Thursday, 17 August 2017

Use of column base plates while using Steel structures

Without Base plate: Here the Load Bearing area of concrete is less. So resistance against Uplift force and shear force are very less. because of this, there is early chances of failure in the structure.
With Base plate: Here the Load Bearing area of concrete is very large. Column Base plates are designed to resist axial forces coming from top to bottom. And also transmits Uplift forces and Shear forces through Anchor rods and Bearing end plate.
(Here Base plate act as a mediator between “column and concrete structure” to transfer such loads)
The Below fig shows the Difference between With and without Base plate
(Below Fig: cross section of Steel Column with Pedestal)

Some epic photos from the world of technology

1. Tesla Gigafactory (in progress)
2. The Large Hadron Collider (LHC)
3. Apple Campus 2 - (Spaceship building (in progress))
4. Motorola’s Manufacturing Plant
5. Tesla’s Fully Automated Factory
6. Microchip zoomin
7. International Space Station
8. Cross section of underwater sea cable
9. Dead weight Machine (1 Million pound force, largest mass objects ever calibrated)
10. Fastest Unmanned Aerial Vehicle - NASA X-43 (Top Speed 7,310 MPH)
(Image source: Google Images)

Wednesday, 16 August 2017

Steps in Boiler Design

STEP-1
Received data from customer
Steam output, feedwater inlet
Fuel analysis, boiler type
Power plant heat balance
STEP-2
Boiler Thermal Sizing:
Combustion, efficiency, steam output calculation,
Furnace, Back pass & Cyclone sizing,
Metal temperature calculation,
Emission calculation, Air Heater Calculation, etc.
Iteration with customer/steam turbine back to STEP-1
STEP-3
Pressure part material selection and ASME calculation & Pipe Stress Analysis:
Tubing, pipe manifold, drum and internal piping & external piping
Furnace Sizing, Boiler Circulation
STEP-4
Non Pressure Part selection and calculation/Simulation
Structural steel Design calculation
Pressure part hanger calculation, etc.
Iteration to STEP-3 for pressure part weight and arrangement
STEP-5
From step-2, perform external piping selection:
Material selection, ASME calculation, Pipe Stress Analysis
Pressure Drop Calculation
STEP-6
Create Pressure Part Arrangement
Iteration with Step-3/4/5
STEP-7
Create General Arrangement & Layout
Iteration with Step-3/4/5/6
STEP-8
Create P&ID Drawing
Steam/Water Diagram, Flue Gas Diagram,
Fuel Diagram, Limestone Diagram, Inert Injection Diagram
STEP-9
Create Bill of Material of Structural & Support (Non Pressure Part)

STEP-10
Create Bill of Material of Tubing, Piping (Pressure Part)
STEP-11
Create Drum Arrangement Drawing,
Drum Internal Drawing, Welding Detail
STEP-12
Create Pressure Part Drawing & Welding Detail:
Evaporator, Furnace wall, superheater section
STEP-13
Create Non Pressure Part Drawing & Welding Detail:
Structural Steel, Casing, Ducting, Cyclone, Stack,
Air Heater

STEP-14
Sizing & Create Coal Silo, Inert, Limestone
Create drawing, specification of silo system
STEP-15
Create Specification & Sizing of Coal Crusher & System
Create emission equipment, baghouse, dust collector (if required)
STEP-16
Create Equipment List & Data Sheet:
Primary Air Fans, Secondary Air Fans, Blower,
Feed Pump, Start-up burner, Damper,
Ash Screw Cooler,
Soot blower, Chemical Injection System, etc.
STEP-17
Create Valve List & Valve Data Sheet:
Manual valve, pneumatic block valve, MOV,
Control Valve, Blowdown valve, desuperheater system, etc.
STEP-18
Create Instrument List & Instrument Data Sheet:
Flow/pressure/temperature transmitter/gauge
Flue gas analyzer & sampling system
Water/steam sampling and analyzer
Create Bill of material of instrument tube & fitting
Create drawing & bill of material cabling system
STEP-19
Boiler Operation and Control Concept
Create functional control diagram
Create logic diagram
Verify/Iterate with P&ID and Selected Equipment
STEP-20
Electrical System
Create bill of material of electrical
Create drawing & bill of material electrical cabling system
STEP-21
Pipe routing for external piping & 3-D Drawing, Pipe Stress Analysis
Feedwater piping system, steam piping system,
fuel/inert/limestone piping system, ducting for flue gas
Iteration with selected equipment
STEP-22
External piping: Pipe Stress Analysis & Pipe Support Drawing
Pipe Insulation System, Ducting & Casing Insulation System
STEP-23
Refractory Lining System
Anchoring System, Material Selection, Testing and Installation Procedures
STEP-24
Iteration to the previous STEP, to verify selected equipment
with design data.

Note:
In general, as one system of the boiler, each of process and step need to be verified and iteration with other process or system.
Drawing output, data sheet, etc. will be submitted to sub-vendor for fabrication, manufacturing or equipment supply.
Selected equipment shall be verified with the design data, the iteration process is required to verify the design data compare to manufacturer data.

Ammonia-Based Flue Gas Desulfurization

Flue gas desulfurization (FGD) systems using lime or limestone as the chemical reagent are widely used throughout the world for SO2emissions control at coal-fired power plants. Ammonia-based systems, however, are emerging as a viable alternative to address limitations with respect to liquid and solid waste generation and handling. Efficient Ammonia-Based Desulfurization Technology (EADS) does not generate any liquid waste streams or undesirable solid byproducts that require disposal; rather, the closed-loop process produces a salable ammonium sulfate fertilizer byproduct which can reduce more than 50 percent of the operating cost.
Shenhua Ningxia Coal to Liquids Plant. The plant began commercial production in December 2016

Typical Lime/Limestone Forced Oxidationv  Wet Scrubbing Process Schematic

Efficient Ammonia Desulfurization Process Schematic

If an LSFO process had been applied to this project along with commercial sales of the byproduct gypsum, the annual operating costs would be $14,642,000. In comparison, the EADS process can essentially eliminate these costs while generating a profit of over US$500,000 from the sale of ammonium sulfate (at US$90/ST), netting total annual savings of approximately $15,000,000.


Conclusion

The EADS technology enables power plant and industrial boiler operators to meet strict environmental regulations while providing economic benefits. EADS is available under several business models, including engineering packages with supply of key equipment and parts, project engineering, procurement and construction, Build-Operate-Transfer and Build-Operate-Own.

The M.V. Recyclone by James Dyson

The M.V. Recyclone by James Dyson
“By skimming a highly concentrated flow of larger sized plastics in polluted rivers, the M.V. Recyclone would effectively mine a major source of the pollution before it reached the sea,” the British engineer explained in an email.
“Large skim nets unfurl from the rollers at its stern and are anchored on each side of the river. Hydraulic winches wind them in and out. The nets face upstream and skim the surface of the river for floating debris. The plastic waste is shredded on board and then different grades of plastic are separated by a huge cyclone–very similar to the way our cyclonic vacuums work,” he said.
"The concept I propose, the M.V. Recyclone, would combat this ever growing problem of plastic waste making its way to our oceans by filtering out debris from the rubbish-stricken rivers that feed into them. By focusing on the polluted rivers, the M.V. Recyclone could tackle a concentrated stream of plastic, catching it before it spreads."
We need to work on this idea with James Dyson, and harness the power of this idea into a usable technology that will help clean our rivers, which in turn will safeguard our seas, which in turn will increase the overall value of our country’s resources.

Friday, 11 August 2017

Electricity (units) is used by 1.5 ton split AC?

Around 1.5 units per hour, provided the compressor is on.
But that is a rough estimate, your actual power consumption varies every single second. Let's dive in a little deeper and see how these things relate to each other.
If you carefully look at your air conditioning unit, you'll probably see a label like this :
The power rating printed on such a label is when the AC is under a stable load, the current is constant, the compressor is working, there's no back emf being produced in the induction coils, and above all the supply voltage is exactly equal to 230 volts at 50 Hz.
In this stable state, the AC unit is consuming 1.5 units of electricity per hour.
That said, not always is the compressor running. If your AC has a thermostat and a temperature setting, once the ambient room temperature reaches to the set limit, the compressor shuts off and only the circulating fans work.
In this case the power consumption is almost equal to a ceiling fan, with my test bench, I got readings around 0.3 amps at 230 volts. That is equal to 0.06 units per hour, almost equal to a 80 watt incandescent bulb.
Another test I conducted : Under extreme load, at a room temperature of about 32 degree Celsius, the power consumption rose to almost 1.8 units per hour, or 1800 watts.

How do you calculate your power consumption :
The commercial unit of electricity is kWh, also called as BTU (Board of trade Unit), which equals to one kilowatt load used for 1 hour.
Units = Power in Watts * time in seconds / 3600000
Or
Units = Power in Watts * time in hours / 1000
Or
Units = Power in kiloWatts * time in hours

You can guess the power consumption by these steps :
For while the compressor is working :
  • Note down the peak power usage from the label of your AC unit.
  • Now do the following maths :
    Units Consumed = Power * Hours of usage / 1000
  • Calculate your projected consumption part 1
For while the circulating fan is working :
  • Take the power usage in this case as a average of 80 W.
  • Do the following maths :
    Units consumed = 80 * Hours of usage while the compressor is off / 1000
  • Calculate your projected consumption part 2
Try this for the average time you use your air conditioner in a day, and add the two to get the daily units consumption. Multiply this with the cost of 1 unit of electricity (around Rs. 6) and you'll get the bill for a single day. Multiply by 30 to get the monthly expenditure.

For example :
I use my AC unit for around 14 hours a day, at 24 degree Celsius.
During the 14 hours cycle, my compressor works for about 4 hours, while for the rest 10 hours, only the fan works.
Consumption Part 1 : 1500 * 4 /1000 = 6 units
Consumption Part 2 : 80* 10 /1000 = 0.8 units
Total Consumption : = 6.8 units
Bill for a single day : = 6.8 * 6 = 40.8
Bill for a month : = 40.8 * 30 = Rs. 1224
But the fact is, that never do you get the exact 230 V supply, nor does the operating conditions remain the same, so for the projected output, add a uncertainty factor of 20 % positive, and the value will be quite close to the actual consumption.

Keep in mind that this varies from AC to AC, and to get a fairly accurate reading is almost impossible.

MOSFETs are preferred over bipolar junction transistors (BJTs)

The reason MOSFETs are preferred over bipolar junction transistors (BJTs) is that the gate (base) current is negligible in MOSFETs compared to BJTs. You "waste" base (gate) current in BJTs to gain control over the collector (drain) current. But, in the case of MOSFETs, you don't have to sacrifice gate (base) current to have that control. 

Complementary MOS (CMOS) takes that concept even further and makes the drain current zero in steady DC state.


Because of these properties, MOS transistors have driven BJTs out of existence from electronic circuits, practically speaking

Reactive power production and the effects of reactive power in the grid

REACTIVE POWER ASSISTS THE FLOW OF ENERGY IN AC CIRCUITS.

Below is the explanation in layman's terms - 

Consider there is a small river dividing two cities and you need to build a bridge over it to connect both the cities. After building the bridge, you also need to construct a house on the other side of the river. 

For the whole work including bridge and house, you've got only 100 wooden planks of which 10 are used to create a bridge over the river. The workers will use this bridge to cross the river and transport items and construct a house on the other side. Here the main work is to build the house on the other side for which we've created a bridge to move from one point to another.  In this case, are the wooden planks used in constructing the bridge directly contributing to the building of a house ? NO. We've used 10 wooden planks for bridge and that cannot be used for building the house. 

And this - THE BRIDGE is what reactive power does. 
100 wooden planks are the total complex power of which some amount is used to create a bridge (10 planks) and remaining active power (90 planks) does the useful work. This is why we say reactive power does not do useful work.

In transmission lines, reactive power maintains the voltage level of the line so that active power can flow to do useful work and this is why we compensate reactive power by external means. It is very much necessary for the line to operate, for active power to flow.

And for how it is done, a capacitor (to supply reactive power to increase voltage profile) or an inductor (to absorb reactive power to decrease voltage profile) is connected in parallel to the transmission line.
Nowadays, power electronic compensators are used for the automatic and varying degree of compensation.

The Ground

This is the most important and basic thing, that every electronic engineer has to understand. The ground.

Many people just think that Ground is something that is Zero Volt. No, it's not. Speaking about voltage, it can also be called Potential Difference. Which means, the difference between two points, when measured, is what is known as Voltage. So it would be more helpful if one of these two points is a known one. And this known reference point is Ground.

The ground need not be Zero volts always. It can be any voltage from which you actually measure the intended thing. It is like you are measuring your height by standing on the ground, which serves as a base reference. However, you can also measure your height by stand on a chair or something. It is always the difference that matters.

So you can even take 200V as your reference and measure the voltage at 205, the potential difference is 5V and the ground here is 200V.

The ground also serves as a return path for the current to reach its source.

Difference between torque angle and load angle in a 3 phase synchronous machine

The load angle primarily used for synchronous generator and torque angle is the same thing for the synchronous motor. Power angle is also same in the context of synchronous machines but it is more generic – also used in power transmission line.

Let me explain what they are:


Load angle (or Torque angle): For a synchronous generator, the magnetic field rotates at synchronous speed and the rotating magnetic field is created in the stator. These two fields are not fully aligned. The stator field lags the rotating field. This lagging expressed in angle is called load angle. The power developed by the generator is directly proportional to sine of this angle. This angle plays an important role in the stability of the generator. If the angle goes beyond 90ยบ, the generator becomes unstable. This may happen when sudden change of large load occurs or fault sustains longer time. The generator instability is one of reason for massive blackout in case of major fault occurs in transmission line.


For the case of a synchronous motor, the angle is called torque angle and the rotating field lags the stator field in this case.


Power angle: For a generator, the power angle is the difference between the generator induced voltage and the generator terminal voltage. The value of the power angle is same as the load angle. So, in the context of the generator, power angle and load angle mean the same thing.
For the case of a transmission line, the power angle is the angle between the angles of the voltages at two different points (bus). The transfer of power between the two points of the power system is proportional to the sine of this angle.
Though there is a distinct difference between these three terms, they are used anonymously in many cases in a power system.