Uploaded April 2014 | Updated September 2026, 1 week ago
Tishitu explains
Compress air HHO oxyhydrogen Welding technique is easy to use and more effective when you need more deep impact to pressure metal require
By fuel cell there is 30 Psi.
and by compressor it require effectively 45 to 100 Psi
for 10 minutes of run it cost you
motor rating 5 Amp x 220 Volts = Power in watts 1100
it cost near by 5Rs. in one Hr.
and compressor charge 100 Psi in within 10 Minutes
So Rs.5/60(Minutes)= .0833 Rs./minutes
and (Rs.0.0833) x (10Min.) =0.833 Rs./10 minutes
and same my reactor take 5 Amp x 220 Volts = Power in watts 1100 and produce 6LPM
so calculation for both are same in terms of cost
Result for pressurized welding for 1 hr is Rs.5(Compressed air) x Rs.5(HHO)= 10 Rs / Hr.
without Pressure Rs.5(HHO)=5 Rs. /Hr.
1. increase safety
2 . if ratio of compress air increase it cools the HHO flame in some conditions corrosion take place in metal while welding or braising so it lower the strength of metal so it is helpful too for cooling and deep impact of heating and cutting too
3.Long lasting for flow rate of HHo
4. Cant join 2 Ppls. broken hearts but join metal broken hearts (Just joking :) :) )
Many more
TISHITU
ISO: 9001-2008
RESEARCH AND CONSULTANCY CELL OF INDUSTRIAL APPLICATION
A Joint Accreditation System of Australia and New Zealand
Copyright © All Rights Reserved tishitu.org Reg No.08122629691/SSI
Accreditation No. M3111204IN
-~-~~-~~~-~~-~-
Please watch: "Lifi Communication by Arduino UNO Download Project"
youtube.com/watch?v=c4gC8dbaiZg
-~-~~-~~~-~~-~-
Tishitu explains
Compress air HHO oxyhydrogen Welding technique is easy to use and more effective when you need more deep impact to pressure metal require
By fuel cell there is 30 Psi.
and by compressor it require effectively 45 to 100 Psi
for 10 minutes of run it cost you
motor rating 5 Amp x 220 Volts = Power in watts 1100
it cost near by 5Rs. in one Hr.
and compressor charge 100 Psi in within 10 Minutes
So Rs.5/60(Minutes)= .0833 Rs./minutes
and (Rs.0.0833) x (10Min.) =0.833 Rs./10 minutes
and same my reactor take 5 Amp x 220 Volts = Power in watts 1100 and produce 6LPM
so calculation for both are same in terms of cost
Result for pressurized welding for 1 hr is Rs.5(Compressed air) x Rs.5(HHO)= 10 Rs / Hr.
without Pressure Rs.5(HHO)=5 Rs. /Hr.
1. increase safety
2 . if ratio of compress air increase it cools the HHO flame in some conditions corrosion take place in metal while welding or braising so it lower the strength of metal so it is helpful too for cooling and deep impact of heating and cutting too
3.Long lasting for flow rate of HHo
4. Cant join 2 Ppls. broken hearts but join metal broken hearts (Just joking :) :) )
Many more
TISHITU
ISO: 9001-2008
RESEARCH AND CONSULTANCY CELL OF INDUSTRIAL APPLICATION
A Joint Accreditation System of Australia and New Zealand
Copyright © All Rights Reserved tishitu.org Reg No.08122629691/SSI
Accreditation No. M3111204IN
-~-~~-~~~-~~-~-
Please watch: "Lifi Communication by Arduino UNO Download Project"
youtube.com/watch?v=c4gC8dbaiZg
-~-~~-~~~-~~-~-
![How to Use Signal Generator and Oscilloscope in Proteus
An oscilloscope, previously called an oscillograph[1][2], and informally known as a scope, CRO (for cathode-ray oscilloscope), or DSO (for the more modern digital storage oscilloscope), is a type of electronic test instrument that allows observation of constantly varying signal voltages, usually as a two-dimensional graph of one or more electrical potential differences using the vertical or Y axis, plotted as a function of time (horizontal or x axis). Many signals, for example sound, can be converted to voltages and displayed this way. Signals are often periodic and repeat constantly, so that multiple samples of a signal which is actually varying with time are displayed as a steady picture. Many oscilloscopes (storage oscilloscopes) can also capture non-repeating waveforms for a specified time, and show a steady display of the captured segment.
Oscilloscopes are commonly used to observe the exact wave shape of an electrical signal. Oscilloscopes are usually calibrated so that voltage and time can be read as well as is possible by eye. This allows the measurement of, for example, peak-to-peak voltage of a waveform, the frequency of periodic signals, the time between pulses, the time taken for a signal to rise to full amplitude (rise time), and relative timing of several related signals.[3]
Oscilloscopes are used in the sciences, medicine, engineering, and telecommunications industry. General-purpose instruments are used for maintenance of electronic equipment and laboratory work. Special-purpose oscilloscopes may be used for such purposes as analyzing an automotive ignition system, or to display the waveform of the heartbeat as an electrocardiogram. Some computer sound software allows the sound being listened to be displayed on the screen as by an oscilloscope.
Before the advent of digital electronics oscilloscopes used cathode ray tubes as their display element (hence were commonly referred to as CROs) and linear amplifiers for signal processing. More advanced storage oscilloscopes used special storage CRTs to maintain a steady display of a single brief signal. CROs were later largely superseded by digital storage oscilloscopes (DSOs) with thin panel displays, fast analog-to-digital converters and digital signal processors. DSOs without integrated displays (sometimes known as digitisers) are available at lower cost, and use a general-purpose digital computer to process and display waveforms.
ignal generators, also known variously as function generators, RF and microwave signal generators, pitch generators, arbitrary waveform generators, digital pattern generators or frequency generators are electronic devices that generate repeating or non-repeating electronic signals (in either the analog or digital domains). They are generally used in designing, testing, troubleshooting, and repairing electronic or electroacoustic devices; though they often have artistic uses as well.
There are many different types of signal generators, with different purposes and applications (and at varying levels of expense); in general, no device is suitable for all possible applications.
Traditionally, signal generators have been embedded hardware units, but since the age of multimedia-PCs, flexible, programmable software tone generators have also been available
-~-~~-~~~-~~-~-
Please watch: Lifi Communication by Arduino UNO Download Project
https://www.youtube.com/watch?v=c4gC8dbaiZg
-~-~~-~~~-~~-~- How to Use Signal Generator and Oscilloscope in Proteus](https://i.ytimg.com/vi/c-j3-WPcV9A/mqdefault.jpg)




![H Bridge motor driving circuit
Tishitu explains
The H-Bridge is designed to drive a motor clockwise and anticlockwise.
To reverse a motor, the supply must be reversed and this is what the H-Bridge does.
An H-Bridge can be made with SWITCHES, RELAYS, TRANSISTORS or MOSFETS.
Note: Some circuits are just demonstration circuits and need damper diodes (protection diodes) to reduce spikes.
THE H-BRIDGE
The circuits we will discuss are called a transistor H-BRIDGE. The active sections of the circuit create the letter H to produce the term H-Bridge.
There are a number of different H-Bridge designs and the actual circuit will depend on the number of transistors, the type of layout, the number of control lines, the voltage of the bridge, and a number of other factors.
Thats why we have a number of different designs to cover these variations.
This design uses 4 transistors. Both inputs must NEVER be HIGH (this will create a short-circuit and damage the transistors). However this circuit is a good design. The voltage on the H-Bridge can be any voltage and the control voltage just needs to be higher than 1v. The circuit provides OFF feature when both inputs are LOW but does not provide BRAKE feature.
An H bridge is an electronic circuit that enables a voltage to be applied across a load in either direction. These circuits are often used in robotics and other applications to allow DC motors to run forwards and backwards.[1]
Most DC-to-AC converters (power inverters), most AC/AC converters, the DC-to-DC push pull converter, most motor controllers, and many other kinds of power electronics use H bridges. In particular, a bipolar stepper motor is almost invariably driven by a motor controller containing two H bridges.
TISHITU
ISO: 9001-2008
RESEARCH AND CONSULTANCY CELL OF INDUSTRIAL APPLICATION
A Joint Accreditation System of Australia and New Zealand
Copyright © All Rights Reserved www.tishitu.org Reg No.08122629691/SSI
Accreditation No. M3111204IN
-~-~~-~~~-~~-~-
Please watch: Lifi Communication by Arduino UNO Download Project
https://www.youtube.com/watch?v=c4gC8dbaiZg
-~-~~-~~~-~~-~- H Bridge motor driving circuit](https://i.ytimg.com/vi/d90HPrJ4XW8/mqdefault.jpg)




