Showing posts with label Step. Show all posts
Showing posts with label Step. Show all posts

Wednesday, 8 March 2017

How to build Digital Step Km Counter Circuit Schematic


Description

This circuit measures the distance covered during a walk. Hardware is located in a small box slipped in pants' pocket and the display is conceived in the following manner: the leftmost display D2 (the most significant digit) shows 0 to 9 Km. and its dot is always on to separate Km. from hm. The rightmost display D1 (the least significant digit) shows hundreds meters and its dot illuminates after every 50 meters of walking.
A beeper (excludable), signals each count unit, occurring every two steps. A normal step was calculated to span around 78 centimeters, thus the LED signaling 50 meters illuminates after 64 steps (or 32 operations of the mercury switch), the display indicates 100 meters after 128 steps and so on.
For low battery consumption the display illuminates only on request, pushing on P2. Accidental reset of the counters is avoided because to reset the circuit both pushbuttons must be operated together. Obviously, this is not a precision meter, but its approximation degree was found good for this kind of device. In any case, the most critical thing to do is the correct placement of the mercury switch inside of the box and the setting of its sloping degree.

Circuit diagram:

 

Parts:

  • R1 = 22K 1/4W Resistor
  • R2 = 2.2M 1/4W Resistor
  • R3 = 22K 1/4W Resistor
  • R4 = 1M 1/4W Resistor
  • R5 = 4.7K 1/4W Resistor
  • R6 = 47R 1/4W Resistor
  • R7 = 4.7K 1/4W Resistor
  • R8 = 4.7K 1/4W Resistor
  • R9 = 1K 1/4W Resistor
  • C1 = 47nF 63V Polyester Capacitor
  • C2 = 100nF 63V Polyester Capacitor
  • C3 = 10nF 63V Polyester Capacitor
  • C4 = 10µF 25V Electrolytic Capacitor
  • D1 = Common-cathode 7-segment LED mini-display (Hundreds meters)
  • D2 = Common-cathode 7-segment LED mini-display (Kilometers)
  • Q1 = BC327 45V 800mA PNP Transistors
  • Q2 = BC327 45V 800mA PNP Transistors
  • P1 = SPST Pushbutton (Reset)
  • P2 = SPST Pushbutton (Display)
  • IC1 = 4093 Quad 2 input Schmitt NAND Gate IC
  • IC2 = 4024 7 stage ripple counter IC
  • IC3 = 4026 Decade counter with decoded 7-segment display outputs IC
  • IC4 = 4026 Decade counter with decoded 7-segment display outputs IC
  • SW1 = SPST Mercury Switch, called also Tilt Switch
  • SW2 = SPST Slider Switch (Sound on-off)
  • SW3 = SPST Slider Switch (Power on-off)
  • BZ = Piezo sounder
  • B1 = 3V Battery (2 AA 1.5V Cells in series)

Circuit operation:

IC 1A & IC 1B form a monostable multi vibrator providing some degree of freedom from excessive bouncing of the mercury switch. Therefore a clean square pulse enters IC2 that divides by 64. Q2 drives the LED dot-segment of D1 every 32 pulses counted by IC2. Either IC3 & IC4 divide by 10 and drive the displays. P1 resets the counters and P2 enables the displays. IC1C generates an audio frequency square wave that is enabled for a short time at each monostable count. Q1 drives the piezo sounder and SW2 allows disabling the beep.

Notes:

  • Experiment with placement and sloping degree of mercury switch inside the box: this is very critical.
  • Try to obtain a pulse every two walking steps. Listening to the beeper is extremely useful during setup.
  • Trim R6 value to change beeper sound power.
  • Push P1 and P2 to reset.
  • This circuit is primarily intended for walking purposes. For jogging, further great care must be used with mercury switch placement to avoid undesired counts.
  • When the display is disabled current consumption is negligible, therefore SW3 can be omitted. 

  Source http://www.extremecircuits.net/2009/12/digital-step-km-counter-circuit.htm

Readmore → How to build Digital Step Km Counter Circuit Schematic

Sunday, 29 January 2017

Low Loss Step Down Converter


This circuit arose from the need of the author to provide a 5 V output from the 24 V battery of a solar powered genera-tor. Although solar power is essentially free it is important not to be wasteful especially for small installations; if the battery runs flat at midnight you’ve got a long wait before the sun comes up again. The basic requirement was to make an efficient step-down converter to power low voltage equipment; the final design shown here accepts a wide input voltage from 9 to 60 V with an output current of 500 mA. The efficiency is very good even with a load of 1 mA the design is still better than a standard linear regulator. The low quiescent current (200 µA) also plays a part in reducing losses. 

Some of the components specified (particularly the power MOSFET) are not the most economical on the market but they have been deliberately selected with efficiency in mind.

Low Loss Step Down Converter-Circuit Diagram
Low Loss Step Down Converter Circuit Diagram

When power is applied to the circuit a reference voltage is produced on one side of R2. D1 connects this to the sup-ply (pin 7) of IC1 to provide power at start-up. Once the circuit begins switching and the output voltage rises to 5 V, D2 becomes forward biased and powers the IC from the output. Diode D1 becomes reverse biased reducing current through R1. When the circuit is first powered up the voltage on pin 2 of IC1 is below the reference voltage on pin 3, this produces a high level on output pin 6. The low power MOSFET T1 is switched on which in turn switches the power MOSFET T3 via R5 and the speed-up capacitor C4, the output volt-age starts to rise. 

When the output approaches 5 V the voltage fed back to the inverting input of IC1 becomes positive with respect to the non inverting input (reference) and switches the output of IC1 low. T1 and T3 now switch off and C3 transfers this negative going edge to the base of T2 which conducts and effectively shorts out the gate capacitance of T3 thereby improving its switch off time. 

The switching frequency is not governed by a fixed clock signal but instead by the load current; with no load attached the circuit oscillates at about 40 Hz while at 500 mA it runs at approximately 5 kHz. The variable clock rate dictates that the output inductor L1 needs to have the relatively high value of 100 mH. The coil can be wound on ferrite core material with a high AL value to allow the smallest number of turns and produce the lowest possible resistance. Ready-made coils of this value often have a resistance greater than 1 ? and these would only be suitable for an output load current of less than 100 mA. 

The voltage divider ratio formed by R4 and R3 sets the output voltage and these values can be changed if a different out-put voltage is required. The output volt-age must be a minimum of 1 V below the input voltage and the output has a minimum value of 4 V because of the supply to IC1. 

A maximum efficiency of around 90 % was achieved with this circuit using an input voltage between 9 and 15 V and supplying a current greater than 5 mA, even with an input voltage of 30 V the circuit efficiency was around 80 %. If the circuit is used with a relatively low input voltage efficiency gains can be made by replacing D4 with a similar device with a lower reverse breakdown voltage rating, these devices tend to have a smaller for-ward voltage drop which reduces losses in the diode at high currents. At higher input voltage levels the value of resistor R1 can be increased proportionally to reduce the quiescent current even further. 


Readmore → Low Loss Step Down Converter