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A boiler is a closed vessel where drinking water or other liquid is heated. The fluid will not boil. (In North America, the term "furnace" is generally used if the purpose is never to boil the fluid.) The warmed or vaporized liquid exits the boiler for use in a variety of processes or heating system applications,[1][2] including drinking water heating, central heating, boiler-based power era, cooking, and sanitation.

Materials
The pressure vessel of a boiler is usually manufactured from steel (or alloy steel), or historically of wrought iron. Stainless steel, especially of the austenitic types, is not found in wetted parts of boilers credited to corrosion and stress corrosion breaking.[3] However, ferritic stainless steel is often found in superheater sections that will not be exposed to boiling drinking water, and electrically heated stainless shell boilers are allowed under the Western european "Pressure Equipment Directive" for production of steam for sterilizers and disinfectors.[4]
[url=https://en.wikipedia.org/wiki/Boiler]https://en.wikipedia.org/wiki/Boiler[/url]
In live steam models, copper or brass is often used because it is easier fabricated in smaller size boilers. Historically, copper was often used for fireboxes (especially for steam locomotives), due to its better formability and higher thermal conductivity; however, in newer times, the high price of copper often makes this an uneconomic choice and cheaper substitutes (such as metal) are used instead.

For a lot of the Victorian "age of vapor", the only material used for boilermaking was the best quality of wrought iron, with assembly by rivetting. This iron was often from specialist ironworks, such as at Cleator Moor (UK), observed for the high quality of their rolled plate and its own suitability for high-reliability use in critical applications, such as high-pressure boilers. In the 20th century, design practice relocated towards the utilization of steel instead, which is stronger and cheaper, with welded structure, which is quicker and requires less labour. It should be observed, however, that wrought iron boilers corrode much slower than their modern-day metal counterparts, and are less vunerable to localized pitting and stress-corrosion. This makes the durability of old wrought-iron boilers considerably more advanced than those of welded steel boilers.

Cast iron may be used for the heating vessel of domestic water heaters. Although such heaters are usually termed "boilers" in a few countries, their purpose is to create hot water usually, not steam, and they also run at low pressure and stay away from boiling. The brittleness of cast iron makes it impractical for high-pressure steam boilers.
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Energy
The source of heat for a boiler is combustion of some of several fuels, such as wood, coal, oil, or natural gas. Electric vapor boilers use level of resistance- or immersion-type heating elements. Nuclear fission is also used as a heat source for producing steam, either directly (BWR) or, in most cases, in specialised temperature exchangers called "vapor generators" (PWR). Warmth recovery vapor generators (HRSGs) use heat rejected from other procedures such as gas turbine.

Boiler efficiency
there are two solutions to gauge the boiler efficiency 1) direct method 2) indirect method

Immediate method -direct method of boiler efficiency test is more usable or even more common

boiler efficiency =Q*((Hg-Hf)/q)*(GCV *100 ) Q =Total steam flow Hg= Enthalpy of saturated steam in k cal/kg Hf =Enthalpy of give food to drinking water in kcal/kg q= level of fuel use in kg/hr GCV =gross calorific value in kcal/kg like family pet coke (8200 kcal/KG)

indirect method -to measure the boiler efficiency in indirect method, we need a subsequent parameter like

Ultimate analysis of gas (H2,S2,S,C moisture constraint, ash constraint)
percentage of O2 or CO2 at flue gas
flue gas temperature at outlet
ambient temperature in deg c and humidity of air in kg/kg
GCV of energy in kcal/kg
ash percentage in combustible fuel
GCV of ash in kcal/kg
Configurations
Boilers can be classified in to the following configurations:

Pot boiler or Haycock boiler/Haystack boiler: a primitive "kettle" in which a fire heats a partially filled drinking water container from below. 18th century Haycock boilers generally produced and stored large quantities of very low-pressure vapor, often hardly above that of the atmosphere. These could burn wood or most often, coal. Efficiency was very low.
Flued boiler with a couple of large flues-an early type or forerunner of fire-tube boiler.

Diagram of the fire-tube boiler
Fire-tube boiler: Here, drinking water partially fills a boiler barrel with a little volume remaining above to accommodate the vapor (steam space). This is the kind of boiler used in all steam locomotives nearly. The heat source is inside a furnace or firebox that needs to be kept completely surrounded by the water in order to keep up the temp of the heating system surface below the boiling point. The furnace can be situated at one end of the fire-tube which lengthens the path of the hot gases, thus augmenting the heating system surface which may be further increased by making the gases invert direction through a second parallel tube or a bundle of multiple tubes (two-pass or return flue boiler); on the other hand the gases may be studied along the edges and then beneath the boiler through flues (3-pass boiler). In case of a locomotive-type boiler, a boiler barrel extends from the firebox and the hot gases pass through a lot of money of fire tubes inside the barrel which greatly increases the heating system surface in comparison to a single pipe and further improves heat transfer. Fire-tube boilers have a comparatively low rate of vapor production usually, but high steam storage capacity. Fire-tube boilers mostly burn solid fuels, but are readily adaptable to those of the gas or liquid variety.

Diagram of the water-tube boiler.
Water-tube boiler: In this kind, pipes filled up with drinking water are arranged in the furnace in a number of possible configurations. The water tubes connect large drums Often, the lower ones containing water and top of the ones water and steam; in other instances, such as a mono-tube boiler, water is circulated by a pump through a succession of coils. This kind gives high steam creation rates generally, but less storage capacity than the above mentioned. Water pipe boilers can be made to exploit any heat source and are generally preferred in high-pressure applications because the high-pressure drinking water/steam is included within small size pipes which can withstand the pressure with a thinner wall.
Flash boiler: A flash boiler is a specialized kind of water-tube boiler where pipes are close jointly and drinking water is pumped through them. A flash boiler differs from the kind of mono-tube vapor generator where the tube is permanently filled up with water. Super fast boiler, the tube is held so hot that the water give food to is quickly flashed into steam and superheated. Flash boilers experienced some use in cars in the 19th century which use continued into the early 20th century. .

1950s design steam locomotive boiler, from a Victorian Railways J class
Fire-tube boiler with Water-tube firebox. Sometimes the two above types have been mixed in the next manner: the firebox consists of an assembly of water pipes, called thermic siphons. The gases go through a conventional firetube boiler then. Water-tube fireboxes were installed in many Hungarian locomotives,[citation needed] but have met with little success far away.
Sectional boiler. Inside a ensemble iron sectional boiler, sometimes called a "pork chop boiler" the water is included inside solid iron sections.[citation needed] These areas are assembled on site to create the finished boiler.
Safety
See also: Boiler explosion
To define and secure boilers safely, some professional specialized organizations such as the American Society of Mechanical Technicians (ASME) develop specifications and regulation rules. For example, the ASME Boiler and Pressure Vessel Code is a typical providing an array of guidelines and directives to ensure compliance of the boilers and other pressure vessels with security, design and security standards.[5]

Historically, boilers were a way to obtain many serious injuries and property destruction as a consequence to badly understood engineering principles. Thin and brittle metal shells can rupture, while welded or riveted seams could open up poorly, resulting in a violent eruption of the pressurized vapor. When drinking water is changed into steam it expands to over 1,000 times its original travels and volume down steam pipes at over 100 kilometres per hour. Because of this, vapor is a superb way of moving energy and high temperature around a niche site from a central boiler house to where it is needed, but with no right boiler give food to water treatment, a steam-raising flower are affected from scale formation and corrosion. At best, this increases energy costs and can result in poor quality vapor, reduced efficiency, shorter vegetation and unreliable operation. At worst, it can lead to catastrophic failure and lack of life. Collapsed or dislodged boiler tubes can also aerosol scalding-hot vapor and smoke from the air intake and firing chute, injuring the firemen who load the coal in to the fire chamber. Extremely large boilers providing hundreds of horsepower to operate factories could demolish entire structures.[6]

A boiler which has a loss of give food to drinking water and it is permitted to boil dry can be hugely dangerous. If feed drinking water is then sent in to the clear boiler, the tiny cascade of inbound drinking water instantly boils on contact with the superheated metal shell and leads to a violent explosion that cannot be managed even by protection steam valves. Draining of the boiler can also happen if a leak occurs in the steam supply lines that is bigger than the make-up drinking water supply could replace. The Hartford Loop was invented in 1919 by the Hartford Vapor Boiler and Insurance Company as a strategy to assist in preventing this problem from taking place, and thereby reduce their insurance claims.[7][8]

Superheated steam boiler

A superheated boiler on the steam locomotive.
Main article: Superheater
Most boilers produce steam to be used at saturation heat; that is, saturated vapor. Superheated steam boilers vaporize the water and then further heat the vapor in a superheater. This provides vapor at higher temperatures, but can decrease the overall thermal efficiency of the steam generating herb because the higher vapor heat range takes a higher flue gas exhaust heat.[citation needed] There are many ways to circumvent this problem, by providing an economizer that heats the give food to drinking water typically, a combustion air heater in the hot flue gas exhaust path, or both. There are advantages to superheated steam that may, and often will, increase overall efficiency of both steam generation and its utilization: increases in input heat to a turbine should outweigh any cost in additional boiler complication and expense. There can also be useful restrictions in using wet steam, as entrained condensation droplets will damage turbine blades.

Superheated steam presents unique safety concerns because, if any system component fails and allows steam to escape, the high pressure and temperature can cause serious, instantaneous harm to anyone in its path. Since the escaping steam will be completely superheated vapor, detection can be difficult, although the intense heat and sound from such a leak obviously indicates its presence.

Superheater operation is similar to that of the coils on an air conditioning unit, although for a different purpose. The steam piping is directed through the flue gas path in the boiler furnace. The temperature in this field is between 1 typically,300 and 1,600 °C (2,372 and 2,912 °F). Some superheaters are glowing type; that is, they absorb high temperature by radiation. Others are convection type, absorbing heat from a liquid. Some are a combination of the two types. Through either method, the extreme heat in the flue gas route will also temperature the superheater steam piping and the vapor within. While the temperature of the vapor in the superheater increases, the pressure of the vapor does not and the pressure remains the same as that of the boiler.[9] Virtually all steam superheater system designs remove droplets entrained in the steam to avoid damage to the turbine blading and associated piping.

Supercritical steam generator

Boiler for a charged power plant.
Main article: Supercritical steam generator
Supercritical steam generators are frequently used for the production of electric power. They operate at supercritical pressure. In contrast to a "subcritical boiler", a supercritical steam generator operates at such a high pressure (over 3,200 psi or 22 MPa) that the physical turbulence that characterizes boiling ceases to occur; the liquid is neither liquid nor gas but a super-critical liquid. There is no era of steam bubbles within water, because the pressure is above the critical pressure point at which steam bubbles can develop. As the liquid expands through the turbine levels, its thermodynamic condition drops below the critical point as it can work turning the turbine which converts the electrical generator from which power is eventually extracted. The liquid at that time may be a mixture of steam and liquid droplets as it goes by into the condenser. This leads to less fuel use and for that reason less greenhouse gas production slightly. The term "boiler" shouldn't be used for a supercritical pressure steam generator, as no "boiling" occurs in this device.
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Accessories
Boiler accessories and fittings
Pressuretrols to control the vapor pressure in the boiler. Boilers generally have two or three 3 pressuretrols: a manual-reset pressuretrol, which functions as a protection by setting top of the limit of steam pressure, the operating pressuretrol, which controls when the boiler fires to keep up pressure, as well as for boilers outfitted with a modulating burner, a modulating pressuretrol which handles the quantity of fire.
Protection valve: It is utilized to relieve pressure and prevent possible explosion of a boiler.
Water level indications: They show the operator the level of fluid in the boiler, also known as a view glass, water measure or drinking water column.
Bottom blowdown valves: They provide a way for removing solid particulates that condense and lie on the bottom of the boiler. As the name indicates, this valve is usually located directly on underneath of the boiler, and is sometimes opened up to use the pressure in the boiler to press these particulates out.
Constant blowdown valve: This allows a small quantity of water to escape continuously. Its purpose is to avoid water in the boiler becoming saturated with dissolved salts. Saturation would business lead to foaming and cause water droplets to be carried over with the vapor - a condition known as priming. Blowdown is often used to monitor the chemistry of the boiler water also.
Trycock: a kind of valve that is often use to manually check a liquid level in a container. Most found on a water boiler commonly.
Flash tank: High-pressure blowdown enters this vessel where the steam can 'flash' safely and become found in a low-pressure system or be vented to atmosphere as the ambient pressure blowdown moves to drain.
Automatic blowdown/constant heat recovery system: This technique allows the boiler to blowdown only when make-up water is flowing to the boiler, thereby transferring the maximum amount of heat possible from the blowdown to the make-up water. No flash container is normally needed as the blowdown discharged is near to the temp of the makeup water.
Hand openings: They may be metal plates installed in openings in "header" to allow for inspections & installation of pipes and inspection of inner surfaces.
Vapor drum internals, a series of display screen, scrubber & cans (cyclone separators).
Low-water cutoff: It really is a mechanical means (usually a float change) that can be used to turn off the burner or shut off energy to the boiler to prevent it from working once the water moves below a certain point. If a boiler is "dry-fired" (burnt without water in it) it can cause rupture or catastrophic failure.
Surface blowdown line: It provides a means for removing foam or other light-weight non-condensible substances that have a tendency to float together with the water inside the boiler.
Circulating pump: It is designed to circulate drinking water back again to the boiler after it has expelled a few of its heat.
Feedwater check valve or clack valve: A non-return stop valve in the feedwater range. This can be fitted to the relative aspect of the boiler, just below water level, or to the very best of the boiler.[10]
Top feed: In this design for feedwater injection, water is fed to the very best of the boiler. This may reduce boiler fatigue caused by thermal stress. By spraying the feedwater over some trays water is quickly warmed which can reduce limescale.
Desuperheater pipes or bundles: A series of tubes or bundles of pipes in the water drum or the vapor drum made to cool superheated steam, in order to supply auxiliary equipment that does not need, or may be damaged by, dry steam.
Chemical substance injection line: A link with add chemicals for controlling feedwater pH.
Steam accessories
Main vapor stop valve:
Steam traps:
Main vapor stop/check valve: It is used on multiple boiler installations.
Combustion accessories
Gas oil system:gasoline oil heaters
Gas system:
Coal system:
Soot blower
Other essential items
Pressure gauges:
Feed pumps:
Fusible plug:
Inspectors test pressure gauge attachment:
Name plate:
Registration plate:

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