image to enlarge)




 Fig. 2 - IR2110 Pin/Lead Assignments (click on image to enlarge)


Fig. 3 - IR2110 Pin/Lead Definitions (click on image to enlarge)



Notice that the IR2110 comes in two packages – 14 pin through-hole PDIP package and the 16-pin surface mount SOIC package.

Now let's talk about the different pins.

VCC is the low-side supply and should be between 10V and 20V. VDD is the logic supply to the IR2110. It can be between +3V to +20V (with reference to VSS). The actual voltage you choose to use depends on the voltage level of your input signals. Here’s the chart:


Fig. 4 - IR2110 Logic "1" Input Threshold vs VDD (click on image to enlarge)


It is common practice to use VDD = +5V. When VDD = +5V, the logic 1 input threshold is slightly higher than 3V. Thus when VDD = +5V, the IR2110 can be used to drive loads when input “1” is higher than 3 point something volts. This means that it can be used for almost all circuits, since most circuits tend to have around 5V outputs. When you’re using microcontrollers the output voltage will be higher than 4V (when the microcontroller has VDD = +5V, which is quite common). When you’re using SG3525 or TL494 or other PWM controller, you are probably going to have them powered off greater than 10V, meaning the outputs will be higher than 8V when high. So, the IR2110 can be easily used.

You may lower the VDD down to about 4V if you’re using a microcontroller or any chip that gives output of 3.3V (eg dsPIC33). While designing circuits with the IR2110, I had noticed that sometimes the circuit didn’t work properly when IR2110 VDD was selected as less than +4V. So, I do not recommend using VDD less than +4V.

In most of my circuits, I do not have signal levels which have voltages less than 4V as high and so I use VDD = +5V.

If for some reason, you have signals levels with logic “1” having lower than 3V, you will need a level converter / translator that will boost the voltage to acceptable limits. In such situations, I recommend boosting up to 4V or 5V and using IR2110 VDD = +5V.

Now let’s talk about VSS and COM. VSS is the logic supply ground. COM is “low side return” – basically, low side drive ground connection. It seems that they are independent and you might think you could perhaps isolate the drive outputs and drive signals. However, you’d be wrong. While they are not internally connected, IR2110 is a non-isolated driver, meaning that VSS and COM should both be connected to ground.

HIN and LIN are the logic inputs. A high signal to HIN means that you want to drive the high-side MOSFET, meaning a high output is provided on HO. A low signal to HIN means that you want to turn off the high-side MOSFET, meaning a low output is provided on HO. The output to HO – high or low – is not with respect to ground, but with respect to VS. We will soon see how a bootstrap circuitry (diode + capacitor) – utilizing VCC, VB and VS – is used to provide the floating supply to drive the MOSFET. VS is the high side floating supply return. When high, the level on HO is equal to the level on VB, with respect to VS. When low, the level on HO is equal to VS, with respect to VS, effectively zero.

A high signal to LIN means that you want to drive the low-side MOSFET, meaning a high output is provided on LO. A low signal to LIN means that you want to turn off the low-side MOSFET, meaning a low output is provided on LO. The output on LO is with respect to ground. When high, the level on LO is equal to the level of VCC, with respect to VSS, effectively ground. When low, the level on LO is equal to the level on VSS, with respect to VSS, effectively zero.

SD is used as shutdown control. When this pin is low, IR2110 is enabled – shutdown function is disabled. When this pin is high, the outputs are turned off, disabling the IR2110 drive.
Now let’s take a look at the common IR2110 configuration for driving MOSFETs in both high and low side configurations – a half bridge stage.

 Fig. 5 - Basic IR2110 circuit for driving half-bridge (click on image to enlarge)


D1, C1 and C2 along with the IR2110 form the bootstrap circuitry. When LIN = 1 and Q2 is on, C1 and C2 get charged to the level on VB, which is one diode drop below +VCC. When LIN = 0 and HIN = 1, this charge on the C1 and C2 is used to add the extra voltage – VB in this case – above the source level of Q1 to drive the Q1 in high-side configuration. A large enough capacitance must be chosen for C1 so that it can supply the charge required to keep Q1 on for all the time. C1 must also not be too large that charging is too slow and the voltage level does not rise sufficiently to keep the MOSFET on. The higher the on time, the higher the required capacitance. Thus, the lower the frequency, the higher the required capacitance for C1. The higher the duty cycle, the higher the required capacitance for C1. Yes, there are formulae available for calculating the capacitance. However, there are many parameters involved, some of which we may not know – for example, the capacitor leakage current. So, I just estimate the required capacitance. For low frequencies such as 50Hz, I use between 47µF and 68µF capacitance. For high frequencies like 30kHz to 50kHz, I use between 4.7µF and 22µF. Since we’re using an electrolytic capacitor, a ceramic capacitor should be used in parallel with this capacitor. The ceramic capacitor is not required if the bootstrap capacitor is tantalum.

D2 and D3 discharge the gate capacitances of the MOSFET quickly, bypassing the gate resistors, reducing the turn off time. R1 and R2 are the gate current-limiting resistors.

+MOSV can be up to a maximum of 500V.

+VCC should be from a clean supply. You should use filter capacitors and decoupling capacitors from +VCC to ground for filtering.

Now let’s look at a few example application circuits of the IR2110.

 Fig. 6 - IR2110 circuit for high-voltage half-bridge drive (click on image to enlarge)


 Fig. 7 - IR2110 circuit for high-voltage full-bridge drive with independent switch control (click on image to enlarge)



In Fig. 7 we see the IR2110 being used to drive a full bridge. The functionality is simple and you should understand it by now. A common thing that is often done is that, HIN1 is tied/shorted to LIN2 and HIN2 is tied/shorted to LIN1, enabling the control of all 4 MOSFETs from 2 signal inputs, instead of 4 as shown below in Fig. 8.


 Fig. 8 - IR2110 circuit for high-voltage full-bridge drive with tied switch control - control with 2 input signals (click on image to enlarge)



 Fig. 9 - Using the IR2110 as a single high-voltage high-side driver (click on image to enlarge)



In Fig. 9 we see the IR2110 being used as a single high-side driver. The circuit is simple enough and follows the same functionality described above. One thing to remember is that, since there is no low-side switch, there must a load connected from OUT to ground. Otherwise the bootstrap capacitors can not charge.


 Fig. 10 - Using the IR2110 as a single low-side driver (click on image to enlarge)



 Fig. 11 - Using the IR2110 as a dual low-side driver (click on image to enlarge)


--------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------

If you've had failures with IR2110 and had driver after driver, MOSFET after MOSFET get damaged, burn and fail, I'm pretty sure that it's due to you not using gate-to-source resistors, assuming of course that you designed the IR2110 driver stage properly. NEVER OMIT THE GATE-TO-SOURCE RESISTORS. If you're curious, you can read about my experience with them here (I have also explained the reason that the resistors prevent damage):

http://www.blogspot.com/2016/10/magic-of-knowledge.html

For further reading, you should go through this:

http://www.irf.com/technical-info/appnotes/an-978.pdf

I have seen in many forums that people struggle with designing circuits with IR2110. I too had a lot of difficulty before I could confidently and consistently build successful driver circuits with IR2110. I have tried to explain the application and use of IR2110 thoroughly through explanation and plenty of examples and hope that it helps you in your endeavors with IR2110.

Readmore → Using the high low side driver IR2110 explanation and plenty of example circuits

Faster Battery Charger Circuit 6 12 Volt with IC LM308 and LM317



This circuit is quickly charging the battery  . If you need a faster charger ,this circuit is recomended to you . And this charger is low temperature , the temperatur is 5 degree celcius. Input Voltage is 15 Volt DC , and Output voltage to charging 6 -12V and you can adjust by the D1 (see schematic). And adjust the D1 to 50 mV greater VZ than D2 (see schematic). Couple the D2 to battery.  This circuit operating by IC LM308 and LM317 and any other components. And you can use this circuit to charging Accu 6 or 12 Volt , dry or wet and other battery .

See this Schematic Circuit below :



Readmore → Faster Battery Charger Circuit 6 12 Volt with IC LM308 and LM317

Thursday, 5 January 2017

Current Controlled Boost LED Driver and Black Soldermasks


The MAX16834 is a neat little chip (it's not the only one, there are plenty of others out there) that allows high efficiency designs for LED string driving. It provides a platform for a Buck or Boost converter design, as well as brightness adjustment via analog/PWM input pins, as well as a fault output (in case of open/short circuits for example) and also diverse other functionalities that can be quite useful.



Readmore → Current Controlled Boost LED Driver and Black Soldermasks

Sunday, 1 January 2017

Low Cost and Low Voltage Flasher


This is Simple low-Cost Electronic Circuit of Low voltage flasher Circuit. Applying voltage to the circuit triggers SCR1. With SCRl on, the voltage on the anode of SCR2 rises until SCR2 triggers to commu-tate SCRl.

Low Voltage Flasher Circuit Diagram:

Circuit Diagram
 
The voltage on the gate of SCRl will swing negative at this time, and only after a positive potential of 0 volt is once again attained, will SCRl retrigger The circuit could be used for higher voltage levels, but the peak negative voltage on the gate of SCRl must be limited to less than 6 volts.



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Thursday, 8 December 2016

Gain and Volume Adjustment for Balance Input



Gain and Volume Adjustment for Balance Input












The circuit was designed to create a balance input device that would provide an adjustment of gain and volume while having a symmetrical electronic input.
* NE5532 – an internally compensated low noise dual operational amplifier with features such as full power bandwidth up to 140 KHz, input noise voltage of 8 nV, common mode rejection ratio, 9 V/us slew rate, high DC voltage gain, 32 V peak to peak voltage swing, wide supply voltage range from 3 V to 12 V, unity gain bandwidth at 10 MHz, and internal frequency compensation
* TL072 – a low noise JFET input operational amplifier with features such as common-mode input voltage range, high slew rate, operation without latch up, compensated internal frequency, high input impedance at the JFET input stage, low noise, low total harmonic distortion, protected from output short circuit, low input bias and offset currents, wide common-mode and differential voltage ranges, and low power consumption

The operation of the circuit includes the adjustment of the gain with the use of 10K ohms potentiometer RV1 while the level of the signal or the volume is regulated with the 47K ohms potentiometer RV2. In order to prevent unwanted noises from being absorbed during the regulation of gain, the potentiometer RV1 should be of good quality. Alternatively, the potentiometers can be replaced by other material like a set of resistors that requires enough testing and adjustment to meet the desired output.

The integrated circuits used is not necessarily the compulsory to use because other types of models can also be chosen for as long as they possess similar characteristics as what is recommended in this circuit like low noise, low distortion, and other convincing factors. From the values involved in the circuit, the resistance is approximately 2K ohms. This amount is sufficient for low level of signal to be amplified like the one coming from a microphone. An attenuation of signals occurs during the presence of high level signals. In this case, the adjustment of gain with the operation of RV1 is at its boundaries where the resistance decreases for the two input section.


Gain and Volume Adjustment for Balance Input


The basic concept of the balance input with gain and volume circuit may be applied in the use of preamplifier where some advanced designs are coming with remote control that has volume control, input select and mute functions. They are mainly used in home theater systems to provide quality sounds since they are able to adjust the gain and the volume of the output.

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