Saturday, February 8, 2014

Solid State Relay Circuit Diagram

Solid State Relay Circuit
Solid state relay is a series that functions like a relay hibryd mechanics. Solid state relays is built with insulating an MOC for separate the input and the switch. With Solid state relays we can avoid the occurrence of sparks as it did in the relay can also avoid the occurrence of conventional connection is not perfect because porous contactor as in conventional relays.


The series of solid state relays This is quite simple and we can make in a PCB hole. For more details can be seen in the picture following a series of solid state relays.

Solid State Relay Circuit
Solid State Relay Circuit Diagram

Solid state relay has many advantages including no mechanical friction on the contactor, the connection process only occur when there are crosses zero, there is no spark at the contactor, not noisy, small konsusi flow control, better endurance.
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USB Converter Schematic Diagram

Does this sound familiar: you buy a small piece of equipment, such as a programming & debugging interface for a microcontroller, and you have to use a clunky AC wall adapter to supply it with power? It’s even worse when you’re travelling and there’s no mains socket anywhere in sight. Of course, you can use the USB bus directly as a power source if the supply voltage is 5 V. If you need a higher voltage, you can use the USB converter described here. This small switch-mode step-up converter can generate an output voltage of up to 15 V with a maximum output current of 150 mA.
USB Converter
The LM3578 is a general-purpose switchmode voltage converter. Figure 1 shows its internal block diagram. Here we use it as a step-up converter. The circuit diagram in Figure 2 shows the necessary components. Voltage conversion is achieved by switching on the internal transistor until it is switched off by the comparator or the current-limiting circuit. The collector current flows through coil L1, which stores energy in the form of a magnetic field. When the internal transistor is switched off, the current continues flowing through L1 to the load via diode D1. However, the voltage across the coil reverses when this happens, so it is added to the input voltage. The resulting output voltage thus consists of the sum of the input voltage and the induced voltage across the coil.

USB Converter Circuit
The output voltage depends on the load current and the duty cycle of the internal transistor. Voltage divider R5/R6 feeds back a portion of the output voltage to the comparator in the IC in order to regulate the output voltage. C5 determines the clock frequency, which is approximately 55 kHz. Network R4, C2 and C3 provides loop compensation. The current-sense resistor for the current-limiting circuit is formed by three 1-Ω resistors in parallel (R1, R2 and R3), since SMD resistors with values less than 1 Ω are hard to find. The output voltage ripple is determined by the values and internal resistances of capacitors C11, C8, C7 and C6.
  USB Converter Circuit Diagram

The total effective resistance is reduced by using several capacitors, and this also keeps the construction height of the board low. L2, C1, C9 and C10 act as an input filter. Ensure that the DC resistance of coil L2 is no more than 0.5 Ω. Use a Type B PCB-mount USB connector for connection to the USB bus.  A terminal strip with a pitch of 5.08 mm can be used for the output voltage connector. Of course, you can also solder a cable directly to the board. Two additional holes are provided in the circuit board for this purpose. As we haven’t been able to invent a device that produces more energy than it consumes, you should bear in mind that the input current of the circuit is higher than the output current. As a general rule, you can assume that the input current is equal to the product of the output current and the output voltage divided by the input R5 and R6 for other output voltages:
6V: R5 = 47k, R6 = 9,1k
12V: R5 = 110k, R6 = 10k
15V: R5 = 130k, R6 = 9,1k
voltage and divided again by 0.8. Specifically, with an output current of 100 mA at 9 V, the input current on the USB bus is approximately 225 mA. Finally, Figure 3 shows a small PCB layout for the circuit. All of the components except the connector and the terminal strip are SMDs.
USB Converter pcb
Parts List:
(for UO = 9 V)
Resistors
R1,R2,R3 = 1Ω
R4 = 220kΩ
R5 = 82kΩ
R6 = 10kΩ
Capacitors
(SMD 1206)
C1 = 100nF
C2 = 2nF2
C3 = 22pF
C4 = 100nF
C5 = 1nF5
(tantalum SMD 7343)
C6 = 68μF 20V
C7 = 68μF 20V
C8 = 68μF 20V
C9 = 47μF 16V
C10 = 47μF 16V
C11 = 68μF 20V
Inductors
L1 = 820μH (SMD CD105)
L2 = 47μH (SMD 2220)
Semiconductors
D1 = SK34SMD (Schottky)
IC1 = LM3578AM (SMD SO8)
Miscellaneous
K1 = 2-way PCB terminal block, lead pitch 5mm
(optional)
K2 = USB-B connector

http://www.ecircuitslab.com/2011/07/usb-converter.html
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Friday, February 7, 2014

Wiring Diagram Protection For Telephone Line

A
long time ago when telephones were so simple almost nothing could go
amiss from an electrical point of view, Telecom operators installed
surge protection on all telephone lines exposed to storm risks.
Paradoxically, now that we are hooking up delicate and expensive
equipment such as telephones filled with electronics, fax machines,
(A)DSL modems, etc., this protection has disappeared.

However, if
you have the good fortune to live in the countryside in a building
served by overhead telephone lines, there’s an obvious risk of very high
voltages being induced on the lines during thunderstorms. While we
have lost count today of all of the modems, fax machines and other
telephones that have been destroyed by a ‘bolt of lightning’,
surprisingly you only have to invest a few pounds to get a remarkably
efficient protection device like the one we are proposing here.

During
a storm, often with lightning striking near a telephone line, the line
carries transient voltages up to several thousands of volts. Contrary
to the HV section of television sets or electrical fences, on which
practically no current is running, in the case of lighting striking
current surges of thousand of amps are not uncommon. To protect oneself
from such destructive pulses, traditional components are not powerful
or fast enough.

As you can see on our drawing, a (gas-filled)
spark gap should be used. Such a component contains three electrodes,
insulated from each other, in an airtight cylinder filled with rare gas.
As long as the voltage present between the electrodes is below a
certain threshold, the spark gap remains perfectly passive and presents
an impedance of several hundreds of MW. On the other hand, when the
voltage rises above this threshold, the gas is very rapidly ionized and
the spark-gap suddenly becomes a full conductor to the point of being
able to absorb colossal currents without being destroyed.


telephone line protector circuit schematic

The
one we are using here, whose size is of the same magnitude as an
ordinary one watt resistor, can absorb a standardized 5,000 amps pulse
lasting 8/20 ms! Since we are utilizing a three-electrode spark gap, the
voltage between the two wires of the line or between any wire and
ground, cannot exceed the sparking voltage, which is about 250 volts
here. Such protection could theoretically suffice but we preferred to
add a second security device made with a VDR (GeMOV or SiOV depending on
the manufacturer), which also limits the voltage between line wires to
a maximum of 250 volts.

Even if this value seems high to you,
we should remember that all of the authorized telephone equipment,
carrying the CE mark must be able to withstand it without damage. This
is not always the case however with some low-end devices made in China,
but that’s an entirely different problem. Since pulses generated by
lightning are very brief, the ground connection of our assembly must be
as low-inductance as possible.

It must therefore be short, and
composed of heavy-duty wire (1.5 mm2 c.s.a. is the minimum). If not, the
coil, composed of the ground connection, blocks the high frequency
signal that constitutes the pulse and reduces the assembly’s
effectiveness to nothing. Finally, please note that this device
obviously has no effect on the low frequency signals of telephones and
fax machines and it does not disturb (A)DSL signals either.
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Simple Oscillator Pipe Locator

Sometimes the need arises to construct a really simple oscillator. This could hardly be simpler than the circuit shown here, which uses just three components, and offers five separate octaves, beginning around Middle C (Stage 14). Octave # 5 is missing, due to the famous (or infamous) missing Stage 11 of the 4060B IC. We might call this a Colpitts ‘L’ oscillator, without the ‘C’. Due to the reactance of the 100-µH inductor and the propagation delay of the internal oscillator, oscillation is set up around 5 MHz. When this is divided down, Stage 14 approaches the frequency of Middle C (Middle C = 261.626 Hz).


Stages 13, 12, 10, and 9 provide higher octaves, with Stages 8 to 4 being in the region of ultrasound. If the oscillator’s output is taken to the aerial of a Medium Wave Radio, L1 may serve as the search coil of a Pipe Locator, with a range of about 50 mm. This is tuned by finding a suitable heterodyne (beat note) on the medium wave band. In that case, piezo sounder Bz1 is omitted. The Simple Oscillator / Pipe Locator draws around 7mA from a 9-12 V DC source.
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Small Power Amplifier with IC TDA1908

Schematic circuit power amplifier TDA1908 , or you can use IC TDA1908A . The circuit simple and easy to make the line PCB. See circuit and technical instruction below : 

The circuit above can use to the 5.1 surround sound circuit , but you have made 6 circuit and to combine to 1 .  And suitable made to center speakers.
Technical information :
Minimum require voltage :  6 Volts
Maximum require coltage :  30 Volts
Maximum Power output   :  16 Watts
Minimum Power output    :   4  Watts
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Alternating ON OFF Control

Use this circuit instead of a standard on-off switch. Switching is very gentle. Connect unused input pins
to an appropriate logic level. Unused output pins *MUST* be left open!. First push switches ON,
another push switches OFF. You can use 1/4 watt resistors if they are metal-film type. Any proper
substitute will work for Q1, including the european TUNs. For C2, if you find the relay acts not fast
enough, leave it out or change to a ceramic cap between 10 and 100nF.

Parts List
All resistors are 1/2 Watt and 5% tolerance.
R1 = 10K
R2 = 100K
R3 = 10K
C1 = 0.1µF, Ceramic
C2 = 1µF/16V, Electrolytic
D1= 1N4001
Q1 = 2N4401 (ECG123AP, NTE123AP, etc.)
IC1 = 4069, CMOS, Hex Inverter (14069), or equivalent
S1 = Momentary on-switch

Copyright © Tony van Roon
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Call Bell with Welcome Indication

Here is a simple call bell circuit that displays a welcome message when somebody presses the call bell switch momentarily. the alphanumeric display can be fitted near the call bell switch. the circuit is built around two 555 ICs (IC1 and IC2), seven KLA511 common-anode alphanumeric displays (DIS1 through DIS7) and a few discrete components. For easy understanding,  the entire circuit can be divided into  two sections: controller and display. the controller section is built around  IC1 and IC2, while the display section is built around alphanumeric displays (DIS1 through DIS7). 

As shown in the circuit, both IC1 and IC2 are wired as monostable  multivibrators having time periods of around 5 seconds and 2 minutes, respectively. You can change the time period of IC1 by changing the values of resistor R12 and capacitor  C3. Similarly, the time period of IC2  can be changed by changing the values of resistor R2 and capacitor C1. Alphanumeric displays DIS1 through DIS7 are wired such that they show ‘WELCOME’ when the output of IC2  goes high. the circuit is powered by a 6V battery. Else, you can use the 6V, 300mA power adaptor that is readily available in the market. the 6V battery or power adaptor provides regulated 6V required to operate the circuit. 

Circuit diagram :
Call Bell with Welcome Indication-Circuit Diagram
Call Bell with Welcome Indication Circuit Diagram
 
A 6V DC socket is used in the circuit to connect the output of the adaptor if you don’t use the battery. Working of the circuit is simple. First, power-on the circuit using switch S2. LED1 glows to indicate presence of power supply in the circuit. Now if you press call bell switch S1  momentarily, it triggers  both the timers (IC1 and  IC2) simultaneously. IC1 produces a high output at its pin 3 for about five seconds. transistor t2 conducts and piezobuzzer PZ1 sounds for about five seconds indicating that there is  somebody at the door. At the same time, IC2  too produces a high out-put at its pin 3 for about two minutes. transistor  t1 conducts to enable the alphanumeric displays. the word ‘WEL-COME’ is displayed  for about two minutes  as DIS1 through DIS7  ground via transistor T1.

If switch S1 is pressed again within these two minutes, piezobuzzer PZ1 again  sounds for five seconds and the display continues to show ‘WEL-COME’. Assemble the complete circuit on a general purpose PCB and house in a small cabinet with call bell switch S1 and LED1 mounted on the front panel. At the rear side of the cabinet, connect a DC socket for the adaptor. Install the complete unit (along with the display) at the entrance of your house. Connect the 6V battery or 6V adaptor for powering the circuit. Configure switch 2 (used to enable/disable the call bell) in a switch board at a suitable location inside your house. If you don’t use a battery, connect the power adaptor to the DC socket on the rear of the cabinet. Close switch S2 only when you want to activate the circuit with  battery. Otherwise, keep it open when the 6V adaptor is in use.
EFY note. 
1. To avoid any shorting  during rain, waterproof the entire circuit assembly including alphanumeric displays (installed at the entrance) by covering it properly.
2.  the complete kit for this circuit is available with EFY associates  kits’n’spares. 

Author : S.C. Dwivedi - Copyright : EFY
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