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Showing posts with label high. Show all posts
Showing posts with label high. Show all posts

Monday, December 23, 2013

12KV High Voltage Generator

The hobby circuit below uses an unusual method to generate about 12,000 volts with about 5uA of current. Two SCRs form two pulse generator circuits. The two SCRs discharge a 0.047uF a 400v capacitor through a xenon lamp trigger coil at 120 times a second. The high voltage pulses produced at the secondary of the trigger coil are rectified using two 6KV damper diodes.

Circuit Project:12KV High Voltage Generator

The voltage doubler circuit at the secondary of the trigger coil charges up two high voltage disc capacitors up to about 12KV. Although this circuit can’t produce a lot of current be very careful with it. A 12KV spark can jump about 0.75 of an inch so the electronic circuit needs to be carefully wired with lots of space between components.
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Tuesday, September 3, 2013

4A High Speed Low Side Gate Driver

The UCC27518 and UCC27519 single-channel, high-speed, low-side gate driver device is capable of effectively driving MOSFET and IGBT power switches. Using a design that inherently minimizes shoot-through current, UCC27518 and UCC27519 are capable of sourcing and sinking high, peak-current pulses into capacitive loads offering rail-to-rail drive capability and extremely small propagation delay typically 17 ns.

The UCC27518 and UCC27519 provide 4-A source, 4-A sink (symmetrical drive) peak-drive current capability at VDD = 12 V. The UCC27518 and UCC27519 are designed to operate over a wide VDD range of 4.5 V to 18 V and wide temperature range of -40°C to 140°C. Internal Under Voltage Lockout (UVLO) circuitry on VDD pin holds output low outside VDD operating range.

4A High-Speed Low-Side Gate Driver Circuit diagram:



Features:

  •     Low-Cost, Gate-Driver Device Offering Superior Replacement of NPN and PNP Discrete Solutions
  •     Pin-to-Pin Compatible With TI’s TPS2828 and the TPS2829
  •     4-A Peak Source and 4-A Peak Sink Symmetrical Drive
  •     Fast Propagation Delays (17-ns typical)
  •     Fast Rise and Fall Times (8-ns and 7-ns typical)
  •     4.5-V to 18-V Single Supply Range
  •     Outputs Held Low During VDD UVLO (ensures glitch free operation at power-up and power-down)
  •     CMOS Input Logic Threshold (function of supply voltage with hysteresis)
  •     Hysteretic Logic Thresholds for High Noise Immunity
  •     EN Pin for Enable Function (allowed to be no connect)
  •     Output Held Low when Input Pins are Floating
  •     Input Pin Absolute Maximum Voltage Levels Not Restricted by VDD Pin Bias Supply Voltage
  •     Operating Temperature Range of -40°C to 140°C
  •     5-Pin DBV Package (SOT-23)

Device Uses:
  •     Switch-Mode Power Supplies
  •     DC-to-DC Converters
  •     Companion Gate Driver Devices for Digital Power Controllers
  •     Solar Power, Motor Control, UPS
  •     Gate Driver for Emerging Wide Band-Gap Power Devices (such as GaN)

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Sunday, September 1, 2013

Alarm Indicator for High Temperature Reading

The circuit has been designed to provide an alarm with the use of a buzzer when sensing high temperature by using a thermistor.

  • Thermistor – one type of resistor used as temperature-sensing element which demonstrates a large change in resistance proportional to a small change in temperature because of the composition of its semiconductor material.
  • BC550 – an NPN general purpose transistor with low current and low voltage used for low noise stages in audio frequency equipment.
The temperature can be regulated by the design of this circuit and it can provide a warning scheme in the case of excessive increase in the temperature. The control of the temperature starts from the thermistor TH1 which contains a negative factor. Since this component has resistance proportional to the temperature that it detects, the resistance can be modified wherein a 10K ohm resistance is produced ate 25° C while 1K ohm resistance will be produced at 94° C. to define a specific value of temperature, a trimmer TR1 having a value of 2.2K ohms is being used where transistor Q1 and Q2 are used.

These bipolar transistors form a Darlington pair to produce a very high current gain that is much higher then each transistor taken separately. This is made possible when the current amplified by the first transistor is further amplified by the second transistor. The overall gain is equal to the two individual gains multiplied together.A Darlington pair is designed in such a way that the collectors of both transistors are attached together and the emitter of the first transistor is directly coupled to the base of the second or output transistor. The base current of the output transistor is equal to the emitter current of the input transistor. When several transistors are used, it can form a cascade connection and the total current amplification factor will be very high since it is a product of current amplification factor of respective transistors.


Alarm Indicator for High Temperature Reading  Schematic



When the Darlington pair conducts in this circuit, it causes the relay K1 to close thereby triggering the buzzer to produce sound due to the increase in temperature that is more than the predetermined value. The location of the thermistor should be far enough from other components of the circuit to prevent inhibiting their temperature. The circuit is powered by a 9 V battery for ease of transportation but a dedicated power supply can be provided is the circuit would be in a permanent location. A load, like a lamp or a LED, can also be connected to the contacts of the relay to produce a light indication or notification of the occurrence of excess temperature. Since the circuit is well insulated, the thermistor, connected to the circuit with a plated cable, can be submerged to water to cool down or reset the sensitivity and will not cause any short circuit. Doing this will regulate the trimmer.

This circuit can be designed not only by setting a detection of high temperature but can also be modified to be set on detection of low temperature in some industries. It can be used for refrigeration, walk-in freezer, or walk-in cooler systems and other environments that are sensitive in temperature. Some circuits incorporating high temperature alarm modules are being used in motor vehicles to detect the occupancy wherein the temperature element senses a highly dangerous temperature in the passenger compartment of a motor vehicle and energizes the occupancy sensor to determine the presence or absence of an occupant. In the absence of the occupant, the sensor de-energizes after a period of time while an audible alarm is triggered to create attention to the motor vehicle in the presence of an occupant. This type of alarm can be reset with the use of a key.

Having a temperature alarm can provide benefits like protecting valuable equipment due to high temperature, low temperature, or sometimes high humidity. Other high temperature program can be used to protect against air conditioning failure or against the heating system to turn off. On the contrary, low temperature program can be used against heating system failure by aiding to prevent frozen pipes. The alarm can also reduce downtime by receiving a telephone call and being notified of a possible power loss or failure before the damage occurs in an equipment.

Alarm Indicator for High Temperature Reading

The Darlington pair used in the circuit can also be used as an important component in a switching device while high power Darlington transistors can be used in emergency power supply and in control circuits for AC and DC motor control. These applications make the Darlington suitable for switching large currents in high power circuits.
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