Showing posts with label video. Show all posts
Showing posts with label video. Show all posts

Friday, October 17, 2014

Video Line Driver

This circuit is a video line driver specifically intended for use with a single-ended power supply. As a matter of fact, the synchronised outputs of a line driver for composite-video signals go negative with respect to ground. In order to be able to process these negative signals in a circuit powered from a single-ended supply, it is necessary to AC-couple the input of the opamp as well as level-shift the signal in the positive direction.
Circuit diagram :
Video Line Driver-Circuit Diagram
Video Line Driver Circuit Diagram

The input is terminated into a 75 Ω resistor (R1). From here, the signal passes through AC-coupling capacitor C2 and is applied to potential divider R2-R3, which provides the necessary DC-offset. The shift into the positive direction amounts to +1.7 V, with the values shown in the schematic. To avoid any misunderstandings we should add that this value is fairly critical. Deviating from the values shown can lead to distortion in the complementary input stage of the opamp that has been used here, and this of course, has to be avoided.
PCB-Layout :
PCB-LAOUT
Video Line Driver PCB-Layout
Because we provided the circuit with its own voltage regulator circuit (IC2), just about any mains adapter will suffice for the power supply. The current consumption is less than 20 mA. The construction of the line driver using the accompanying printed circuit board layout is no more than a simple, routine job.
Parts List :
Resistors:
R1,R7 = 75Ω
R2...R4 = 4kΩ7
R5,R6 = 1kΩ
Capacitors:
C1,C4,C5,C7C10,C12 =
100nF
C2 = 47µF 16V radial
C3,C11 = 10µF 6 V radial
C6 = 220µF 6 V radial
C8 = 1000 µF 6V radial
C9 = 100µF 16V radial
Semiconductors:
D1 = 1N4001
IC1 = OPA353UA
IC2 = 78L05
Miscellaneous:
PC1-PC6 = PCB solder pin
Case, e.g., Hammond type
1590A
Copyright : Elektor
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Monday, October 13, 2014

Motorized Video Camera Mount circuit description and parts

Introduction

This article describes a motorized, waterproof mount for a miniature video camera. If a suitable waterproof camera is used, this unit can be used outdoors.

Theory

The camera rotator circuit uses a 2716 EPROM to store a table of logic values that control the motor driver (H-bridge) circuit. The EPROM data is shown in the schematic. By using the EPROM, a large number of discrete gates are eliminated. The logic table is designed to allow the motor to turn clockwise until the clockwise limit sensor is activated. The same operation happens with counter clockwise rotation and the counter clockwise limit sensor.

Inputs to the EPROM come from the limit sensors and the two control switch directions. Outputs go to the four H-bridge transistor gates. The control switch signals are buffered through the 7400 quad NAND gate, this allows for a long control wire. All of the input values are active in the low state.

The H-bridge array consists of two N-channel MOSFETs and two P-channel MOSFETs. Diagonal pairs of transistors are turned on to move the motor one way or the other. If all of the transistors are off, the motor does not move. Note that the P channel transistors turn on with a 0 logic output level and the N channel transistors turn on with a 1 logic output level.

There are several disallowed output states, if three or four transistors were to be turned on, the transistors would go up in smoke. Dont do this. If the EPROM is programmed correctly, this should never happen.

The voltage regulator produces 5 volts for running the logic ICs and the motor. A better H-bridge driver circuit (or IC) could be used if higher motor currents are needed, this one was sufficient, simple to build, and easy to find parts for

.

Note that a much simpler version of this circuit could be made by using a cross-wired center off DPDT direction switch and mechanical limit sensor switches in series with the motor power wires and with diodes across the switches. This circuit has fewer moving parts, and the sensors can fit into a smaller space than switches. The all solid state design should also last longer.

Specifications

  • Degrees of rotation: 350 (depending on hall effect sensor locations)
  • Operating Voltage: 12V D.C.
  • Operating Current: approx. 500ma when rotating and 30ma idle.
  • Remote Control Interface: 4 wire shielded cable
  • Height: 16 inches
  • Width: 2-1/4 inches

Electrical Construction

There are two circuit boards in this project, both were hand-wired. The main board houses the logic circuitry and the motor H-driver VMOS FET array. It was constructed on a solderable bread-board.

The hall effect sensor array was built on a piece of copper PC board. The board was cut to a C shape and holes were drilled in the ends so that the board could be screwed to the motor mount tabs. The two hall effect sensors were glued to the PC board with epoxy glue. Be sure to secure the wire coming from the sensor board with some form of strain relief. Plastic wire ties are suitable for this job.

Both sensors are located an equal distance from the center of the motor shaft. Other sensor board components were hand-wired to the sensors. The sensor board can be seen in the photo, it is mounted on the top of the motor where the shaft exits the motor case. The D-shaped aluminum block has a small, but powerful magnet glued to the side that passes directly over the hall effect sensors. The magnets pass within about 1/8 inch over the sensors.

Mechanical Construction

This project involves a fair amount of mechanical work. The tube that holds the camera, electronics, and motor was fabricated with Schedule 40 ABS black pipe. The longer portion (top) of the pipe is stationary, and should be secured to an external mount with hose clamps or other mounts. The top portion consists of a cap on top, a long tube with room for the motor and logic board, and an ABS pipe sleeve. Glue the sleeve to the bottom of the long pipe. Dont get any glue on the bottom half of the sleeve. The top cap can be connected to the upper pipe by drilling a small hole through the cap pipe, and installing a small stainless steel screw. A small hole is drilled through the upper pipe, this allows the video camera and motor control wires to exit the assembly. When the assembly is complete, seal the wires where they exit with Silicone caulk.

The small, lower portion of the pipe houses the video camera. The top inch of the lower portion should be evenly filed around the outside so that it can be fitted easily into the top portions sleeve. Keep filing until the lower portion of the pipe spins easily in the sleeve. A hole needs to be cut in the lower portion to house the camera. This can be done by drilling small holes, then filing the opening until the camera fits snugly. The hole should be large enough to allow the camera to be adjusted up and down. I secured my camera in the lower assembly with blue packing foam. A pipe cap covers the bottom of the lower assembly.

The cameras wire should pass through the inside of the tube, put a few loops of extra wire on the camera side. It is important to verify that the wire does not get hung up on any objects in its path.

Water flow should be considered, if the assembly is built correctly, it should be able to withstand blowing rain without getting the electronics wet. A small hole should be drilled in the lower pipe cap to allow any moisture that condenses inside to escape.

Several metal pieces need to be fabricated. A small bracket is needed to connect the motor mount to the side of the upper tube. The size of the bracket depends on the motor that is used. The motor shaft should be exactly centered in the tube when the mount is complete.

The shaft mount piece is a D-shaped chunk of aluminum, a hole was drilled to fit the motor shaft, a side hole was drilled and tapped to hold a set-screw for securing the mount to the shaft. Two mount holes were drilled and tapped into the mount, screws pass through the lower pipe into the mount. The magnet is glued to the bottom of the shaft mount, it should pass right over the hall effect sensors. Test the magnet on the hall effect sensors before gluing them in place, the sensors only respond to one side (pole) of the magnet.

Alignment

Make sure that the camera wire does not get hung up on the insides of the camera, this is achieved by adjusting the length so that the wire has some slack when it is at either extreme of the movement. It is advisable to round any sharp edges that are in the area where the video wire rotates.

The hall effect sensors should be checked out, make sure that the magnet changes the logic state on both sensor outputs when it passes over them.

Use

Turn the switch to CCW, the camera should rotate couter clockwise until the limit is sensed. Turn the switch to CW, the camera should rotate clockwise until the other limit is reached. Turn the switch off, the camera should stand still.

Parts

This project was built with surplus parts. The motor is a 12 Volt gear reduction unit made by Globe. The electronic components can be found at Digi Key (1-800-DIGI-KEY).
The camera is a model GM300K-N from Resources Unlimited.
readmore at: http://english.cxem.net/rf/rf30.php
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Thursday, September 18, 2014

Camera Video Amplifier Circuit Transistorized

There are occasions  when you want to view your video clips taken in your digital camera on  your TV.You can do so by interfacing the camera video output to video input of your TV.But this times you cant connect directly as it needs some amplification before the signal reaches from camera to television


The video amplifier schematic circuit shown in the figure is a simple PAL video amp, expected to have a 3db bandwidth of 5.5MHz. You can connect your camera to TV through this circuit. So this is a low level transistorized video amplifier stage that accepts 1V (p-p) and outputs 2V(p-p) signal. 

Notes The circuit requires a 5V dc power supply


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Saturday, September 13, 2014

Simple 4 Channel Video Amplifier using NJM2582

A very simple 4 channel video amplifier electronic schema project can be designed using NJM2582 ic suitable for video applications with SCART connector . Design of the schema is very simple and require few external electronic parts .

Circuit diagram :

Simple 4 Channel Video Amplifier Circuit Diagram

Some features of the NJM2582 are : Operating Voltage ±5V, +5V, +11V ; 6input 4output , 2input 1output Video SW , Internal LPF , 6dB Amplifier , Internal 75Ω Driver Circuit , DC output for SCART (FUNCTION SW, BLANKING) .

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Saturday, August 30, 2014

The Audio Video Distribution Amplifier

With the amount of equipment in home entertainment centers today the need to be able to vary the gain of the audio or video signal is needed. I found this particular schema helpful when used in conjunction with the Universal Descrambler and a Stabilizer schema I built for making copies of video tapes. It not only allowed me the ability to fine tune the video strength it also helped me increase the recorded audio which typically becomes poor when making tape copies. Circuit operation is straight forward for amplifier diagram. The second channel for the audio amplifier is made up of the same components except the other half of IC1 is used. Pin 6 & 5 are inputs and 7 is the output.

Circuit Diagram
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