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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Stress Strain Graph for Mild Steel explained

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Stress:

When any object of certain material is subjected to tensile or compressive or shear force, there may be a chance that its dimension will be affected.
If the dimension of a material is changed due to application of forces we can say that the material is under stress or experiencing the state of stress.

Stress is defined as the Force per unit cross section area.
Stress = F/A

Stress is mainly of two types normal stress and shear stress.

Normal Stress:

When the force applied is perpendicular to the cross section of the object then the stress is known as normal stress. (The force can be tensile or compressive)

Shear Stress: 

When the force applied is parallel to the material cross section then the stress is known as shear stress.

Stress Strain Graph for Mild Steel (Ductile Material)

stress strain curve for mild steel.

If a relatively small force is applied to ductile material steel and it starts to deform (that means that the steel is in stress and we can measure the strain) then we will a curve which is initially a straight line. After plotting stress vs strain we will get the relation. 
In this stress strain graph of mild steel we will find a straight line , that is up to point A from the origin. From that experimental graph we can conclude that stress is proportional to strain. Up to point A is the limit of proportionality. Within the elastic limit the deformation of the steel will be temporary. After the withdrawal of the force the steel bar will return to its original shape. If the force is increased then steel bar will be deformed elastically up to point B. This is the elastic limit (Point B). Beyond that if the force is increased then the plastic deformation will start and we will have upper yield point C and lower yield point D. For further increase in the force material will experience fracture or breaking stress (Max. Ultimate Stress). From this graph we get Young's modulus of elasticity for steel which is 210 GPa. This graph also associates modulus of resilience as well as modulus of toughness. 

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Different Types of Plastics- Advantages and Disadvantages

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Plastics can be classifies into two broad categories -
Thermosets and Thermoplasctics. A brief description of these two classes will be discussed here.

  • Thermosets are the kind of plastics which are not recyclable. They undergo a kind of chemical change at the time of heating. As a result  they can be shaped once because of this permanent chemical change. This process is known as heat hardening. They are also known as thermosetting plastics. Examples : Epoxy Resin, Melamine formaldehyde , polyester resin , Urea formaldehyde. 
  • Thermoplastics are the recyclable types. While heating they undergo a temporary chemical change. After the heat is removed they retain their original shape. The process is known as heat softening.  Examples : Polyamide (Nylon), Polymethyl methacrylate, polypropelene, polystyrene, Low density Polythene (LDPE), High density Polythene (HDPE). 
Different Types of Plastics

Different Manufacturing Processes for Plastics 

Different manufacturing process for plastics include 
  • extrusion
  • lamination 
  • foaming
  • thermal forming 
  • molding 
  • solid-phase forming
  • molding, 
  • spinning  
  • casting   
The molding process alone have five different procedures -

  • Compression
  • Transfer
  • Blow
  • Rotational 
  • Injection 

The injection molding, Blow molding, Extrusion as well as calendering uses thermoplastics for fabrication. High Pressure Lamination, Compression Molding and reaction injection method uses thermosets


Advantages and Disadvantages of using Plastics 

Advantages

  • Plastic is very light in weight. 
  • It has high strength to weight ratio. 
  • Complex parts can be easily manufactured. 
  • Plastics can be of variety of colors or can be clear. 
  • It is free from corrosion. 
  • It can work as a electrical as well as thermal insulator. 
  • It can damp the vibration. 
Disadvantages 


  • Creeping can be problem. 
  • It cannot withstand extreme heat. So it is thermally unstable. 
  • It can be UV light sensitive. 
  • The stiffness is relatively low in comparison to other tough materials. 
  • It has a low strength.
  • Reworking or repairing of plastic is very tough. 
  • Recycling of plastic is a hard job.  

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Electrical Discharge Machining (EDM) Principles

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EDM is a non-conventional machining technique uniquely used for cutting metals which are not possible to cut with traditional methods. EDM only works with materials which are electrically conductive. Delicate cavities and intricate contours which are difficult to produce with a grinder or other machines can be done with Electrical Discharge Machining or EDM. The cutting tool for EDM may be made of hardened too steel, titanium carbide or inconel or kovar.  

EDM is also known as "Spark Machining" . Such name has been given for the fact that it removes the metal by applying a rapid series of repetitive electrical discharges. An electrode and the work piece is used for the conducting path of these electrical discharges. A continuously flowing fluid is always flowing to flush away the little amount of material that are removed. Repetitive discharge gives the workpiece a desired shape.

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Two primary EDM methods are

Ram EDM and
Wire EDM.

Between this two methods the main difference is found in the electrodes. In ram EDM graphite electrodes are used. These electrodes are machined in traditional tools and a special shape is given which is connected to the power source. The electrodes are also connected to a ram. When all the arrangements are ready the electrodes are fed into the workpiece. The entire process is performed under a submerged fluid bath. In Wire EDM the electrode it self is a thin wire. Specially processed brass wires are used for feeding into the material. Electrical discharges cut the w/p according to desired shape. Wire EDM is generally done while submerged in a bath of water.

Ram Electro-Discharge Machining (EDM) Process: 

Rapid recurrence of spark produced between the two electrodes (tool & w/p) controls the metal erosion. It is to be noted that the workpiece must be an electrically conducting metal. An appropriate gap is necessary which is usually approximately 0.025 to 0.075 mm known as spark gap. The gap must be maintained between the w/p and the tool by a servo motor which runs by the difference between a reference and gap breakdown voltage. The tool moves upwards and downwards by this operating motor.
The rate of metal removal depends on the spark gap. If both the electrodes are made of same materials then the highest erosion is found on the positive electrode or the anode. So logically to get a high metal removal rate and a greater tool life the tool is made as cathode and workpiece works as anode, The two electrodes are kept apart and are separated by a dielectric fluid. A transient electric discharge is found across the gap between the two electrodes in the form of spark. When the potential difference between the electrodes is sufficient, the dielectric fluid is ionized and break down which in terms produces an conductive spark channel. The current is discharged across the channel by the condensers as spark. If the potential difference is less than or equal to 12 volts the dielectric fluid is deionized. The process is repeat itself as the condensers start to recharge. The spark interval is generally 10 to 30 microseconds and the current density ranges from 15-500 am/mm2. The energy is released from the sparks in the form of local heat and eventually local temperature found is in the order of 12000°C. Such high temperature and pressure melts and erodes some metals some of which is vaporized and other fine material particles are carried by the fluid circulating around the electrodes which creates a crater on the w/p. As the time interval of the sparks is very low the heat doesn't get time to conducted between the tool & workpiece. Fig below shows a schematic diagram of the whole process.

RAM Electrical Discharge Machining (EDM)


How to choose the Tool Material
Many factors are needed to be taken into consideration while selecting the tool material.
  • Low erosion rate and decent work to tool wear ratio
  • good electrical conductivity 
  • good machinability 
  • low electrical resistance 
  • high melting point . 
  • high rate of electron emission  
EDM has one major drawback and it is the wear ratio of the tool. Different material has different wear ratio. For Brass it is 1:1 . For metallic electrodes it is found 3:1 or 4:1 . For high melting point electrode graphite it ranges from 5:1 to 50 :1 . 

Tool Wear

While applying EDM the tool or cathode also erodes which is not desirable. It is unavoidable but remains in tolerable limit as the wear of the cathode is much less than the anode. This occurs because -
  • Positive ions from the dielectric fluid hit the cathode but electrons strikes the anode. Though electrons are much lighter than the positive ions it possesses more energy as it moves it greater velocity. So anode gets more eroded. 
  • At the time of spark a compressive force is created at the cathode which reduces the cathode erosion. 
  • Fluid medium is generally hydrocarbon. Due to pyrolysis gases are produced which produces carbon particle and these particles create a thin layer of protection on the cathode. Thus the cathode is much safer than anode. 

Purpose of Dielectric Fluid 
  • Effective Coolant for the workpiece and the tool . 
  • It works as an insulating material during the charging of the condenser as a result perfect condition for efficacious spark discharge and its conduction when ionized is obtained. 
  • The eroded materials are carried away by this medium. 
  • It is a coolant in quenching the spark and prevents the arcing. 

Essential Requirements for dielectric fluid 

  • Optimum Viscosity is necessary . If the viscosity is low then the fluid will not be able to carry the metal particles. On the other hand if the viscosity is high then it will restrict the flow of the liquid. 
  • It should be non-reactive with the work piece, container or the tool material. 
  • Non-expensive, easily available and inflammable. 
  • It should not produce toxic gases or vapors during the operation. 
  • It should be a hydrocarbon compound. 
Different dielectric fluids are : transformer oil, spirit (white), oil and kerosene etc. If some conducting power like aluminum or light graphite is added to the fluid then the metal removal rate increases. 


Advantages of EDM

  • Metal having any hardness or brittleness and toughness can be machined. 
  • Harder materials such as steel alloys or tungsten carbides which are used for molding and other non-conventional machining like forging and press tools can be reproduced. 
  • Dies can be machined at hardened condition. 
  • Complicated shapes can be reproduced. 
  • Very fine holes can be done very accurately . 
  • The accuracy is very high. Tolerance of 0.005 mm can be achieved. 
  • Wear resistance surface can be made because workpieces produced with EDM have micro-craters which can contain lubricants effectively. 
  • The physical contact between the tool and w/p is avoided. No cutting force other than blasting pressure is exerted. So fragile jobs and cylinders can be machined without causing any damage. 
  • Harder metals can be machined very quickly in comparison to the conventional machining process. 

Disadvantages Electrical Discharge Machining 

  • The power required for machining is much higher compared to the conventional machining. (120J/mm2)
  • There are chances of surface cracking when the materials become brittle at room temperature. 
  • A thin layer usually ranging from 0.01 mm to 0,10 mm containing 4 % carbon may be deposited on the workpieces made of steel 
  • The Material Removal Rate  (MRR) is comparatively low (75 mm3/sec)
  • Reproducing sharp corners is difficult in EDM. 
  • Sometimes the micro-structures are distorted and subsequently etching occurs. 


Applications of EDM 

Generally EDM is hugely used for machining burr free intricate shapes as well as narrow slots and blind cavities. Sinking of dies , plastic molding, die casting compacting, cold heading, extrusion, press tools, wire drawings are some of the examples of its application. Negative tool geometry can also be generated on a w/p if suitable tool can be made. EDM is very useful for machining small holes. It is also used to cut slot in diesel fuel injection nozzles. It is also used in air crfat engines and brake valves etc.


Wire Electrical Discharge Machining

A very thin wire of diameter ranging from 0.02 to 0.3 mm is used as an electrode in wire cut EDM. It cuts the workpiece with electrical discharge just like a band saw. In this process either workpiece or the wire is moved. The spark discharge phenomenon is used for eroding the metal which is same as the conventional EDM. In wire cut EDM the wire acts as an electrode as a result complicated shapes can be cut easily without forming electrode. Basically the wire-cut EDM consists of a machine which has a workpiece contour movement control unit ( NC tension : a power supply which supplies electrical energy to the wire and has a unit ) . It also has workpiece mounting table and a wire driver section. The wire driver section is use for moving the wire accurately at a constant tension. Another important part is the dielectric fluid (distilled water) supplier having constant specific resistance. Wire EDM has the following features -   
  •  No forming electrode is necessary. 
  • electrode wear is very negligible. 
  • Smooth machined surface. 
  • Tight geometrical and dimensional tolerances . 
  • Extremely high tolerances between punch and die. Extended die life. 
  • Straight holes are possible to produce. 
  • Machine can be operated without any regular supervision for long time at high operating rates. 
  • No skill is needed to run the machine. 
Wire Cut EDM

Advantages

  • Because of the absense of the split lines in the die, savings of the stages in the sequential tools occurs. It permits more punch opening per stage. 
  • There will no flashes on the molded parts because the molds with draught  can be arranged without vertical divisions. 
  • To necessity for tool manufacturing and storing. 
  •  Workpieces are hardened before cutting . So no heat treatment distortion is not present. 
  • Whole work is done in one machine . So die manufacturing cycle time is short. 
  • Lesser inspection time because of single piece construction of dies with high accuracy. 
  • Time is utilized perfectly as the wire cut EDM can cut throughout the day. 
  • Very economical even for small batch production. 
  • low thermally affected zone. High surface finish. 
  • Number of rejected workpieces are very small. 


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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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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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Miller TIG Welder - Dynasty Series Review and Classification

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Miller Welders are one of the most famous manufacturers of TIG welding equipment. Performing TIG welding perfectly is an art. And for a clean, successful and accurate TIG weld we need efficient welders and efficient welding machine. Miller TIG welder always comes handy in achieving the desired weld. Miller manufactures two types TIG of welding equipment

  1. AC/DC all type metal welder (including aluminum).
  2. DC Steel alloy welder. 
The first type includes three different Miller TIG welder which includes 
  • Dynasty Series
  • Diversion Series and 
  • Syncrowave Series 
The second type have only one series named - Maxstar Series . In this article I will talk about the Dynasty series and its classification.

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Miller TIG Welder - Dynasty Series Types 

Miller Dynasty welders have the advanced technology which makes it flexible for AC/DC. stick or TIG solutions. It has the inverter technology. 

Features 
  • Compact and mobile design producing ease of opearion. 
  • Superior weld quality and arc performance.
  • Low cost of installation and maintenance .  

Dynasty Models 

Miller TIG welder Dynasty Series Review

Dynasty 200 

  • Portable only 45 lb 
  • Input voltage - 120-460 Volts 
Applications of Miller Dynasty 200 
  1. Fabrication
  2. Aerospace
  3. Can be used in Food and beverage company
  4. Suitable for petroleum or chemical indsutries
  5. Useful for Mechanical Contractors 
  6. Repair/ maintenance of different metals 
  7. Aluminum product building 

Dynasty 280 

  • Input voltage 208-575 volts 
  • 3 phase or single phase power 
  • Two models - 280 and 280 dx 
  • weight 52 lb
  • Adjustable shoulder strap 
  • Pro-set feature available 
Application 
  • Fabrication
  • Aerospace
  • Anodized aluminum fabrication can be done 
  • High precision-fabrication can be done 
  • Heavy industry uses 
  • Aluminum ship building, repair and maintenance 

Dynasty 350/700

  • Programmed memory
  • Independent AC current control 
  • Input power 208-575 volts 
Application of Dynasty 350 /700 
  • Fabrication
  • Aerospace
  • Anodized aluminum fabrication can be done 
  • High precision-fabrication can be done 
  • Heavy industry uses 
  • Aluminum ship building, repair and maintenance 
  • Its application includes marine fabrication. 

Dynasty model steel and aluminum welding capability 

steel and aluminum welding capability

Dynasty Quick Specs 


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Different Miller TIG Welder Models

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Welding is an art. There are different types of welding methods. TIG or Tungsten Inert Gas Welding is technique for great welded joints. TIG or Gas Metal Arc Welding (GMAW) needs some great craftsmanship to master. And for this reason we need some decent welding machine from a renowned company. Miller TIG Welder is great when it comes to weld an accurate and clean weld.

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Miller TIG welder classification

Miller TIG Welder Categories 

Miller Electric provides great TIG welding equipment for avid welder. You and your co-workers will find it great after using some products from Miller Welds. And I also have to mention that the units are very much suitable for the beginners as well as professionals. Miller TIG welder setup is easy, price is reasonable and all the products are durable. They provide mainly two broad classes of welders. 

1. All metals welder including aluminum (AC/DC) which involves 
  • Diversion Miller TIG welder series 
  • Dynasty series 
  • Syncrowave series 
2. Steel Alloys (DC only). It includes 
  • Maxstar series 

Diversion Miller TIG welder series

Diversions series is mainly designed for the personal use. Its features include - 
  • Low cost
  • Ease of setup and 
  • A total welding package 
  • Great for personal use 
Applications 
  • Automobile and motorsports
  • Aviation technology  
  • 4x4 / Off road 

Dynasty Model Series 

Features 
  • Great for Professional use
  • Advanced AC/DC TIG welder suitable for all metals. 
  • Mobile design 
  • Compact and less energy consumption 
  • Improved travel moving speed 
  • Optimum arc and puddle 
Application
  • Great for Fabrication 
  • Maintenance and repair 
  • manufacturing 

Syncrowave series 

Features 
  • Great for light industrial application 
  • Suitable for personal use 

Maxstar Series 

Features 
  • Advanced TIG technique for steel alloys using DC. 
  • Productivity is improved 
  • Compact and mobile design. 
  • Great ease of arc control 
  • Electrical energy savings 
Applications 
  • Construction and manufacturing . 
  • Fabrication and maintenance. 
  • Repair work. 

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All Miller TIG welder manual is available. After buying the product they provide great services. So I will suggest to buy Miller products as a mechanical engineer. 
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Catalytic converters- Dual bed and three way catalytic converters

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Catalytic Converters 

Catalytic converter is a  way of treating exhaust gases. These convert harmful pollutants into harmless gases. A catalyst is a material that causes chemical change without entering into chemical reaction. In effect the catalyst encourages to react with each other. For example, in the HC/CO catalytic converter, the catalyst encourage5 the HC to unite with oxygen to produce H20 (water).It encourages the CO to change to CO2 (carbon dioxide). The catalyst in the NOx converter splits the nitrogen from the oxygen. The NO therefore becomes harmless nitrogen and oxygen. Figure 31-40 shows that a two way type catalytic converter that converts only HC and CO. Figure 31-40 also shows that the flow of the exhaust gas through the converter. The converter is filled with BB-shot-size metal pellets. They are coated with a thin layer of platinum or similar catalytic metal. The pellets form a matrix through which the exhaust gas must pass. As the exhaust gas flows through the catalyst produces the chemical reaction. Another type of catalytic converter must use non-leaded gasoline. If the gasoline contains lead, the lead will coat the catalyst and the converter will stop working. If this happens to the pellet type converter, there is a way to remove the old pellets and put in a charge of fresh pallets. But in the honey-comb type, the complete catalytic converter must be replaced.


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Dual bed and three way catalytic converters 

There are three general categories of catalytic converters .These are oxidizing, reducing, and three way. The oxidizing converter handles handles HC and CO, using platinum and palladium as the catalyst. To control NOx, rhodium is used as a reducing catalyst. It changes NOx to harmless N2. Instead of having two separate catalytic converters in the exhaust system, one for HC and CO and the other for NOx, most manufacturers use either a dual-bed catalytic converter or a three-way catalytic converter.
catalytic converters


A dual bed converter (Fig 31-42) is like two bead type converters in one housing with an air chamber between them. The exhaust gas first passes through the upper bed, reducing the Nox and oxidizing some of the HC an CO. Then the exhaust gas flows through the air chamber to the lower bed, where the air pump is adding sufficient air for final oxidizing of the HC and CO.

catalytic converter
A three-way catalyst is a mixture of platinum and rhodium (sometimes mixed with palladium). It acts on all three of the regulated pollutants (HC, CO and Nox), but only when the air-fuel mixture ratio is precisely controlled (Fig 31-43). If the engine is operated with the ideal of stoichiometric air-fuel ratio of 14.7:1, the three-way catalyst is very effective. It strips oxygen away from the Nox to form harmless water (H2O), carbon dioxide (CO2 and Nitrogen (N2). However, the air-fuel mixture must be precisely controlled if thus action is to occur. For this reason, a closed-loop fuel-metering system (either feedback carburetor or fuel injection) must be used. 

Dual bed and three way catalytic converters


There are two types of three way catalytic converters. They have a mesh or honeycomb (Fig 31-44) coated with catalyst. The front section (in the direction of the gas flow) handles NOx and partly handles HC and CO. The partly treated exhaust gas then flows through the air chamber into the rear section of the converter. There the gas mixes with the air being pumped in by the air pump. This is called secondary air. It puts more oxygen in the exhaust gas to that the two way catalyst can take care of the HC and CO.

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