Showing posts with label HMT. Show all posts
Showing posts with label HMT. Show all posts

Saturday, 8 March 2014

SELECTION OF MATERIALS FOR HIGH TEMPERATURE DUTIES IN BOILERS



1.     EFFECT OF TEMPERATURE:
          With the increase in temperature of metal, its strength and resistance to corrosion in such environment decreases, the metal/s may even undergo structural changes.

2.     PROBLEMS:
          The crucial most high temperature problems encountered in the design of steam boilers are associated with �Super Heaters� and �Re-heaters�.  The necessity of high superheat of steam mostly creates two major problems.  The first of these consists in prevention of fouling of Super Heater external surface by slag whereas the second problem is faced in selection of appropriate �Super Heater� tube materials since high temperature reduces the material strength and high pressure increases the stress.

3.     OUTCOME OF USING IN-APPROPRIATE MATERIAL:
          In case suitable material is not used, it fails prematurely at high temperature on account of one or more of the following reasons: -

I.            COLD WORKING:
The cold worked material must not be used at temperatures where re-crystallization may occur; because the �Creep Resistance� of Metal reduces during �Re-Crystallisation� process.

II.         graphitization:
Graphitization that is, the breakdown of �Carbides� into Free Iron & Graphite, of some steels, may occur after a considerable length of time at temperatures ranging between 4270C to 6500C. Graphitization may cause serious losses of strength and toughness in zones affected by Heating in this temperature range.

III.       CORROSION and OXIDATION:
Because of the increased rate of chemical reaction at high temperatures, corrosion and oxidation may give rise to serious problems. Corrosion may occur uniformly over the surface or be limited to small areas.  In such cases it is called �Pitting Corrosion�. The rate of uniform corrosion may be expressed as milligrams loss per sq. centimetres per day. The resistance of steel to high temperature oxidation increases commendably by additional elements, such as Chromium or Silicon.


4.     MATERIAL SELECTION:
          From the material selection stand point, Super Heater Tubes are most critical element in Steam Boilers. The Metal Temperature tends to be 500C above than the Steam Outlet Temperature for Super Heater Coils. In selecting materials for Boilers it is normal practise to use the steel, which is most appropriate to the local temperature conditions. Several types of steels are used in such conditions. Commencing with, Carbon Steel for Main Bank & Furnace Tubes to Carbon-Molly or Chromium-Molly Alloys to various grades of Stainless Steels in the High Temperature Zone.
The following list is typical of material selection in modern Steam Boilers.





Sr.
Materials
Material
Specification
Max. Metal Temperature



(0F)
          (0C) 
(a)
Carbon Steel
BS 3059 St.320/ 360/ 440
800
425
(b)
Carbon � Mo.
SA 209
900
480
(c)
1 to 1� Cr.,  � Mo.
SA 213 T-11
1000
538
(d)
2� Cr., 1 Mo.
SA 213 T-22
1050
565
(e)
18 Cr., 8 Ni. + Ti.
SA 213 T-321
Over 1050
Over 565










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Typical Boiler Tube Failure Analysis

Tube failures occur due to the �Overheating� and the �Plastic Flow� conditions associated with restricted flow of water in side of the particular tube facing failure.

Such failures are generally of two types:
(i)           Overheating in �Short Duration�
(ii)          Overheating over a �Long Period�

Careful examination of the failed tube section reveals whether the failure is on account of rapid acceleration in the tube wall temperature or it is on account of a long term gradual build up/ accumulation of the cause of failure.


(a)      Short Duration Over-Heating: -
When conditions causing a rapid metal temperature elevation at local spot occur, a violent rupture results. The �Plastic � Flow� phenomena of �Carbon Steel� materials at temperatures between: 700 0C � 800 0C is the cause of such occurrences.
Photograph 1

Interruption/ Restriction, in the water circulation by some blockage in tube leads to such failures, as the tube metal gets exposed to direct flames in such cases.




(b)      Long Duration Over-Heating: -
�Long Term� conditions finally lead to a tube leak; wrinkled or bulged external surfaces are observed in such cases. Such appearance is caused by long term �Creep Failure� causing by repetitive scale formation, which leads to �Overheating�, thus �Swelling� the surface, forming a Bulge or Blister, visually observable minor fissures, etc. on external surfaces. Photograph 2 given hereunder illustrates the same.
Photograph 2

(c)       Some Suggestions for Avoiding Such Failures: -
It is recommended that the quality of the �Boiler Feed Water� for boilers operating at 21 Kg/ cm2   (g) should be as per the annexure �A� attached herewith.

It is also recommended that the �Blow Down Time� & duration should be observed as per the annexure �B� attached herewith.

Blow Down must also be conducted on regular basis (When Boiler is in Low Steaming Stage) from side wall, rear & front wall headers; so that sludge accumulation in these headers may be avoided; which otherwise would rise in furnace tubes creating conditions for circulation restrictions/ blockage, thus overheating at local spots.

At times, foreign matters get left behind during the erection. Such happenings may be avoided by carefully examining tubes/ headers after fitting the same by a suitable method, such as, ball test/ by passing water & observing flow at the other end (where possible). Anyhow, these precautions should be taken before the firing of the Boiler.


ANNEXURE �A�

Sr.
Feed Water


1
Hardness, Max. (as Ca CO3)                       mg/L
:
10
2
pH at 25 0C                                            
:
8.8 to 9.2
3
Oxygen, Max.                                          mg/L
:
0.1
4
Total Iron                                               mg/L
:
0.100
5
Copper, Max.                                          mg/L
:
0.05
6
Total Dissolved Solids, Max.                       mg/L
:
200


Sr.
Boiler Water


1
pH at 25 0C
:
9.8 to 10.8
2
Phosphate Residual (as PO4)
:
20 to 40 (If Added)
3
Total Dissolved Solids, Max. (T.D.S.)           mg/L
:
3500
4
Specified Electrical Conductivity at 25 0C, Max. Microsiemens/ cm
:
7000
5
Total Alkalinity                                         mg/L
:
700



 

Heat And Mass Transfer 2E By Cengel (with Solutions)



Download link-
https://onedrive.live.com/redir?resid=5BEC06039E315282!178&authkey=!AH0WpiDbxbaSXF8&ithint=folder%2c

TABLE OF CONTENTS
1. Introduction And Basic Concepts
2. Heat Conduction Equation
3. Steady Heat Conduction
4. Transient Heat Conduction
5. Numerical Methods In Heat Conduction
 6. Fundamentals Of Convection
7. External Forced Convection
8. Internal Forced Convection
9. Natural Convection
10. Boiling And Condensation
11. Heat Exchangers
12. Fundamentals Of Thermal Radiation
13. Radiation Heat Transfer
14. Mass Transfer
Appendix Property Tables And Charts

Friday, 7 March 2014

Heat and Mass Transfer Cengel 3E



 Download link - http://1drv.ms/1czxmj0


 TABLE OF CONTENTS
1. Introduction And Basic Concepts
2. Heat Conduction Equation
3. Steady Heat Conduction
4. Transient Heat Conduction
5. Numerical Methods In Heat Conduction
 6. Fundamentals Of Convection
7. External Forced Convection
8. Internal Forced Convection
9. Natural Convection
10. Boiling And Condensation
11. Heat Exchangers
12. Fundamentals Of Thermal Radiation
13. Radiation Heat Transfer
14. Mass Transfer
Appendix Property Tables And Charts