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Showing posts with label pulse. Show all posts
Showing posts with label pulse. Show all posts

Sunday, September 22, 2013

Pulse Frequency Modulator

The pulse width of the compact pulse cum frequency modulator can be varied by altering the change-over point of comparator IC1 with a control voltage via resistor R1. The hysteresis of the IC is determined by resistors R3 and R4. The control voltage also causes the frequency of the present circuit to be altered. When the input voltage is 0 V, the frequency is a maximum: in the present design this is about 3.8 kHz. The level of the output voltage is ±12–13V. The more the change-over point has been shifted with the control voltage, the longer it will take before the potential across capacitor C1 has reached the level at which IC1 is enabled.

Pulse Frequency Modulator Circuit DiagramWhen the control voltage is larger than the zener voltage, the oscillator ceases to work. The maximum period is 25 ms, which may be adapted by altering the value of C1. This will, of course, also alter the maximum frequency. The duty cycle is inversely proportional to the control voltage. The minimum pulse width attainable at the lowest frequency is about 6 µs. The modulator draws a current not exceeding 5mA.
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Saturday, September 21, 2013

Long Interval Pulse Generator

A rectangular-wave pulse generator with an extremely long period can be built using only two components: a National Semiconductor LM3710 supervisor IC and a 100-nF capacitor to eliminate noise spikes. This circuit utilises the watchdog and reset timers in the LM3710. The watchdog timer is reset when an edge appears on the WDI input (pin 4). If WDI is continuously held at ground level, there are not any edges and the watchdog times out. After an interval TB, it triggers a reset pulse with a duration TA and is reloaded with its initial value. The cycle then starts all over again. As a result, pulses with a period of TA + TB are present at the RESET output (pin 10).

Long-Interval Pulse Generator
Long-Interval Pulse Generator Circuit DiagramAs can be seen from the table, periods ranging up to around 30 seconds can be achieved in this manner. The two intervals TA and TB are determined by internal timers in the IC, which is available in various versions with four different ranges for each timer. To obtain the desired period, you must order the appropriate version of the LM3710. The type designation is decoded in the accompanying table. The reset threshold voltage is irrelevant for this particular application of the LM3710. The versions shown in bold face were available at the time of printing. Current information can be found on the manufacturer’s home page (www.national.com). The numbers in brackets indicate the minimum and maximum values of intervals TA and TB for which the LM3710 is tested. The circuit operates with a supply voltage in the range of 3–5V.
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Tuesday, September 3, 2013

MC14093 Pulse Width Modulation Controller

Using a MC14093 CMOS type IC, a quad 2-input NAND Schmitt trigger circuit can be designed a very simple pulse width modulation circuit controller electronic project . This pulse width modulation controller electronic project is very simple and require few external electronic parts . The speed is adjustable from 0-max. Max rpm is 2/3 the supply voltage. Supply voltage that can be used in this project can be between 3 and 18 volt .

Pulse Width Modulation Controller Schematic


MC14093 CMOS type IC can be directly interchanged with the MC14011 CMOS IC . Input pins 8, 9, 12, and 13, need to be connected to Gnd. or V+. Output pins 10 & 11 are left floating. Maximum current draw, with the components shown, is approximately 220 mA max using a small type motor. P1 potentiometer can be a multi-turn type if your needs are towards specific rpms. For Q1 transistor can be a IRF513, IRFZ42I IRF620 or IRF511 type .

To minimize RFI (Radio Frequency Interference), put a Ferrite Bead on the gate of Q1. A schottky diode of proper specs may be required for some motors which require faster switching .
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