Log Mean Temperature Difference (LMTD) Method with Examples

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Logarithmic Mean temperature Difference is used to measure the Heat transfer rate in double pipe heat exchanger. The rate of heat transfer is got from the formula -

Q = U.A.LMTD .

U= Heat Transfer Co-efficient
A= Heat Transfer Surface Area
LMTD=  Mean Temperature Difference

LMTD is the logarithmic temperature difference between the hot and cold fluids passing through the each ends of heat exchanger pipes.

Log Mean Temperature Difference Method

Formula for LMTD calculation - 



LMTD or Logarithmic Mean Temperature Difference  is calculated by keeping some factors in mind 

  • The type of the heat exchanger 
  • temperature of the fluids at the four end positions 
These are - 
  • Inlet temperature of the hot fluid 
  • Inlet temperature of the cold fluid 
  • Outlet temperature of the cold fluid
  • Outlet temperature of the hot fluid 
LMTD =  dT1 - dT2 /ln (dT1/dT2)  

For parallel flow - 

dT1 = Temperature of the hot fluid entering - Temperature of the cold fluid entering 
dT2 = Temperature of the hot fluid exit - Temperature of the cold fluid exit 


For counter flow - 

dT1 = Temperature of the hot fluid entering - Temperature of the cold fluid exiting
dT2 = Temperature of the hot fluid exit - Temperature of the cold fluid entering  

Mathematical Example : 

1. For a Parallel Flow Heat Exchanger,  Hot fluid entering at temperature 100 degree Celsius and exiting at 90 degree Celsius . Cold fluid Entering at 30 degree Celsius and exiting at 50 degree Celsius. Find the LMTD . 

For Parallel or co - current flow , 

According to the above mentioned formulas - 

LMTD = ((100 - 30)-(90-50)) / ln (100-30/90-50) = 53.6 degree Celsius . 

2. For a Counter Flow Heat Exchanger for same data calculate the LMTD . 

For Counter Current HE , 

LMTD = ((100-50)-(90-30))/ln(100-50/90-30) = 54.85 degree Celsius . 

So Heat transfer rate for Counter Flow is higher . 


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Electrochemical Machining (ECM) Principles

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Electrochemical Machining (ECM) is based upon Faraday's law of electrolysis. Faraday's law states that the the mass of a metal altered by the electrode is proportional to the quantity of electrical charges transferred to that electrode.
  • In ECM the removal of metal is controlled by the anodic dissolution in the electrolyte. 
In ECM -
  •  The workpiece acts as the anode
  • The tool act as cathode.
  • The electrodes should be placed closely with a gap of about 0.5 mm .
  • The anodes and cathodes should be immersed into electrolyte. (Here Sodium Chloride)
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Schematic illustration of the electrochemical-machining (ECM) process

Electrochemical Machining (ECM)

The main principles of ECM are as follows - 

  • A potential difference is maintained between the electrodes as a result ions existing in the electrolytes migrate towards the electrodes. 
  • Conventionally positively charged ions are attracted towards the cathode and negative ions are attached towards to the anode. And thus flow of current is initiated in the electrolyte. 
  • The set-up is kept stationary and tool is fed linearly. 
  • The desired amount of metal is removed because of ion migration towards the tool. 
  • For keeping the tool safe from damage a continuous supply of electrolyte is ensured by pumping it at high pressure (15kg/cm2). 
  • In this process the temperature generated is very low and no spark is produced and thus there isn't any scope of metallurgical changes in the job. 
  • When electricity is supplied to the metallic ions of the w/p is pulled out. The positive ions of the metal reacts with the negative ions present on the electrolytic solution and hydroxides of metal and other components. This hydroxides are precipitated and washed away by the electrolytic solutions.  
  • In Electrochemical Machining the tool and workpiece doesn't come in direct contact with each other so negligible wear and tear is observed. 
  • Metal removal rate is high and voltage supplied is very low. 
  • The metallic workpiece is not damaged due to thermal stresses. 
  • Dimensions up to 0.05 mm can easily machined . 

Examples of parts made by ECM 

Electrochemical Machining (ECM)  Principles

Different parts made by electrochemical machining.  (a) Turbine blade material :  nickel alloy (b) Thin slots on a 4340-steel roller-bearing cage.  (c) Integral airfoils on a compressor disk.

 Electrochemical Grinding  (ECG) Principles  

electrochemical machining and electrochemical grinding


(a) Schematic illustration of the electrochemical-grinding process.  (b) Thin slot produced on a round
nickel-alloy tube by this process.

        Functions of Electrolyte
  •           The current is carried between the tool and the w/p through electrolyte.
  •           The produced heat is dissipated by the liquid electrolytic solution.
  •           The product of machining is removed by the solution.               
  •            It keeps the reactions continuous by supplying the elements necessary for the reaction.  

What Should be The Criteria of Selecting Electrolyte in Electrochemical Machining  (ECM) and Grinding (ECG)


The selection of the electrolyte should be done by considering the following matters - 


·         Required Machining rate 
·         Required Dimensional Accuracy 
·         Surface Texture and Integrity  

            
      The properties of Electrolytes 

  •            High Electrical Conductivity 
  •            High Current Efficiency for machining 
  •            Good Surface finish and integrity is necessary
  •            Composition of the electrolyte and structure of the material controls the final surface texture. 

 Flow Arrangement of the Electrolyte in  ECM / ECG 

       Perfect electrolyte flow across the machining tool is mandatory for proper machining.
      cavitation is likely to be occurred in the tool so proper care is necessary to keep the 
      tool in shape. Tool design must ensure the uniform flow of electrolytic solution in all
      the machining areas. Optimum flow of the electrolyte is desired because excessive
      flow can cause erosion of the tool. 
      
     Mainly two types of flows are used –


     1.     Divergent flow
     2.     Convergent flow

     Convergent flow provides a smoother flow of electrolytes. At first the electrolyte has to pass a
     chamber known as ‘dam’. The dam is used to pressurize the are outside  the working tool. 

   Advantages of convergent flow system.  
  
  •         Improved Surface finish 
  •         Improved Uniform and predictable side over cut as well as front machining gap. 
  •         Less prone to arcing. 
  •         Clean operating environment 
  •         Stray currents make it possible to eliminated unwanted machining.  
But it is also to be mentioned that machining in convergent flow is much expensive than divergent flow. 

Advantages of Electrochemical Machining (ECM)

  1. Accurate Machining 
  2. No direct contact between tool and job. 
  3. Negligible wear and tear of the tool. 
  4. Environment friendly 
  5. no thermal or mechanical stress is induced on the tool.
  6. There is no contact between worpiece and the tool so its is possible to machine non-rigid and open w/p. 
  7. Jobs with complex geometric shapes can be machined with ease accurately and repeatedly. 
  8. ECM is a time saver when compared to conventional machining. 
  9. During drilling several holes can be done at once.  
  10. Deburring can be done in hard to access areas. 
  11. Fragile and brittle materials which are prone to damage can be machined easily in ECM without cracking or breaking. 
  12. Surface finish up to 25 μ in can be achieved. 

Disadvantages of Electrochemical Machining (ECM)

  1. Sometimes this process is costly because the equipments are expensive. 
  2. Continuous supply of electrolytic solution is mandatory. 
  3. Steady voltage or potential difference should be maintained. 
  4. Rigid fixturing is required to withstood the high flow rate of electrolytes. 
  5. Designing the tool is arduous because it must be insulated to maintain the perfect conducting paths towards the workpiece. 
  6. Corrosion free material is needed for the structure and the electrolyte handling unit. 
  7. If hydrogen is liberated at the tool surface then it is possible to suffer from hydrogen-embitterment of the surface. 
  8. There is possibility of damages because of sparks. 
  9. Conventional machining techniques produce more improved fatigue properties than ECM.  

Applications of Electrochemical Machining ECM 

  • ECM is mainly used in the areas where conventional machinig techniques are not feasible . One of the main applications of ECM is found in the aerospace industries where accuracy is very important when complex shaped difficult to machine materials are needed to be machined. 
  • Different Industrial techniques have been developed on the basis of Electrochemical Machining Such as 
                a. Electrochemical Cutting 
                b. Electrochemica ECM 
                c. Electrochemica broaching 
                d. Electrochemica drilling 
                e. Electrochemica deburring 

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Ultrasonic Machining (USM) Working Principles

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In this process the material of the workpiece is removed by the repetitive impact actions of abrasive particles. The erosion takes place by the abrasive particles which are carried by a liquid medium in the from of a slurry . A shaped vibrating tool is used to produce the impact. The term shaped is used to explain that the process is capable enough to create 3D profiles in correspondence to the tool shape which is not possible in AJM. The tool gets the vibrating motion from the vibrating mechanical horn.  Here is a schematic diagram of the basic system.   


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Ultrasonic Machining (USM) principles

Ultrasonic Machining (USM) Principles

Working principle of Ultrasonic Machining  or Ultrasonic Impact Grinding is described with the help of a schematic diagram. The shaped tool under the actions of mechanical vibration causes the abrasive particles dipped in slurry to be hammered on the stationary workpiece. This causes micro-indentation fracture on th material. 
Small abraded particles are removed along the surface which is perpendicular to the direction of the tool vibration. When the material is removed a cavity of the same profile of the tool face is formed. The abrasive particles gradually erodes as the machining process continues. As a result fresh abrasive particles are needed to be supplied in the machining zone. Abrasive particles associated with the liquid is fed to the m/c zone and it ensures the removal of the worn out grains and material. 

Machining Time 

The machining time of the ultrasonic grinding depends on the frequency of the vibration, material properties and grain size.  The amplitude of the vibration may vary from 5 to 75 µm and frequency may vary from 19~25 kHz. Ample static force is also required to hold the job against the machining tool . A continues flow of abrasives suspension is also mandatory.

  

Ultrasonic Machining (USM) Process

Advantages of USM:

1. It can be used to drill circular or non-circular holes on very hard materials like stones, carbides, ceramics and other brittle materials.
2. Non-conducting materials like glass, ceramics and semi precious stones can also be machined. 

Disadvantages of Ultrasonic Machining  :

1. It can be proved slower than the conventional machining processes. 
2. Creating deep holes is difficult because of the restricted movement of the suspension. 
3. It is arduous to select the perfect tool geometry for creating hole of certain dimension. The holes created may be of larger sizes because of side cutting.  
4. High tool wear because of continues flow of abrasive slurry. 

Applications:

1. Hard and brittle materials can be machined like tungsten carbide, diamond and glass. These are difficult to machine in conventional m/c-ing process.
2. Wire drawing dies of tungsten carbide can be drilled by this process.  
3. Circular as well as non-circular holes can  be done with straight or curved axes.
4. It has been proved successful in machining geranium, silicon quartz and synthetic ruby etc. 

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Water Jet Machining (WJM) Advantages and Disadvantages

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        In Water jet Machining no abrasive is used. Water jet alone is used for cutting. In WJM, materials like concrete, asbestos, wood, rocks, coal, textiles and leather can be cut. The material is removed by means of erosion. These days hydraulic coal mining as well as tunneling, descaling and cleaning is also done by this process. 


         Water Jet Machining (WJM) Principles 


As the name suggests the water jet machining process involves the use of high velocity  and high pressure thin jets of water to cut the job. Water Jet is the stream of high velocity water coming out from the nozzle. When high pressure water jet comes out of the nozzle it gains a large kinetic energy. After striking the work piece this kinetic energy is converted to pressure energy inducing high stress on the material. When this induced stress surpasses the ultimate stress of the material, removal starts. 

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         Schematic Diagram of WJM 


        The schematic diagram of  WJM process is very similar to that for AJM. To raise the pressure of the water a pump or intensifier is used. The system pressure ranges from 1600 to 4000 N/mm2. The accumulator used in the system act as a pulsation remover and an energy reservoir. Water passes through the accumulator and then nozzle through a high pressure thick tube. The tube material may be stainless steel jacketed with carbon steel. Sintered diamond , sapphire or tungsten carbide may be used as the nozzle material. The exit dia. of the nozzle may vary from 0.05 to 0.35 mm. 



Water Jet Machining (WJM) Advantages and Disadvantages
a. Schematic of Water Jet Machining b. Example of workpiece machined by WJM


Advantages of Water Jet Machining Process 

1. Here water is used for cutting which is cheap, non-toxic and readily available. 
2. The water jet keeps the job clean and dust free. 
3. The only moving part used is the pump, therefore the operating and
maintenance expenses are low. 
4. The process is very safe to use. 
5. Very complicated designs and detailed work can be done. 
6. There is no damage of the workpiece due to thermal stress. Very little heat is
generated. 
7. Soft rubber like materials can be cut through this process where saw teeth
gets clogged. 
          

Disadvantages of WJM.

1. Hard Materials cannot be cut. 
2. The initial cost is high. 

Applications:

1. Cutting 
2. Milling 
3. 3D Shaping
4. Turning
5. Piercing
6. Drilling
7. Polishing 
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Magnetically Impelled Arc Butt Welding Principles

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Magnetically impelled arc butt (MIAB) welding (sometimes referred to as rotating arc welding) is a rapid, clean, and reliable arc welding process that employs forging to produce  the finished weld. As such, it is classified as an electric arc welding process since that is the energy source for producing melting or fusion, even though pressure from forging is needed to complete the weld. It is thus a fusion arc pressure welding process, and, in that way, is related to arc stud welding  ( not described in this article. )

The MIAB welding process is well established in Europe (especially Eastern Europe) and the independent  states of  the  former Soviet Union, finding application in  the  automotive  industry for  the fabrication of tubular-section butt welds and, to a lesser extent, tube-to-plate welds. Tubes can have circular or non-circular cross sections, with walls ranging from 0.5 to 5 mm or more (0.020 to 0.200 in.) thick. Steel as well as aluminum alloy has been  welded successfully in mass production, producing welds with exceptional quality even for safety-critical applications.

Magnetically Impelled Arc Butt Welding Principles 

In practice, MIAB welding  is fully automated. An arc drawn between aligned but properly gapped tube ends is impelled to move (rotate) around the joint  line by an interaction of  the arc current  and  an externally  applied magnetic field , hence the name. Once the arc has heated the ends of the tubes to cause localized melting and adjacent softening in the heat-affected zone, the parts are forged together. This expels most of the molten metal present and a solid-phase  bond is formed. The principle of operation is shown  schematically in  Figure 1 ; typical placement of the magnets used to apply the propelling force to the arc is shown in Figure 2

Schematic of the operation of the magnetically impelled arc butt (MIAB)  welding process
Figure 1 : MIAB principles 
Schematic of the typical placement of magnets  for propelling the arc in  MIAB welding
Figure 2 : MIAB schematic 



Benefits of MIAB


The  major benefits of MIAB welding are (1)  no rotation of either  component  (thereby  overcoming  problems  with  asymmetrical  parts  encountered with many friction welding processes), (2) short welding times (e.g., 2-4 s for 2 to 4-mm CO.040-  to 0.080-in.]-thick low-carbon steel tube), (3) low
material loss, (4) low fumes and  spatter, and (5) relatively low required arc current.

As opposed to flash and upset welding , MIAB welding does not use resistance to accomplish heating at the joint, but, rather, an electric arc. This makes  it an arc rather  than a  resistance welding process. The fact that forging  removes  most  molten  metal  suggests that  the  process  could  be considered non-fusion; after  all,  the role of the  liquid is  largely  fluxing . The  process is considered  a  non-consumable electrode arc process because the intent is not to consume the parts being welded and used as electrodes, but to preserve those parts.

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Gas Tungsten Arc Welding (GTAW)-TIG welding operations

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Gas-tungsten arc welding (GTAW) uses a permanent,  non-consumable tungsten electrode to create an arc to a workpiece. This electrode is shielded by an inert gas, such as argon or helium (or a mixture of the  two), to prevent electrode degradation; hence the older, common names tungsten-inert  gas (TIG) and heli-arc welding. As shown in Figure below, current from the power supply is passed to the tungsten electrode of a torch  through a contact tube. This tube is  usually (but may not be) water-cooled to prevent overheating. The gas- tungsten arc welding process can be performed with or without filler (autogenously). When no filler  is employed, joints must  be thin and have a close fitting square-butt configuration.

schematic of Gas Tungsten Arc Welding


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Gas Tungsten Arc Welding (GTAW)- Tungsten Inert Gas (TIG) welding current or operating modes  

The GTAW process, as well as several other  arc welding processes (e.g., SMAW, GMAW, and FCAW), can be operated in several different current modes, including  direct current (DC), with the  electrode negative (EN) or positive (EP), or alternating  current (AC). These different
current or power modes result in distinctly different arc and weld characteristics. When the workpiece or weldment is connected to the positive (+) terminal of a direct current  power supply, the operating mode is referred to as direct current straight polarity (DCSP) or direct current electrode negative DC - or DCEN). When the workpiece is connected to the negative terminal of a direct current power supply,  the  operating  mode is  referred to  as direct  current reverse polarity (DCRP) or direct current electrode positive (DC + or DCEP). In DCSP, electrons are emitted from the tungsten electrode and accelerated to very high speeds and kinetic energies while traveling through  the arc. These high-energy electrons collide with the workpiece, give up their kinetic energy, and generate considerable heat in the workpiece. Consequently, DCSP results in  deep penetrating,  narrow welds, but with  higher workpiece heat input. About  two-thirds of the net heat  available from the arc (after losses from various sources) enters the workpiece. High heat input to the workpiece may or may not be desirable, depending on factors such as required weld penetration,  required weld width, workpiece  mass, susceptibility to  heat-induced defects or degradation, and concern for distortion  or residual stress. In DCRP, on the other hand,  the heating effect of the electrons is on  the tungsten electrode rather  than  on  the workpiece. Consequently, larger water-cooled electrode  holders are required,  shallow welds are produced, and workpiece heat input can be kept low. This operating mode is good for welding thin sections or heat-sensitive metals and alloys. This mode also results in a scrubbing action  on the workpiece by the  large positive ions that strike its surface, removing oxide and cleaning the surface. This mode is thus preferred for  welding metals and alloys that  oxidize  easily,  such as aluminum or magnesium.

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The DCSP mode is much more common with nonconsumable electrode arc processes than  the DCRP mode. There is, however, a third  mode, employing alternating  current or AC. The AC mode  tends to result in  some of  the characteristics of both of the DC modes, during the corresponding half cycles, but with some bias toward  the straight  polarity half-cycle due to the greater inertia (i.e., lower mobility) and, thus, greater resistance of large positive ions. During this half-cycle, the current tends to be higher due to the extra emission of electrons from the smaller, hotter electrode versus larger, cooler workpiece. In the AC mode, reasonably good  penetration is obtained, along with some
oxide cleaning action. Figure below summarizes the characteristics of the various current or operating modes of the  GTAW process  described  above. (Incidentally, many of these effects are far less pronounced with other electric arc welding  processes employing consumable electrodes. Most particularly, there is little difference in penetration between DCSP and DCRP. This is so since the concentration of heat at the electrode with RP aids in melting the consumable electrode, as is
desired, but this heat is returned to the weld when the molten metal droplets transfer to the pool. On the other hand, the cleaning action of the RP mode at the workpiece still takes place.)

TIG Welding at Various Currents Diagram 


characteristics of the various current or operating modes of the  GTAW

In modern welding power  supplies designed specifically for GTA welding, there is the added capability for square-wave AC and for wave  balancing. In square-wave AC, solid-state  electronic devices reshape  the  sinusoidal wave provided as  input to the power supply from  line voltage to give it a square shape; positive for half a cycle and negative for half a cycle. This shape turns out to be advantageous during the transition from one half-cycle to the other, where the  voltage  and  resulting current pass through  zero. For normal sinusoidal waveforms, as this transition is taking place, the voltage just before and just after the reversal approaches zero relatively slowly compared to the rate of change for a square wave. The effect of the much more rapid (essentially instantaneous) reversal with a square wave is to avoid possible momentary loss and subsequent difficulty of reestablishing the arc.
In wave balancing, there is the capability of shifting the relative magnitude of the straight and reverse half-cycles, thereby shifting the characteristics of the altered waveform. This is done by applying a DC bias  voltage to the AC, whether of sinusoidal or square waveform. The  advantage is the ability to fine-tune the waveform for the particular material being welded, obtaining just the degree of straight  (penetrating) or reverse (cleaning) half-wave behavior desired.  Regardless of  mode or waveform, power  supplies for GTAW are generally of a constant  current (CC) type.
Square and normal sinusoidal wave forms and wave balancing are illustrated schematically in Figure below.

GTAW current wave forms
a. square VS normal sinusoidal wave AC forms b. wave balancing in the AC operating mode 


Electron Emission Improvements of tungsten electrodes in TIG 

The electron emission of tungsten electrodes can be  occasionally enhanced by adding 1-2% thorium  oxide or cerium oxide (or other rare-earth oxides) to the  tungsten.  This  addition  improves  the  current-carrying  capacity of the electrode and consequently there is less chance for contamination of the weld by expulsion of tungsten due to localized electrode overheating and melting, and allows for greater arc stability and easier initiation, As mentioned earlier, both argon and helium are used for shielding with the GTAW process. Argon offers better shielding since it  is heavier and tends to
stay on the work. Arc initiation is also easier, since the binding energy (i.e.work potential) for electrons in the completely filled outermost  electron shell (some of which must  be stripped from this  shell to provide a conducting a plasma) is lower than for helium.




The advantage of helium in TIG is a hotter arc, which is the result of the  higher  work potential compared to argon. By using mixtures of these two inert gases, mixed characteristics can be obtained. In summary, the GTAW process is good for welding thin sections due to its inherently low heat input (especially in the DCRP mode), offers better  control of  weld filler dilution by the substrate than many  other processes (again due to low heat input), and is a very clean process (as a result of the excellent protection afforded by inert argon or helium or argon-helium mixtures). Its greatest limitation is its slow deposition rate (only about 1-2 Ibs. or 0.5 1 kg. per hour), although this can be overcome by employing  a  “hot wire” variation in  which the filler  wire is resistance  heated by being  included in the circuit at a lower potential  than the electrode. Deposition rate can also be increased  to compete with GMAW, SMAW, and  FCAW by using much larger,  water-cooled  electrodes with much higher currents (e.g., upward of  a thousand  amperes versus around a  hundred  amperes), or by using a fairly recent variation of the  process that  employs  supplemental flux (fluxed gas- tungsten arc welding). In  both of  these  variations,  the process  must be mechanized, however, to deal with the greater volumes of molten weld metal.

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Aluminothemic Welding or Thermit Welding Principles

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Aluminotherrnic welding is commonly known as Thermit welding.  As a subset, these processes use the heat from highly exothermic chemical reactions of solid, particulate materials (or, occasionally, solid particles and a gas) to produce melting and joining, also called coalescence, between metals.  Most often, the reactants employed are oxides with low heats of formation and metallic reducing agents, which when oxidized have high heats of formation, but combinations of two metals or a metal and a non-metal (e.g., H, C, 0, N, B, Si, S, or Se) that will react exothermically to produce a compound with a high heat of formation  can  also be used. The excess heat of formation of the reaction products, in  either case, provides  the energy to produce the weld. As an example, if finely divided aluminum and metal oxides of, say, iron or copper are blended and ignited by means of an external  heat  source,  the aluminothermic reaction (after which the entire group is named) will proceed according to the following general reaction: 

Aluminotherrnlc Welding or Thermit Welding General Reactions and Principles 


Metal oxide + aluminum = aluminum oxide + metal + heat
The reaction is so exothermic that the heat liberated results in the metal formed as a reaction product being liquid. The most common Thermit reactions used to produce welds are – 

thermit welding reactions


By causing the reaction to take place such that this molten metal product can  reach and fill a joint,  a weld can be  made. In Thermit welding as it is usually practiced, the reaction is made to take place in a vessel located above a mold around the aligned and abutted joint elements. Once the reaction takes place, the  molten metal product, being denser than the solid AI,O, product, pours down into the mold under the influence of gravity and casts into the joint to create a weld. To help the reaction proceed, especially for large volumes of reactant and large welds to be made, the mold is often preheated. A typical arrangement for Thermit welding is shown schematically in Figure where concrete reinforcing steel bar is being welded in either a horizontal or vertical orientation.  This  and  the  joining of steel railroad  rails and heavy copper electric cables or buss bars to terminal connectors are common applications of this process. 

Aluminotherrnlc Welding or Thermit Welding Principle

Maximum Temperature of Thermit Reactions 

While the theoretical maximum temperature that results from such reactions can be calculated from the  reaction  thermodynamics,  the actual maximum temperature achieved is less precise because the reaction does not take place adiabatically.  In the case of most common reaction maximum theoretical  temperature is approximately 3200°C (5800°F). Even though  the  actual maximum temperature  probably  ranges between 2200°C (4000°F) and 2400°C (4350°F) due to various losses, there is more than enough superheat in the molten metal product to cause melting of the surfaces of the abutting joint elements, thereby producing a real weld. 

More recently, as the result of work by Merzhanov et al. (1972) in Russia, a host of  exothermic reactions have been studied  and used to accomplish surface welding or overlaying by causing the reaction to take place in reactant packed on the surface, and cladding by causing the reaction to take place in reactant sandwiched between layers. Reactions to produce refractory oxides, carbides, nitrides, carbonitrides, borides, silicides, and other non-oxide ceramics as well as intermetallics (e.g., aluminides) have been studied (Hlavacek, 1991) and offer potential to join ceramics to one another and to metals. The former processes are generically classified by the AWS as exothermic welding processes, while the  latter are classified as exothermic brazing processes, the difference being whether any melting of the  substrate(s) occurs, as it must to be considered welding. Alternative names for  these  processes, because of the  propagating and simultaneous  modes in  which the process can take place are: self-propagating high-temperature synthesis (SHS)  and combustion synthesis (CS) 

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Miller BOBCAT 250 EFI Engine Drive Welder / Generator Review

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Miller BOBCAT 250 EFI Rugged welder / generator is a very good equipment for Stick as well as Flux-Cored Welding. It can be used  for construction and maintenance /repair operations. It is quitter. There is improvement on the sound level. So there is significant improvement in the jobsite communication as a result a safer and more efficient working environment is guaranteed.

Miller bobcat 250 EFI welder review
Miller bobcat 250 EFI


Miller BOBCAT 250 EFI Engine Drive Welder / Generator Review (907502)

Features : 
  1. Less fuel consumption (upto 27 % less)
  2. 33 % Less sound. 
  3. EFI or Electronic Fuel Injection produces better performance and less operation cost, longer functioning time and less emission than carburetor versions. 
  4. Easy maintenance because of new and improved design. Oil can be checked from the front panel. It has single side oil fill and drain system. 
  5. 5" shorter and 55 lb lighter than the previous models. Takes less space. 
Review : In this article I am talking about the fuel injection model. The carburetor model is almost the same in operation. This is a great machine for portable welding and even for hobby welding. It is a commercial level thing. It is a multipurpose welder. It can run as a power source for constant current and constant voltage application . Stick, MIG, TIG, Flux cored anything can be used. TIG torch can be attached very easily to the welding lead. It does have a switch right on the front side which gives you TIG, Stick. It also has AC and you can run your 6011 easily on the AC. Both 225 and 250 and EFI all come with the AC mode. It also has a wire positive and negative line. Flux cored or wire both can be used. And all those things can be controlled from one machine. It has a nob for selecting the current range (40 - 130 amp). And then there is the nob to fine tune the current again. Miller has a great job! On the front side there are some flaps. Underneath them you will find connection for your work and electrode. It has 220 output with a 50 amp breaker on it. It has four sockets for regular 120 Volts. Plasma cutters can be added to this. So this is a full functioning completely portable welding machine from this one power source!  It got a little table on the front underneath the door which work as a reference or cheat-sheet for the newbies. On the top Electronic Fuel Injection module cycle. When it is turned on the lights on the top is on which is metering device or fuel gauge. The light will go off if you have any problem. Fuel injection module has start, run/idle and run options. After run option is applied it shows the hours that are remaining for the next fuel change. Once the oil is changed you can reset the module. On the carburetor versions their is a chock nob instead of this EFI module.  On the bottom there is the induction fan for air intake which is actually blown out of the top.  The exhaust line is a short one but it is very quiet. There is a fuel meter on the side. The fuel tank should not full to the brim for some reason. But it actually gives a great run time. The finish is really awesome. The main engine opening door is quiet easy to open. There is a top door for checking the air cleaner, oil filter and oil level indicator. On the back there is the battery. It is cheaper than the Lincoln welders and it has EFI so you will definitely save $500 if you buy this ! It produces 12000 Watts power. When You want to have highest generating power make sure that the fine adjustment nob is set to 10. You will have the ability to weld and run the generator at the exact same time.
Some notes on EFI :    EFI gives the super ease of starting (Really awesome !!). When not welding no fuel is wasted. When welding starts the EFI automatically starts functioning. It saves a lot of power. See the video below it will understand it ! 


Miller BOBCAT 250 EFI Engine Drive Welder Improvements 


  • The engine is rotated towards the front side for getting adequate air flow efficiently. 
  • Quitter operation is possible. As a result of this improvement the system can be started early, can be functioning all day long without polluting the sound. 
  • Can be used for structural construction work, repair, maintenance and fabrication purpose with great ease. 
  • Supports Stick Welding SMAW, Flux Cored (FCAW), GMAW or MIG, TIG or GTAW (DC or Non - Critical AC), Air Carbon Arc (CAC-A), Cutting and Gouging (Model 250 only, 3/16 carbons) , Air Plasma Cutting etc. 
  • Can be used in extreme conditions. Heavy internal leads are available for durability. 
  • Great cooling technology is present for max. performance. 
  • Super tough armor is attached for the safety of the welder and prevents accidents. 
  • It is heavy duty and versatile.

Bobcat Specs 

bobcat 250 specs

Miller BOBCAT 250 EFI Engine Driven Welder Questions and Answers 

  • Whats the Miller Bobcat 250 Weight ? ans : 501 lbs 
  • How Bobcat 250 is powered ? Diesel / Gasoline ? ans : Gasoline 
  • What kind of motor is used in Miller BOBCAT 250 EFI ? ans : 23 HP Kohler . 
  • Does bobcat 250 has any cons ? Ans : It needs to be bundled with some more  specific welding kits. 
  • What is the price of Miller bobcat 250 EFI ? ans : $4,000.00 - $4,495.00 
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Connecting Rod Bearing Failure Analysis

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Connecting rod big-end bearings are precision-insert bearings. The insert-type bearing is usually not adjustable. However, it can be replaced, if the rod, crankpin, and other engine components are in good condition. When a rod bearing falls, an analysis should be made to determine the cause. Then
 the cause can be eliminated so that the failure will not repeated. Lets move into the failure analysis of con rod bearings.

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Analysis of Rod Bearing Failure

rod bearing failure analysis

rod bearing analysis


 Bearing Failure due to lack of Oil

When insufficient oil flows to a bearing, actual metal to metal contact results. The bearing overheats, and the bearing metal melts or is wiped out of the bearing shell.Welds may form between the rotating journal and bearing shell. There is a chance that the engine will " throw a rod". This means the rod will "freeze" to the crankpin and break, and parts of the rod will punch a hole through the engine block. Oil starvation of a bearing could result from clogged oil lines, a defective oil pump or pressure regulator, or insufficient oil in  the crankcase. Also, bearings with excessive clearance may pass all the oil from the pump, so other bearings are starved and will fail.

Fatigue failure of bearing


Repeated application of loads on a bearing fatigue the bearing metal. It starts to crack and flake out. Craters, or pockets, form in the bearing. As more and more of the metal is lost, the remainder carries a greater load and fatigues at a faster rate. Then complete bearing failure occurs.

Fatigue failure seldom occurs under average opening conditions. However certain conditions will cause this type of failure. For example, if a journal is worn out of round, the bearing will be overstressed with every crankshaft revolution. Also, if the engine is idled or operated at a low speed most of the time , the center part of the upper rod-bearing half will carry most of the load and will "fatigue out". If the engine is "lugged" by operating at maximum torque with wide open throttle, then most of all of the upper bearing half will fatigue out. High speed operation tends to cause fatigue failure of the lower bearing half.

Bearing Scratched by dirt in the Oil


Embeddability enabled a bearing to protect itself by allowing particles to embed in the bearing. Then they will not gouge out bearing material or scratch the rotating journal. Figure shows what happens when a particle embeds. The metal is pushed up around the particle, reducing oil clearance in the area. Usually the metal can flow outward enough to restore adequate oil clearance. However, if the dirt particles are too large they do not embed completely. They are carried with the rotating journal, gouging out scratches in the bearing. Also, if the oil is very dirty, the bearing becomes overloaded with particles. In either case, bearing failure soon occurs. 



Bearing Failure due to taper journal 

If the journal in tapered, one side of the bearing carries most or all of the load. This side will overheat and lose its bearing metal. With a tapered journal, both bearing halves fail on the same side. With a bent rod, failure will be on opposite sides.

Bearing failure from radius ride 

If the journal to crank cheek radius is not cut way sufficiently when the crankshaft is machined, the edge of the bearing ride on the radius. This causes cramming of the bearing, possibly poor seating, rapis fatigue and early failure. Radius ride is most likely to occur on a reground crankshaft.

Bearing failure from improper seating

Improper seating of bearing shell in the bore causes local high spots where oil clearances are too small. Figure shows what happens when particles of dirt are trapped between the bearing shell and the bearing bore, This reduces oil clearances (As at X). Also an air space exists which prevents proper cooling of the bearing (A). The combination can lead to premature bearing failure. So care should be taken in connecting rod bearing installation and replacement.

Bearing failure from Ridging 

Crankpin ridging or camming may cause failure of a partial oil groove type of replacement bearing installed without removal of the ridge. The ridge forms on the crankpin because of uneven wear between the part of the crankpin in contact with the partial oil groove and the part that runs on the solid bearing. The original bearing wears around the ridge. However, when a new bearing is installed, the center zone may be overloaded (at the ridge) and may son fail. A ridge so slight that it can be enough to cause failure. Failures of this sort have been reported in engines having ridges of less than 0.001 inch (0.025 mm). 

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Types Welding Electrodes explained – Non consumable-Consumable electrodes

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The piece of wire or rod used to carry current for welding is known as an electrode or welding electrode. It may or may not have flux covering. The electrode produces arc at one end and other end is gripped by a electrode holder. In this article we will discuss the classification of welding electrode as well as explain different welding electrodes types.

Types of Welding Electrodes explained  


welding electrode classification

different types of welding electrodes

For having a clear knowledge about different electrodes I would advisable to have a look at the above mentioned images.
Welding electrode is mainly classified into two broad categories
1. Non-consumable electrodes and
2. Consumable electrodes

Non-consumable or Refractory Electrodes  

Non-consumable electrodes are those which do not melt away or consumed during the welding process. These electrodes involves the use of high melting point materials such as carbon - MP 6700 degree Fahrenheit, pure tungsten MP 6150 degree Fahrenheit, or alloy tungsten. 

Main features of non-consumable welding electrode 
  • While welding with these electrodes a filler metal is needed to fill up the gap between the two metal parts. 
  • These are used in carbon arc welding and Tungsten Inert Gas (TIG) welding .  
  • Tungsten electrodes are much costlier than carbon or graphite electrodes. Tungsten alloy electrodes are costlier. 

Consumable Electrodes 

This electrodes are low melting point electrodes. When electrode and job is struck the arc starts to melt the end of the electrode. The molten electrode is transferred to the job in the form of metal droplets.  

Main features of Consumable welding electrode
  • these are more thermally efficient than non consumable electrodes. 
  • They are made of different materials depending upon the need and the chemical composition of metals to be joined. 
  • These are used in MIG welding in the form of bare electrode. 
  • Most commonly used core material is mild steel, low alloy steel and nickel steel. 
  Consumable electrodes can be classified in the following groups

1. Bare electrodes: They don't have any flux coating only the alloy or the metal wire.
2. Light coated electrodes: These are electrodes having coating factor of 1.25 . coating factor = diameter of the electrode / diameter of the core wire .
example : Citobest electrode from AO or Advani Oerlikon.
3. Medium coated electrodes: These have coating factor of about 1.45 .
example : Overcord
4. Heavily coated electrode : Coating factor is between 1.6 and 2.2 . example : citofine .

Covered electrodes can be classified as follows :

  • electrodes having cellulose 
  • Rutile (titania)
  • Electrode having iron oxide 
  • Electrode with iron powder 
  • Low hydrogen electrode   
welding electrode

Welding Electrode Explained in details 

  • Need of filler metal 

Depending upon the material of the electrode, it may melt and supply filler metal; if it is non-consumable, a separate filler metal addition becomes necessary. 

  • Core Wire composition 

The core wire is prepared by keeping in mind the type of metal to be welded. The composition of core wire is different for each metal. When mild steel is needed to be welded the core wire must have have similar composition to get a homogeneous weld joint. 

  • The size and length of the welding electrode 

The size (diameter) of the electrode core wire totally depends on the amount of metal deposition needed and the type of gap between the two metal plates to be joined. The length of the core depends of the electrical resistance, rigidity and diameter of the electrode. Typical coated electrode dimensions are 150 to 460 mm (6 to 18 in.) in length and 1.5 to 8 mm (j to in.) in diameter. As the thickness of the sections to be welded decreases, the required current and electrode diameter also decrease.

  • Current Requirements 

If bigger diameter welding electrodes are used then the requirement of the current will also be higher.


  • Specification of the welding electrodes 


Specifications for electrodes and for filler metals, including dimensional tolerances, quality control procedures, and processes, are stated by the American Welding Society (AWS) and the American National Standards Institute (ANSI); some appear in the Aerospace Materials Specifications (AMS) by the Society of Automotive Engineers (SAE).

  • Welding electrode numbering system 


Electrodes are identified by numbers and letters (Table 27.2), or by color code, particularly if they are too small to imprint with identification.


 
welding electrode numbering system
 Among other requirements, the specifications state that

(a) the wire diameter must not vary more than 0.05 mm (0.002 in.) from nominal size, and
(b) the coatings must be concentric with the wire.


Welding Electrode is sold by weight and are available in a wide variety of sizes and specifications. Selection and recommendations for electrodes for a particular metal and its application can be found in supplier literature and in the various handbooks

  • Electrode coating 

Claylike materials are used to coat the electrodes. These materials include silicate binder as well as powdered materials such as various oxides, metal alloys, fluorides and carbonates and cellulose. Cellulose includes cotton cellulose and wood flour. 
Brittle electrode coatings has some functions and they take part in complex interactions at the time of welding. The basic functions are 

a) they help in stabilizing the arc. 
b) Act as shield against the surrounding environment by producing gases. The gases produced are mainly carbon dioxide CO2 and water vapor and small amounts of carbon monoxide CO and Hydrogen. 
c) They control the rate at which the electrode melts. 
d) Act as a flux and protect the weld joint against the formation of oxides and other inclusions. The resulting slag also protects the molten weld pool. 
e) These coatings add alloying elements in the weld zone and enhances the properties of the weld joint. Deoxidizers help the joint from becoming brittle. 

To ensure a good weld the deposited coating or slag must be removed after each pass. A wire brush can be used for cleaning the deposited coating. 
Bare electrodes are also available which are made of stainless steel of aluminum alloys. 


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