developments in industrial boilers, whr and power boilers

50
CHEEMA BOILERS LIMITED Welcomes ALL Delegates to National Workshop on Efficient O&M of Boilers Venue: Visakhapatnam Time: 7 th & 8 th December 2015

Upload: national-productivity-council-hyderabad-india

Post on 11-Feb-2017

652 views

Category:

Engineering


5 download

TRANSCRIPT

Page 1: Developments in Industrial Boilers, WHR and Power Boilers

CHEEMA BOILERS LIMITED

Welcomes ALL Delegates to

National Workshop on

Efficient O&M of Boilers

Venue: Visakhapatnam

Time: 7th & 8th December 2015

Page 2: Developments in Industrial Boilers, WHR and Power Boilers

11/12/2014 Cheema Boilers Limited 2

Page 3: Developments in Industrial Boilers, WHR and Power Boilers

Use of steam : Utility for Power Or Process

Assembly :Shop assembled/Site assembled

Nature of support : Bottom /Top supported

Steam condition: Saturated/Superheated

Firing system : Oil/ Gas fired

Solid fuel fired fixed grate, Dumping grate, Reciprocating grate, Traveling grate

Pulverized fuel fired, Fluidized bed, AFBC and CFBC

12/11/2015 Cheema Boilers Limited 3

Page 4: Developments in Industrial Boilers, WHR and Power Boilers

BI–DRUM AFBC WATER TUBE BOILER

12/11/2015 Cheema Boilers Limited 4

Page 5: Developments in Industrial Boilers, WHR and Power Boilers

BI-DRUM WATER TUBE TRAVELING GRATE BOILER

12/11/2015 Cheema Boilers Limited 5

Page 6: Developments in Industrial Boilers, WHR and Power Boilers

DUMPING GRATE WATER TUBE BI-DRUM BOILER

12/11/2015 Cheema Boilers Limited 6

Page 7: Developments in Industrial Boilers, WHR and Power Boilers

Fire tube boilers

Water tube boilers

Fire cum Water tube boilers

Heat source : Coal, Oil, Gas, Bio-Mass, Waste heat

Construction : Bi-drum, Single drum, Multi-drum, Shell & Tube

Installation : Out door / In door

Circulation : Natural / Forced/Once throw

Draft: natural/forced/induced/balanced

12/11/2015 Cheema Boilers Limited 7

Page 8: Developments in Industrial Boilers, WHR and Power Boilers

12/11/2015 Cheema Boilers Limited 8

Super Heater Coil

Membrane

Membrane

Bank Tubes

Page 9: Developments in Industrial Boilers, WHR and Power Boilers

Boiler parameters

Capacity, Steam outlet pressure , Steam outlet temperature , Feed water inlet temperature

Fuel characteristics

Boiler efficiency

Ambient conditions

Other statutory and auxiliary stipulations

12/11/2015 Cheema Boilers Limited 9

Page 10: Developments in Industrial Boilers, WHR and Power Boilers

Ambient temperature

Relative humidity

Site elevation

Seismic zone

12/11/2015 Cheema Boilers Limited 10

Page 11: Developments in Industrial Boilers, WHR and Power Boilers

Boiler efficiency = Heat Output / Heat Input i.e.

Steam Enthalpy x Steam Output Fuel Input x Fuel Enthalpy

12/11/2015 Cheema Boilers Limited 11

Page 12: Developments in Industrial Boilers, WHR and Power Boilers

Dry flue gas loss : Enthalpy difference between flue gas leaving boiler and ambient air multiplied by dry flue gas quantity

Fuel moisture loss : Heat taken by the fuel moisture to become water vapour

Moisture due to combustion of hydrogen loss : Every unit of hydrogen in fuel produces 9 units of moisture. Heat taken by this moisture to become water vapour

12/11/2015 Cheema Boilers Limited 12

Contd…..

Page 13: Developments in Industrial Boilers, WHR and Power Boilers

Air moisture loss : enthalpy difference in moisture brought in by combustion air between flue gas temperature and ambient temperature

Unburnt carbon loss : heat lost due to incomplete combustion of carbon in fuel

Unaccounted losses : small losses which can not be accurately calculated like heat loss in blow down water , heat going with ash , heat loss by radiation from boiler openings etc.

Radiation loss : heat loss from boiler external surface to atmosphere

12/11/2015 Cheema Boilers Limited 13

Contd…..

Page 14: Developments in Industrial Boilers, WHR and Power Boilers

Considerations

Initial cost vs. Running fuel cost

Energy conservation

Waste fuel utilization

Governing factors

Excess air

Flue gas outlet temp.

Moisture and hydrogen content in fuel

Ambient temperature and moisture

Completeness of combustion

Effectiveness of insulation

12/11/2015 Cheema Boilers Limited 14

Page 15: Developments in Industrial Boilers, WHR and Power Boilers

Mechanical Dust Collector. - Can be single or multi-cyclone. - Dust collection efficiency between 90% to 95%. - Dust separates due to centrifugal action. - Good for large particle sizes. - Draft loss around 75-100 mmwc.

Wet Scrubbers : - Uses moisture to capture dust. - Used in boilers using low ash fuels like bagasse. - Water is an essential pre-requisite. - Draft loss 75 to 100 mmwc. - Converts air pollution to water pollution.

12/11/2015 Cheema Boilers Limited 15

Contd…..

Page 16: Developments in Industrial Boilers, WHR and Power Boilers

Electro-static precipitators: Ionizes the gases and dust captured on the cathodes Efficiency as high as 99.9% Can capture finer dust Draft loss only 25 mmwc High voltage used as elements to be electrically charged Used for large solid fuel fired boilers and cement plants

Bag filters : Uses cloth as filters Generally used in low erosive dust Efficiency above 99.9% High draft loss 75 to 150 mmwc and hence high ID fan power

consumption Bags needs frequent maintenance and replacement

12/11/2015 Cheema Boilers Limited 16

Contd…..

Page 17: Developments in Industrial Boilers, WHR and Power Boilers

C + O2 CO2 + Heat

2H2 + O2 2H2O + Heat

S +O2 SO2 + Heat

I kg of C requires 2.667 kg of Oxygen

1 kg of H2 requires 8 kgs of Oxygen

1 kg of Sulphur requires 1 kg of Oxygen

12/11/2015 Cheema Boilers Limited 17

Page 18: Developments in Industrial Boilers, WHR and Power Boilers

Stoichiometric air is the quantity of air theoretically required to complete the combustion of fuel.

Practically stoichiometric air quantity is not sufficient to complete the combustion due to fuel particle size and homogeneity of fuel and air is not good.

12/11/2015 Cheema Boilers Limited 18

Page 19: Developments in Industrial Boilers, WHR and Power Boilers

Excess air is the quantum of air that is required over and above stoichiometric air quantity to have satisfactory completion of combustion.

Solid fuels require more excess air than liquid fuels.

Liquid fuels require more excess air than gaseous fuels.

12/11/2015 Cheema Boilers Limited 19

Page 20: Developments in Industrial Boilers, WHR and Power Boilers

Fixed grate / Reciprocating grate: 40-50 %

Dumping grate : 35-40 %

Traveling grate : 35%

Traveling grate with spreader stoker : 30-35 %

Fluidized bed : 20-25 %

Pulverized fuel firing : 20%

12/11/2015 Cheema Boilers Limited 20

Page 21: Developments in Industrial Boilers, WHR and Power Boilers

Design Consideration And Optimizations for Biomass Fuel Fired Boilers

12/11/2015 Cheema Boilers Limited 21

Page 22: Developments in Industrial Boilers, WHR and Power Boilers

Charateristics of Bio-mass fuels BIOMASS CONTAINS ALKALIES NORMALLY CONCENTRATION

OF POTASSIUM & SODIUM OXIDE LOWEST ASH FUSION TMP. TO 950C.

PRESENCE OF SILICA WITH ALKALIES CREATES

AGGLOMORATION & FOULING ON HEATING SURFACES SILICA IN FLY ASH CAUSE EROSION OF HEATING SURFACES CHLORIDE COMPOUNDS OF RDF CAUSE CORROSION OF

HEATING SURFACES. BIOMASS COMBUSTION PRODUCTS CONTAINS SO2/SO3 THAT

CAUSE ACID DEW POINT CORROSION.

12/11/2015 Cheema Boilers Limited 22

Page 23: Developments in Industrial Boilers, WHR and Power Boilers

Ultimate Analyses of Coal & bio-mass fuels

Analysis Paddy husk G N shell Julia Flora Indian Coal Cotton Stalk Bagasse

Carbon (%) 36.67 49.36 36.45 37.10 44.90 23.50

Hydrogen 04.57 04.34 04.39 02.30 07.50 03.00

Nitrogen 01.25 00.48 02.12 00.70 01.20 01.18

Sulphur 00.18 00.32 00.28 00.30 00.00 00.18

Moisture 09.44 10.05 25.00 08.00 06.93 50.00

Ash 15.01 01.89 02.34 45.00 04.00 01.50

Oxygen 32.88 33.56 29.52 06.60 35.47 20.64

GCV(kcal/Kg) 3275 4190 3400 3500 4400 2272

12/11/2015 Cheema Boilers Limited 23

Page 24: Developments in Industrial Boilers, WHR and Power Boilers

For Coal :

Manual stoking with fixed grate Gravity feeding with chain grate Spreader stoker with traveling grate Spreader stoker with fixed or dump grate Pulverized fuel firing (for coal/lignite) Fluidized bed combustion

For Palm Fibre/ Bagasse/ Other Cellulose

Reciprocating/ fixed grate with gravity feeding Spreader stoker with fixed / dumping grate

12/11/2015 CHEEMA BOILERS LIMITED 24

Page 25: Developments in Industrial Boilers, WHR and Power Boilers

Emissions are generally of two types : 1. Air emissions 2. Liquid emissions The various air emissions from a boiler are : 1. Particulates 2. Nitrogen oxides ( NO,NO2), generally referred as Nox 3. Sulphur gases ( SO2 , SO3) , generally referred as Sox 4. Carbon monoxide ( CO) Normal Particulate Emission Limits : 1. Upto 2 TPH Boilers : 1200 - 1500 mg/N.M3 2. 2 TPH TO 10 TPH : 300 - 600 mg/N.m3 3. Above 10 TPH : 50 - 150 mg/N.m3 The various liquid emissions from a boiler plant are : 1. Back-washed water from water treatment plants 2. Blow down water 3. Water from wet scrubbers

12/11/2015 CHEEMA BOILERS LIMITED 25

Page 26: Developments in Industrial Boilers, WHR and Power Boilers

TEST RESULTS OF POULTRY LITTERS

S. No.

Characteristics

Unit

VALUES

I. Proximity Analysis

1. Moisture content

2. Volatile matter

3. Ash content

4. Fixed carbon

5. Calorific value

(%)

(%)

(%)

(%)

(K Cal / Kg

16.96

53.03

21.82

8.19

2760

II. Ultimate Analysis

1. Carbon

2. Hydrogen

3. Nitrogen

4. Oxygen

5. Sulphur

6. Phosphorus

(%)

(%)

(%)

(%)

(%)

(%)

32.77

1.16

2.82

24.32

0.05

0.10

12/11/2015 Cheema Boilers Limited 26

Page 27: Developments in Industrial Boilers, WHR and Power Boilers

TEST RESULTS OF POULTRY LITTERS

S. No.

Characteristics

Unit

VALUES

III. Ash Analysis

1.Silica as SiO2

2.Calcium as CaO

3.Magnesium as MgO

4.Iron as Fe2O3

5.Sodium as Na

6.Potassium As K

7.Sulphate as SO4

8.Phosphorus as P

(%)

(%)

(%)

(%)

(%)

(%)

(%)

(%)

5.10

8.03

0.60

0.01

0.42

0.60

0.01

1.02

12/11/2015 Cheema Boilers Limited 27

Page 28: Developments in Industrial Boilers, WHR and Power Boilers

Ist POULTRY LITTER BASED POWER PLANT DETAILS

NETT ELECTRICAL OUTPUT - 10 MW

FUEL CUNSUMPTION - 14 T/Hr

STEAM CONDITION - 62 Bar / 500 C

HEAT VALUE - 50 % OF COAL

12/11/2015 Cheema Boilers Limited 28

Page 29: Developments in Industrial Boilers, WHR and Power Boilers

S. No.

DESCRIPTION

POULTRY LITTER FIRED BOILER

1. Type of furnace

FBC

2. Furnace Volume

50 % EXTRA Volume to ensure low flue gas velocity

3. Furnace Temp.

About 150 °C Less to accommodate high potash

content.

4. Furnace Height

About 1.5 times extra Height in Furnace which provides

high furnace volume and longer residence time for fuel

5. Bed Area

Lesser grate area especially designed to accommodate

the above fuel

6. Heat release rate

Lower heat release is considered to keep the furnace

temp. under control

12/11/2015 Cheema Boilers Limited 29

Page 30: Developments in Industrial Boilers, WHR and Power Boilers

7. Air Distribution Over fire air distribution uniform for better combustion of fuel.

8. Tube spacing Extra Tube pitch to take care of choking of tubes

9. Boiler Bank Single pass to prevent choking

10. Fuel bunker SS lining in slope area to ensure better flow of fuel

11. Ash collection Hoppers Extra slope to avoid bridging of ash

12. Soot Blowers Soot blowers are required at different locations to prevent sticking of ash on the tube surfaces.

12/11/2015 Cheema Boilers Limited 30

Page 31: Developments in Industrial Boilers, WHR and Power Boilers

Electricity from Municipal Solid Waste

12/11/2015 Cheema Boilers Limited 31

Page 32: Developments in Industrial Boilers, WHR and Power Boilers

(MSW) refers to the stream of garbage collected through community sanitation services. Medical wastes from hospitals and items that can be recycled are generally excluded

12/11/2015 Cheema Boilers Limited 32

Page 33: Developments in Industrial Boilers, WHR and Power Boilers

MSW consists mainly of renewable resources such as food, paper, and wood products and nonrenewable materials derived from fossil fuels, such as tires and plastics

12/11/2015 Cheema Boilers Limited 33

Page 34: Developments in Industrial Boilers, WHR and Power Boilers

Recyclable materials are separated out, and the remaining waste is fed into a combustion chamber to be burned. The heat released from burning the MSW is used to produce steam, which turns a steam turbine to generate electricity

12/11/2015 Cheema Boilers Limited 34

Page 35: Developments in Industrial Boilers, WHR and Power Boilers

Burning MSW produces nitrogen oxides and sulfur dioxide as well as trace amounts of toxic pollutants, such as mercury compounds and dioxins. Although MSW power plants do emit carbon dioxide.

12/11/2015 Cheema Boilers Limited 35

Page 36: Developments in Industrial Boilers, WHR and Power Boilers

MSW power plants reduce the need for landfill capacity because disposal of MSW ash requires less land area than does unprocessed MSW.

12/11/2015 Cheema Boilers Limited 36

Page 37: Developments in Industrial Boilers, WHR and Power Boilers

MSW

URBAN

RURAL

INDUSTRIAL

12/11/2015 Cheema Boilers Limited 37

Page 38: Developments in Industrial Boilers, WHR and Power Boilers

URBAN

RESIDENTIAL

COMMERCIAL

CONSTRUCTION ACTIVITY

BIOMEDICAL TREATMENT

12/11/2015 Cheema Boilers Limited 38

Page 39: Developments in Industrial Boilers, WHR and Power Boilers

METHODS OF FIRING OF MSW

CAN BE FIRED AS FUEL

CAN BE PROCESSED AND FIRED AS RDF

12/11/2015 Cheema Boilers Limited 39

Page 40: Developments in Industrial Boilers, WHR and Power Boilers

ENERGY CONTENT (DVLONG’S FORMULA)

145 C + 610 [ H2 - O2 / 8 ] + 40S + 10 N

12/11/2015 Cheema Boilers Limited 40

Page 41: Developments in Industrial Boilers, WHR and Power Boilers

Municipal Solid Waste

Defined as anything that can be picked up from the road

Lot of segregating to be carried out

Heat value varies from 600Kcals/Kg to 1200Kcals/Kg

Segregating process has to be at garbage collection point

Establishing RDF (Refuse derived fuel) plants at economical operation

12/11/2015 Cheema Boilers Limited 41

Page 42: Developments in Industrial Boilers, WHR and Power Boilers

12/11/2015 CHEEMA BOILERS LIMITED 42

The Hard Water can cause such Scaling in

boiler resulting in loss of efficiency and

life of boiler.

Page 43: Developments in Industrial Boilers, WHR and Power Boilers

12/11/2015 CHEEMA BOILERS LIMITED 43

Drum Operating Pressure

bar(g) Upto 20 21-40 41-60 Remarks

Hardness max- ppm 1.0 0.5 NIL Note 4

PH at 25°C 8.8 – 9.2 8.8 – 9.2 8.8 – 9.2 Note 1

Oxygen max –ppm 0.02 0.02 0.01

Total iron max- ppm 0.05 0.02 0.01

Total Copper max-ppm 0.01 0.01 0.01

SiO2 max-ppm 1.0 0.3 0.1 Note 4

Conductivity at 25°C (µs/cm) 10.0 5.0 2.0 Note 4

Hydrazine residual-ppm NIL NIL 0.02- 0.04

Page 44: Developments in Industrial Boilers, WHR and Power Boilers

an energy recovery heat exchanger that recovers heat from a hot gas stream producing steam that can be used in a process (cogeneration) or used to drive a

steam turbine (combined cycle).

12/11/2015 Cheema Boilers Limited 44

Page 45: Developments in Industrial Boilers, WHR and Power Boilers

WHRB FOR SPONGE IRON PLANT

12/11/2015 Cheema Boilers Limited 45

Page 46: Developments in Industrial Boilers, WHR and Power Boilers

Revamps & Retrofits User friendly re-designing

Capacity enhancement

Fuel firing changes

Efficient accessories / fittings addition

Overall cycle efficiency improvements

12/11/2015 Cheema Boilers Limited 46

Page 47: Developments in Industrial Boilers, WHR and Power Boilers

WE CONVERT THE SUGAR MILL INTO A POWER HOUSE

We all are aware that Sugar mill boilers and turbine work during the

sugar season and remain idle during off sugar season which is a long time of 6 – 8 months.

CBL has carried out an experiment at Dhampur Sugar Mills, Dhampur two years back. Where they have converted their 80 TPH 65 Kg/cm2 bagasse fired dumping grate boiler to a Fludised Bed furnace which can burn rice husk, mixture of rice husk and bagasse, saw dust and lower grade coal with as high as 82% efficiency.

The same boiler can be converted back to dumping grate and can work on 100% bagasse as fuel during sugar season and can be re-converted to Fluidised Bed during off season. The conversion time both ways takes 3 – 4 days.

12/11/2015 Cheema Boilers Limited 47

Page 48: Developments in Industrial Boilers, WHR and Power Boilers

With this upgradation, the 20 MW power plant has worked during

entire year. Thereby, this break through hasl made a way for every

sugar mill to become a power house during off season.

The same organization has awarded CBL the contract for similar

conversions for their 2 mills, i.e., DSM Sugar Mills, Rozagaon and

Asmoli. Hence it is proved that the system is perfect and viable.

The above fact have been studied by “Word Alliance for Deceralised

Energy” in 2004 and have confirmed that upto 25% power demand of

India can be met by Sugar Mills with the above arrangement. Copy of

the report is available.

The schematic diagram for the above system is enclosed.

12/11/2015 Cheema Boilers Limited 48

Page 49: Developments in Industrial Boilers, WHR and Power Boilers

12/11/2015 49

SCHEMATIC DIAGRAM FOR CONVERTING A DUMPING GRATE BOILER TO FLUIDISED BED DURING OFF SUGAR SEASON AND VICE VERSA

Page 50: Developments in Industrial Boilers, WHR and Power Boilers

THANKS FOR YOUR

CONCENTRATION

12/11/2015 Cheema Boilers Limited 50