2008年11月2日星期日

Chilled beam

There are three types of chilled beam systems. They are chilled ceilings, passive chilled beams, and active chilled beams. A chilled beam uses water to remove heat from a room instead of air. Chilled beams are a relatively recent innovation[1]. Because of water’s innate properties, it can carry significant more energy then air per unit volume. In fact, a 1" diameter pipe of water can carry the same amount of energy as an 18" x 18" duct of air. As with typical air ventilation systems, chilled beams require the water to be heated and/or cooled by a separate system outside of the space. Advantages of a chilled beam system include a reduction in noise, significant energy savings, and increased occupant comfort. Also, in conjunction with other systems, chilled beams can contribute to obtaining 4-14 LEED points for a building.

There are a few important things to remember when using a chilled beam system in a building. For removing heat with chilled water, the water only removes sensible (dry) heat. This is primarily generated by lights, computers, electronics, etc. Fresh, and dry, air must still be supplied to the room to compensate for the latent (wet) heat gains and in order to supply fresh air to a room. Latent heat is generated by things like people and, in some regions, outside air directly entering a space. Condensation will occur on the beam if the dew point of a room rises beyond that of temperature of the water being supplied to the chilled beam. The water entering the chilled beam must be approximately 1 degree Fahrenheit above the dew point of the room. [2]. However, unlike where VAV systems require the air to be cool to around the mid 40s degrees Fahrenheit, the water in a chilled beam system only needs to be cooled to around the mid to upper 50s degrees Fahrenheit. This difference requires significant less energy. It also makes resources, like geothermal cooling, the use of water reservoirs, etc., viable options for cooling a modern commercial building. Reduced energy chillers are also viable, and are currently being used, as a solution in conjunction with chilled beams.

Types of Chilled Beams
Chilled ceilings were the original chilled beam system. They came out in the European market in the late 1970s. They work by a means of convection heat transfer, and induce air movement in the room of which they are placed in. Chilled ceiling have a very low profile. Their sensible cooling capacity is approximately 24 BTU per square foot of beam. Chilled ceilings lack the ability to control the humidity of a room and must be paired with a ventilation system [3]. Their low cooling capacity has kept them out of the Unites States (US) market. They are the most energy efficient of all three systems.

Passive beams are the second generation of chilled beams. They have an increased cooling and heating capacity, and they are the first to use a pipe surround by a coil in order to form a radiator system. Primarily they are used in conjunction with an under floor air distribution system. They are an extremely effective method of taking care of the solar heat load of a building and aforementioned sensible heat loads. Their cooling capacity is approximately 400 BTU per linear foot of beam. However, as with the chilled ceiling, they too have no method for maintaining the humidity of room, and must be paired with a ventilation system in order to maintain latent heat gains .

Active chilled beams came into the HVAC scene in the early 1990s. The third generation of chilled beams, they are the first in the series to offer a system of taking care of both the sensible and latent heat gains of a room in a single package. Like the generations before, they work by bringing chilled water into the room. The novel aspect of these beams is they couple with a ventilation system. An active chilled beam blows fresh air over the coil. This allows for the fresh air and the cooling to be taken care of at the same time. While the room still requires return air ducts, and the ventilation must be hooked up to the beam, all HVAC requirements can be handled in a single unit [5]. Active chilled beams can do approximately 600 BTU per linear foot of beam. Also, because they use forced air induction, active beams can heat as well as cool a room.

First brought to market by Trox in 1996, the next generation of chilled beam is the multiservice chilled beam. Either a passive or active chilled beam can be made into a multiservice chilled beam. A multiservice beam seeks to combine building operations into one unit. These beams can contain lighting fixed, sprinkler systems, smoke detectors, security sensors, motion detectors, intercoms, power distribution centers, fiber optic distribution centers, and much more. While over 10 years old in Europe, this system is new to the United States market. In both markets the demand for these systems has grown considerably .

Next Generation
Multiservice chilled beams can also offer some unexpected bonuses. That is, multiservice chilled beams can offer a decreased building construction time. By bundling basic building services, i.e. lighting, sprinklers, communication cables, etc, the contractor only has to install one unit instead of multiple items. In past jobs, contractors have typically found a decrease of 25% installation time of the bundled building components. On top of this, because multiservice chilled beams bundle all these different services they can reduce the ceiling space required for a floor. In fact, they can lower the space required between slabs by so much that in some cases building developers have been able to gain an extra floor for every 4 stories of a building [7]. That is to say, maintaining a ceiling height of 9' 6", five floors can be built at the same height of a standard four story building. This has been a considerable return on investment for buildings in areas with height restrictions, such as Washington, D.C. or Charleston, SC.

Current Applications
The use of chilled beam systems has been primarily in the commercial arena (e.g., office space, laboratories, schools, and a few applications in hotels). The residential market is a hard adaption for chilled beams. This is because of the level of humidity control required. In certain regions, if a window is left open in proximity to a chilled beam, condensation can form on the coil. Some example of Chilled Beams in operation include London Heathrow Terminal 5 and The Constitution Center, Washington D.C. [9]. According to BSEE, we can continue to see a rocketing sale of chilled beams long into the future .

The move away from VAV, variable air volume, systems to chilled beams is a fundamental shift in building construction. This shift is taking place under a perfect storm of pressure coming from rising energy costs, increase legislation pushing green building, consumer demand for cost saving space and LEED construction, and just a general focus on concern for the environment.

NOTE:

down load scanner


desk top scanners


entertainment management system


epson 1260 scanners


file filter driver


fingerprint bioidentification system


combination play system


firewire port combo


d link modem


pen drive -128mb


dual headrest monitors


extend pro system


hydraulic sealing system


digital large printers


flunk personal stereo


epo cd rom


compact foldable earphones


eg-u-027 usb disk


clip in system


compaq tc1100 keyboard


enhance keyboard usb


chevy truck stereo


digital instrument display


epson 1280 printers


connectivity cable driver


em-2201, 2202, earphone


decoration glass disk


epson rx595 printer


ibm flatbed scanners


fluorescence/chemiluminescence imaging system

Centrifugal compressor

Centrifugal compressor, (sometimes referred to as radial compressors) are a special class of radial-flow work-absorbing turbomachinery that includes pumps, fans, blowers and compressors.

The earliest forms of these dynamic-turbomachines were pumps, fans and blowers. What differentiates these early turbomachines from compressors is that the working fluid can be considered incompressible thus permitting accurate analysis through Bernoulli's equation. In contrast, modern centrifugal compressors are higher in speed and analysis must deal with compressible flow.

For purposes of definition, centrifugal compressors often have density increases greater than 5 percent. Also, they often experience relative fluid velocities above Mach 0.3 when the working fluid is air or nitrogen. In contrast, fans or blowers are often considered to have density increases of less than 5 percent and peak relative fluid velocities below Mach 0.3-0.5

In an idealized sense, the dynamic compressor achieves a pressure rise by adding kinetic-energy/velocity to a continuous flow of fluid through the rotor or impeller. This kinetic energy is then converted to an increase in static pressure by slowing the flow through a diffuser.

Advantages
Centrifugal compressors are used throughout industry because they have fewer rubbing parts, are relatively energy efficient, and give higher airflow than a similarly sized reciprocating compressor (i.e. positive-displacement). Their primary drawback is that they cannot achieve the high compression ratio of reciprocating compressors without multiple stages. Centrifugal fan/blowers are more suited to continuous-duty applications such as ventilation fans, air movers, cooling units, and other uses that require high volume with little or no pressure increase. In contrast, multi-stage reciprocating compressors often achieve discharge pressures of 8,000 to 10,000 psi (59 MPa to 69MPa). One example of an application of centrifugal compressors is their use in re-injecting natural gas back into oil fields to increase oil production.

Centrifugal compressors are often used in small gas turbine engines like APUs (auxiliary power units) and smaller aircraft gas turbines. A significant reason for this is that with current technology, the equivalent flow axial compressor will be less efficient due primarily to a combination of rotor and variable stator tip-clearance losses. There are few single stage centrifugal compressors capable of pressure-ratios over 10:1, due to stress considerations which severely limit the compressor's safety, durability and life expectancy.

Additionally for aircraft gas-turbines; centrifugal flow compressors offer the advantages of simplicity of manufacture and relatively low cost. This is due to requiring fewer stages to achieve the same pressure rise. The fundamental reason for this stems from a centrifugal compressor's large change in radius (relative to a multi-stage axial compressor); it is the change in radius that allows the centrifugal to generate large increases in fluid energy over a axial short distance.

Operating limits
Many centrifugal compressors have one or more of the following operating limits:

Minimum Operating Speed - the minimum speed for acceptable operation, below this value the compressor may be controlled to stop or go into an "Idle" condition.

Maximum Allowable Speed - the maximum operating speed for the compressor. Beyond this value stresses may rise above prescribed limits and rotor vibrations may increase rapidly. At speeds above this level the equipment will likely become very dangerous and be controlled to slower speeds.

Stonewall or Choke - occurs under one of 2 conditions. Typically for high speed equipment, as flow increases the velocity of the gas/fluid can approach the gas/fluid's sonic speed somewhere within the compressor stage. This location may occur at the impeller inlet "throat" or at the vaned diffuser inlet "throat". In most cases, it is generally not detrimental to the compressor. For low speed equipment, as flows increase, losses increase such that the pressure ratio drops to 1:1.

Surge - is the point at which the compressor cannot add enough energy to overcome the system resistance. This causes a rapid flow reversal (i.e. surge). As a result, high vibration, temperature increases, and rapid changes in axial thrust can occur. These occurrences can damage the rotor seals, rotor bearings, the compressor driver and cycle operation. Most turbomachines are designed to easily withstand occasional surging. However, if the turbomachine is forced to surge repeatedly for a long period of time or if the turbomachine is poorly designed, repeated surges can result in a catstrophic failure. Of particular interest, is that while turbomachines may be very durable, the cycles/processes that they are used within can be far less robust.

NOTE:

detox footbath system


d link webcam


hl-y037 lcd monitor


door hanger printers


fujitsu m4097d scanner


ceramic frictional disk


desktop gaming computers


heated mouse usb


double parking system


dsc security system


easyworking collaboration system


fingerprint i.d. system


earphone & headphone


dust collecting system


drum electric used


home cabling system


dell original keyboard


hydraulic servo system


clarion headrest monitors


electric controlled system


hibore xl drivers


heartshape flash disk


desktop thermal printer


freezer, cooler system


dvd no disk


electrical toy keyboard


desktop album display


compaq internet modem


e-700, stereo earphone


easy share computer

Central heating

A central-heating system provides warmth to the whole interior of a building (or portion of a building) from one point to multiple rooms.

When combined with other systems in order to control the building climate, the whole system may comprise a HVAC (heating, ventilation and air conditioning).

Central heating differs from local heating in that the heat generation occurs in one place, such as a furnace room in a house or a mechanical room in a large building (though not necessarily at the "central" geometric point). The most common method of heat generation involves the combustion of fossil fuel in a furnace or boiler. The resultant heat then gets distributed: typically by forced-air through ductwork, by water circulating through pipes, or by steam fed through pipes. Increasingly, buildings utilize solar-powered heat sources, in which case the distribution system normally uses water circulation.

In much of northern Europe and in urban portions of Russia, where people seldom require air conditioning in homes due to the temperate climate, most new housing comes with central heating installed. Such areas normally use gas heaters, district heating, or oil-fired systems. In the western and southern United States natural-gas-fired central forced-air systems occur most commonly; these systems and central-boiler systems both occur in the far northern regions of the USA. Steam-heating systems, fired by coal, oil or gas, feature in the USA, Russia and Europe: primarily for larger buildings. Electrical heating systems occur less commonly and are only practical with low cost electricity or when geothermal heat pumps are used. Considering the combined system of central generating plant and electric resistance heating, the overall efficiency will be less than for direct use of fossil fuel for space heating.

History
Cities in the northern Roman Empire used central heating systems c. 100 AD, conducting air heated by furnaces through empty spaces under the floors and out of pipes in the walls — a system known as a hypocaust.[1] A similar system of central heating was used in ancient Korea, where it is known as ondol. It is thought that the ondol system dates back to the Koguryo or Three Kingdoms (37 BC-AD 668) period when excess heat from stoves were used to warm homes.

The hypocaust continued to be used in the Mediterranean region during late Antiquity and by the Umayyad caliphate. By the 12th century, Muslim engineers in Syria introduced an improved central heating system, where heat travelled through underfloor pipes from the furnace room, rather than through a hypocaust. This central heating system was widely used in bath-houses throughout the medieval Islamic world.

In the 13th century, the Cistercian monks revived central heating in Christian Europe using river diversions combined with indoor wood-fired furnaces. The well-preserved Royal Monastery of Our Lady of the Wheel (founded 1202) on the Ebro River in the Aragon region of Spain provides an excellent example of such an application.

By about 1700 Russian engineers had started designing hydrologically based systems for central heating. The Summer Palace (1710–1714) of Peter the Great in Saint Petersburg provides the best extant example. Slightly later, in 1716, came the first use of water in Sweden to distribute heat in buildings. Martin Triewald, a Swedish engineer, used this method for a greenhouse at Newcastle upon Tyne. Jean Simon Bonnemain (1743–1830), a French architect,[3] introduced the technique to industry on a cooperative, at Château du Pêcq, near Paris.

Angier March Perkins developed and installed some of the earliest steam-heating systems in the 1830s. The first was installed in the home of Governor of the Bank of England John Horley Palmer so that he could grow grapes in England's cold climate.[4]

Water heating
Common components of a central-heating system using water-circulation include:

Gas supply lines (sometimes including a propane tank), oil tank and supply lines or district heating supply lines
Boiler (or a heat exchanger for district heating) — heats water in a closed-water system
Pump — circulates the water in the closed system
Radiators — wall-mounted panels through which the heated water passes in order to release heat into rooms
Engineers in the United Kingdom and in other parts of Europe commonly combine the needs of room heating with hot-water heating and storage. These systems occur less commonly in the USA. In this case, the heated water in a sealed system flows through a heat exchanger in a hot-water tank or hot-water cylinder where it heats water from the normal water supply before that water gets fed to hot-water outlets in the house. These outlets may service hot-water taps or appliances such as washing machines or dishwashers.

Sealed water-circulating system
A sealed system provides a form of central heating in which the water used for heating usually circulates independently of the building's normal water supply. A pressure vessel contains compressed gas, separated from the sealed-system water by a diaphragm. This allows for normal variations of pressure in the system. A safety valve allows water to escape from the system when pressure becomes too high, and a valve can open to replenish water from the normal water supply if the pressure drops too low. Sealed systems offer an alternative to open-vent systems, in which steam can escape from the system, and gets replaced from the building's water supply via a feed and central storage system.

Electric and gas-fired heaters
Electric heating or resistance heating converts electricity directly to heat. Electric heat is often more expensive than heat produced by combustion appliances like natural gas, propane, and oil. Electric resistance heat can be provided by baseboard heaters, space heaters, radiant heaters, furnaces, wall heaters, or thermal storage systems.

Electric heaters are usually part of a fan coil which is part of a central air conditioner. They circulate heat by blowing air across the heating element which is supplied to the furnace through return air ducts. Blowers in electric furnaces move air over one to five resistance coils or elements which are usually rated at five kilowatts. The heating elements activate one at a time to avoid overloading the electrical system. Overheating is prevented by a safety switch called a limit controller or limit switch. This limit controller may shut the furnace off if the blower fails or if something is blocking the air flow. The heated air is then sent back through the home through supply ducts.

In larger commercial applications, central heating is provided through an air handler which incorporates similar components as a furnace but on a larger scale.

Hydronic and steam systems
Hydronic heating systems are systems that circulate a medium for heating. Hydronic radiant floor heating systems use a boiler or district heating to heat up hot water and a pump to circulate the hot water in plastic pipes installed in a concrete slab. The pipes, embedded in the floor, carry heated water that conducts warmth to the surface of the floor where it broadcasts energy to the room.

Hydronic systems circulate hot water for heating. Steam heating systems are similar to heating water systems, except steam is used as the heating medium instead of water.

Hydronic heating systems generally consist of a boiler or district heating heat exchanger, hot water circulating pumps, distribution piping, and a fan coil unit or a radiator located in the room or space. Steam heating systems are similar except no circulating pumps are required.

Hydronic systems are closed loop: the same fluid is heated and then reheated. Hydronic heating systems are also used with antifreeze solutions in ice and snow melt systems for walkways, parking lots and streets. They are more commonly used in commercial and whole house radiant floor heat projects, while electric radiant heat systems are more commonly used in smaller "spot warming" applications.

Heat pumps
In mild climates a heat pump can be used to air condition the building during hot weather, and to warm the building using heat extracted from outdoor air in cold weather. Air-source heat pumps are generally uneconomic for outdoor temperatures much below freezing. In colder climates, geothermal heat pumps can be used to extract heat from the ground. For economy, these systems are designed for average low winter temperatures and use supplemental heating for extreme low temperature conditions. The advantage of the heat pump is that it reduces the purchased energy required for building heating; often geothermal source systems also supply domestic hot water. Even in places where fossil fuels provide most electricity, a geothermal system may offset greenhouse gas production since most of the energy furnished for heating is supplied from the environment, with only 15–30% purchased

Environmental aspects
From an energy-efficiency standpoint considerable heat gets lost or goes to waste if only a single room needs heating, since central heating has distribution losses and (in the case of forced-air systems particularly) may heat some unoccupied rooms without need. In such buildings which require isolated heating, one may wish to consider non-central systems such as individual room heaters, fireplaces or other devices. Alternatively, architects can design new buildings to use low-energy building techniques which can virtually eliminate the need for heating, such as those built to the Passive House standard.

However, if a building does need fully heating, combustion central heating offers a more environmentally friendly solution than electric-air central heating or than other direct electric heating devices. This stems from the fact that most electricity originates remotely using fossil fuels, with up to two-thirds of the energy in the fuel lost (unless utilized for district heating) at the power station and in transmission losses. In Sweden proposals exist to phase out direct electric heating for this reason (see oil phase-out in Sweden). Nuclear and hydroelectric sources reduce this factor.

In contrast, hot-water central-heating systems can use water heated in or close to the building using high-efficiency condensing boilers, biofuels, or district heating. Wet underfloor heating has proven ideal. This offers the option of relatively easy conversion in the future to use developing technologies such as heat pumps and solar combisystems, thereby also providing future-proofing.

Typical efficiencies for central heating are: 85-97% for gas fired heating; 80-89% for oil-fired, and 45-60% for coal-fired heating.

NOTE:

eg-u-006 usb disk


durabrand shelf system


drive apple computer


enote flash drive


e support system


color filter printer


emachines lcd monitor


ds lite lcd


ec140 cooling system


common ink printer


desk top scanner


compaq external modem


clear advantage system


china pop display


flyby bluetooth headset


circuit city printers


emu stereo headset


copy protection system


continued ink system


china trade surplus


hewlett packard spaceball


chip mars pro


exadel studio pro


dei viper system


earbone control headset


eg-u-004 usb disk


easylink combo drive


huawei usb modem


dujiangyan irrigation system


essential com pdf

Building insulation

Building insulation refers broadly to any object in a building used as insulation for any purpose. Whilst the majority of insulation in buildings is for thermal purposes, the term also applies to acoustic insulation, fire insulation, and impact insulation (eg. for vibrations caused by industrial applications). Often an insulation material will be chosen for its ability to perform several of these functions at once.

Thermal Insulation
Thermal insulation in buildings is an important factor to achieving thermal comfort for its occupants. Insulation reduces unwanted heat loss or gain and can decrease the energy demands of heating and cooling systems. It does not necessarily deal with issues of adequate ventilation and may or may not affect the level of sound insulation. In a narrow sense insulation can just refer to the insulation materials employed to slow heat loss, such as: cellulose, fiberglass, rock wool, polystyrene, urethane foam, vermiculite But it can also involve a range of designs and techniques to address the main modes of heat transfer - conduction, radiation and convection materials.and earth or soil.

The effectiveness of insulation is commonly evaluated by its R-value. However, an R-value does not take into account the quality of construction or local environmental factors for each building. Construction quality issues include inadequate vapour barriers, and problems with draft-proofing. In addition, the construction properties and density of the insulation material itself is critical. For example, according to Leah Twings, Quality Compliance Manager of Textrafine Insulation, fiberglass insulation materials made from short strands of glass layered over each other is not as durable as insulation made from long entangled strands of glass.

Planning
How much insulation a house should have depends on building design, climate, energy costs, budget, and personal preference. Regional climates make for different requirements. Building codes specify only the bare minimum; insulating beyond what code requires is often recommended.

The insulation strategy of a building needs to be based on a careful consideration of the mode of energy transfer and the direction and intensity in which it moves. This may alter throughout the day and from season to season. It is important to choose an appropriate design, the correct combination of materials and building techniques to suit the particular situation.

In the USA
An initial estimate of insulation needs in the United States can be determined by the US Department of Energy's ZIP-code insulation calculator.

Climate

Cold climates
In cold conditions, the main aim is to reduce heat flow out of the building. The components of the building envelope - windows, roofs and walls, and air infiltration are all important sources of heat loss[3][4]; in an otherwise well insulated home, windows will then become an important source of heat transfer.[5]. The resistance to conducted heat loss for standard glazing corresponds to an R-value of about 0.17W/m2/Ko[6] (compared to 2-4W/m2/Ko for glasswool batts[7]). Losses can be reduced by good weatherisation, bulk insulation, and minimising the amount of non-insulative (particularly non-solar facing) glazing. Indoor thermal radiation can also be retarded with spectrally selective (low-e, low-emissivity) glazing. Some insulated glazing systems can double to triple R values.

Hot climates
In hot conditions, the greatest source of heat energy is solar radiation.[8]This can enter buildings directly through windows or it can heat the building shell to a higher temperature than the ambient, increasing the heat transfer through the building envelope.[9][10]The Solar Heat Gain Co-efficient (SGHC)[11] (a measure of solar heat transmittance) of standard single glazing can be around 78-85%.[12]. Solar gain can be reduced by adequate shading from the sun, light coloured roofing, spectrally selective (heat-reflective) paints and coatings and various types of insulation for the rest of the envelope. Specially coated glazing can reduce SHGC to around 10%[6]. Radiant barriers are highly effective for attic spaces in hot climates [13]. In this application, they are much more effective in hot climates than cold climates. For downward heat flow, convection is weak and radiation dominates heat transfer across an air space. Radiant barriers must face an adequate air-gap to be effective.

If refrigerative air-conditioning is employed in a hot, humid climate, then it is particularly important to seal the building envelope. Dehumidification of humid air infiltration can waste significant energy. On the other hand, some building designs are based on effective cross-ventilation instead of refrigerative air-conditioning to provide convective cooling from prevailing breezes.

Orientation - Passive Solar Design
Optimal placement of building elements (e.g. windows, doors, heaters) can play a significant role in insulation by considering the impact of solar radiation on the building and the prevailing breezes. (See Passive Solar Design) Reflective laminates can help reduce passive solar heat in pole barns, garages and metal buildings.

Building envelope
The thermal envelope defines the conditioned or living space in a house. The attic or basement may or may not be included in this area. Reducing airflow from inside to outside can help to reduce convective heat transfer significantly .

Ensuring low convective heat transfer also requires attention to building construction (weatherization) and the correct installation of insulative materials.

The less natural airflow into a building, the more mechanical ventilation will be required to support human comfort. High humidity can be a significant issue associated with lack of airflow, causing condensation, rotting construction materials, and encouraging microbial growth such as mould and bacteria. Moisture can also drastically reduce the effectiveness of insulation by creating a thermal bridge(see below). Air exchange systems can be actively or passively incorporated to address these problems.

Thermal bridge
Thermal bridges are points in the building envelope that allow heat conduction to occur. Since heat flows through the path of least resistance, thermal bridges can contribute to poor energy performance. A thermal bridge is created when materials create a continuous path across a temperature difference, in which the heat flow is not interrupted by thermal insulation. Common building materials that are poor insulators include glass and metal.

A building design may have limited capacity for insulation in some areas of the structure. A common construction design is based on stud walls, in which thermal bridges are common in wood or steel studs and joists, which are typically fastened with metal. Notable areas that most commonly lack sufficient insulation are the corners of buildings, and areas where insulation has been removed or displaced to make room for system infrastructure, such as electrical boxes (outlets and light switches), plumbing, fire alarm equipment, etc.

Thermal bridges can also be created by uncoordinated construction, for example by closing off parts of external walls before they are fully insulated. The existence of inaccessible voids within the wall cavity which are devoid of insulation can be a source of thermal bridging.

Some forms of insulation transfer heat more readily when wet, and can therefore also form a thermal bridge in this state.

The heat conduction can minimized by any of the following: reducing the cross sectional area of the bridges, increasing the bridge length, or decreasing the number of thermal bridges.

Materials
There are essentially two types of building insulation - Bulk Insulation and Reflective Insulation. Most buildings use a combination of both types to make up a total building insulation system. The type of insulation used is matched to create maximum resistance to each of the three forms of building heat transfer - Conduction, Convection, and Radiation.

Conductive and convective insulators ('Bulk insulation')
Bulk insulators block conductive heat transfer and convective flow either into or out of a building. The denser a material is, the better it will conduct heat. Because air has such low density, air is a very poor conductor and therefore makes a good insulator. Insulation to resist conductive heat transfer uses air spaces between fibers, inside foam or plastic bubbles and in building cavities like the attic. This is beneficial in an actively cooled or heated building, but can be a liability in a passively cooled building; adequate provisions for cooling by ventilation or radiation [17] are needed.

Radiant heat barriers
Radiant barriers work in conjunction with an air space to reduce radiant heat transfer across the air space. Radiant or reflective insulation reflects heat instead of either absorbing it or letting it pass through. Radiant barriers are most effective in reducing downward heat flow, because upward heat flow tends to be dominated by convection. This means that for attics, ceilings, and roofs, they are most effective in hot climates.[10] They also have some role in reducing heat losses in cool climates. However, much greater insulation can be achieved through the addition of bulk insulators (see above). Because they primarily block downward heat flow, radiant barriers can allow more night heat loss than bulk insulation.

Some radiant barriers are spectrally selective and will preferentially reduce the flow of infra-red radiation in comparison to other wavelengths. For instance low-emissivity (low-e) windows will transmit light and short-wave infra-red energy into a building but reflect back the long-wave infra-red radiation generated by interior furnishings. Similarly, special heat-reflective paints are able to reflect more heat than visible light, or vice-versa.

Thermal emissivity values probably best reflect the effectiveness of radiant barriers. Some manufacturers quote an 'equivalent' R-value for these products but these figures can be difficult to interpret.

A film of dirt or moisture can alter the emissvity and hence the performance of radiant barriers.

Installation of insulation
Insulating buildings during construction is much easier than retrofitting, as generally the insulation is hidden, and parts of the building need to be deconstructed to reach them.

NOTE:

kodak 5500 printer


c`t dbox pdf


topram card Driver


speedstream 802.11b driver


ovation offset driver


faema e91 pdf


tc4 jacking system


longs peak cam


kingsun KS-959 driver


HP And Computer


Water Condition System


Music Flash Drive


customizing windows desktop


foren lcd monitor


ms winxp pro


impact resistant system


amf exposed system


feng shui display


mobile dispatching system


Home Theaters System


samsung a900 driver


zte a37 flash


1990 c1500 stereo


elect the dead


furuno 1942 used


DMAE lucid dreams


alr 7200 drivers


huawei ec325 driver


beer fermenting system


decorative arial display

Boiler

A boiler is a closed vessel in which water or other fluid is heated. The heated or vaporized fluid exits the boiler for use in various processes or heating applications.

Overview
Diagram of a fire-tube boiler

Application
Boilers have many applications. They can be used in stationary applications to provide heat, hot water, or steam for domestic use, or in generators and they can be used in mobile applications to provide steam for locomotion in applications such as trains, ships, and boats. Using a boiler is a way to transfer stored energy from the fuel source to the water in the boiler, and then finally to the point of end use.

Materials
Construction of boilers is mainly in steel, stainless steel, and wrought iron. In live steam models, copper or brass is often used. Historically copper was often used for fireboxes (particularly for steam locomotives), because of its better thermal conductivity. The price of copper now makes this impractical.

Cast iron is used for domestic water heaters. Although these are usually termed "boilers", their purpose is to produce hot water, not steam, and so they run at low pressure and try to avoid actual boiling. The brittleness of cast iron makes it impractical for steam pressure vessels.

For much of the Victorian "age of steam", the only material for boilermaking was the highest grade of wrought iron, with assembly by rivetting. This iron was often obtained from specialist ironworks, such as Cleator Moor (UK), noted for the high quality of their rolled plate and its suitability for high reliability use in critical applications, such as high pressure boilers. 20th century practice moved towards steel and welding.

Fuel
The source of heat for a boiler is combustion of any of several fuels, such as wood, coal, oil, or natural gas. Electric steam boilers use resistance or immersion type heating elements. Nuclear fission is also used as a heat source for generating steam. Heat recovery steam generators (HRSGs) use the heat rejected from other processes such as gas turbines.

Configurations
Boilers can be classified into the following configurations:

"Pot boiler" or "Haycock boiler": a primitive "kettle" where a fire heats a partially-filled water container from below. 18th Century Haycock boilers generally produced and stored large volumes of very low-pressure steam, often hardly above that of the atmosphere. These could burn wood or most often, coal. Efficiency was very low.
Fire-tube boiler. Here, water partially fills a boiler barrel with a small volume left above to accommodate the steam (steam space). The heat source is inside a furnace or firebox that has to be kept permanently surrounded by the water in order to maintain the temperature of the heating surface just below boiling point. The furnace can be situated at one end of a fire-tube which lengthens the path of the hot gases, thus augmenting the heating surface which can be further increased by making the gases reverse direction through a second parallel tube or a bundle of multiple tubes (two-pass or return flue boiler); alternatively the gases may be taken along the sides and then beneath the boiler through flues (3-pass boiler). In the case of a locomotive-type boiler, a boiler barrel extends from the firebox and the hot gases pass through a bundle of fire tubes inside the barrel which greatly increase the heating surface compared to a single tube and further improve heat transfer. Fire-tube boilers usually have a comparatively low rate of steam production, but high steam storage capacity. Fire-tube boilers mostly burn solid fuels, but are readily adaptable to those of the liquid or gas variety.
Water-tube boiler. In this type,the water tubes are arranged inside a furnace in a number of possible configurations: often the water tubes connect large drums, the lower ones containing water and the upper ones, steam; in other cases, such as a monotube boiler, water is circulated by a pump through a succession of coils. This type generally gives high steam production rates, but less storage capacity than the above. Water tube boilers can be designed to exploit any heat source including nuclear fission and are generally preferred in high pressure applications since the high pressure water/steam is contained within narrow pipes which can withstand the pressure with a thinner wall.

Boiler for steam locomotive[3]
Flash boiler. A specialized type of water-tube boiler.
Fire-tube boiler with Water-tube firebox. Sometimes the two above types have been combined in the following manner: the firebox contains an assembly of water tubes, called thermic syphons. The gases then pass through a conventional firetube boiler. Water-tube fireboxes were installed in many Hungarian locomotives, but have met with little success in other countries.
Sectional boiler. In a cast iron sectional boiler, sometimes called a "pork chop boiler" the water is contained inside cast iron sections. These sections are assembled on site to create the finished boiler.

Safety
Historically, boilers were a source of many serious injuries and property destruction due to poorly understood engineering principles. Thin and brittle metal shells can rupture, while poorly welded or riveted seams could open up, leading to a violent eruption of the pressurized steam. Collapsed or dislodged boiler tubes could also spray scalding-hot steam and smoke out of the air intake and firing chute, injuring the firemen that loaded coal into the fire chamber. Extremely large boilers providing hundreds of horsepower to operate factories could demolish entire buildings.

A boiler that has a loss of feed water and is permitted to boil dry can be extremely dangerous. If feed water is then sent into the empty boiler, the small cascade of incoming water instantly boils on contact with the superheated metal shell and leads to a violent explosion that cannot be controlled even by safety steam valves. Draining of the boiler could also occur if a leak occurred in the steam supply lines that was larger than the make-up water supply could replace. The Hartford Loop was invented in 1919 by the Hartford Steam Boiler and Insurance Company as a method to help prevent this condition from occurring, and thereby reduce their insurance claims.

Superheated steam boilers

A superheated boiler on a steam locomotive.
Most boilers heat water until it boils, and then the steam is used at saturation temperature (i.e., saturated steam). Superheated steam boilers boil the water and then further heat the steam in a superheater. This provides steam at much higher temperature, and can decrease the overall thermal efficiency of the steam plant due to the fact that the higher steam temperature requires a higher flue gas exhaust temperature. However, there are advantages to superheated steam. For example, useful heat can be extracted from the steam without causing condensation, which could damage piping and turbine blades.

Superheated steam presents unique safety concerns because, if there is a leak in the steam piping, steam at such high pressure/temperature can cause serious, instantaneous harm to anyone entering its flow. Since the escaping steam will initially be completely superheated vapor, it is not easy to see the leak, although the intense heat and sound from such a leak clearly indicates its presence.

The superheater works like coils on an air conditioning unit, however to a different end. The steam piping (with steam flowing through it) is directed through the flue gas path in the boiler furnace. This area typically is between 1300-1600 degrees Celsius (2500-3000 degrees Fahrenheit). Some superheaters are radiant type (absorb heat by radiation), others are convection type (absorb heat via a fluid i.e. gas) and some are a combination of the two. So whether by convection or radiation the extreme heat in the boiler furnace/flue gas path will also heat the superheater steam piping and the steam within as well. It is important to note that while the temperature of the steam in the superheater is raised, the pressure of the steam is not: the turbine or moving pistons offer a "continuously expanding space" and the pressure remains the same as that of the boiler.[6]The process of superheating steam is most importantly designed to remove all droplets entrained in the steam to prevent damage to the turbine blading and/or associated piping

Supercritical steam generators
Supercritical steam generators (also known as Benson boilers) 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 3200 PSI, 22 MPa, 220 bar) that actual boiling ceases to occur, and the boiler has no water - steam separation. There is no generation of steam bubbles within the water, because the pressure is above the "critical pressure" at which steam bubbles can form. It passes below the critical point as it does work in the high pressure turbine and enters the generator's condenser. This is more efficient, resulting in slightly less fuel use. The term "boiler" should not be used for a supercritical pressure steam generator, as no "boiling" actually occurs in this device.


History of supercritical steam generation
Contemporary supercritical steam generators are sometimes referred as Benson boilers. In 1922, Mark Benson was granted a patent for a boiler designed to convert water into steam at high pressure.

Safety was the main concern behind Benson’s concept. Earlier steam generators were designed for relatively low pressures of up to about 100 bar, corresponding to the state of the art in steam turbine development at the time. One of their distinguishing technical characteristics was the riveted drum. These drums were used to separate water and steam, and were often the source of boiler explosions, usually with catastrophic consequences. However, the drum can be completely eliminated if the evaporation process is avoided altogether. This happens when water is heated at a pressure above the critical pressure and then expanded to dry steam at subcritical pressure. A throttle valve located downstream of the evaporator can be used for this purpose.

As development of Benson technology continued, boiler design soon moved away from the original concept introduced by Mark Benson. In 1929, a test boiler that had been built in 1927 began operating in the thermal power plant at Gartenfeld in Berlin for the first time in subcritical mode with a fully open throttle valve. The second Benson boiler began operation in 1930 without a pressurizing valve at pressures between 40 and 180 bar at the Berlin cable factory. This application represented the birth of the modern variable-pressure Benson boiler. After that development, the original patent was no longer used. The Benson boiler name, however, was retained.

Two current innovations have a good chance of winning acceptance in the competitive market for once-through steam generators:

A new type of heat-recovery steam generator based on the Benson boiler, which has operated successfully at the Cottam combined-cycle power plant in the central part of England,
The vertical tubing in the combustion chamber walls of coal-fired steam generators which combines the operating advantages of the Benson system with the design advantages of the drum-type boiler. Construction of a first reference plant, the Yaomeng power plant in China, commenced in 2001.

Hydronic boilers
Hydronic boilers are used in generating heat for residential and industrial purposes. They are the typical power plant for central heating systems fitted to houses in northern Europe (where they are commonly combined with domestic water heating), as opposed to the forced-air furnaces or wood burning stoves more common in North America. The hydronic boiler operates by way of heating water/fluid to a preset temperature (or sometimes in the case of single pipe systems, until it boils and turns to steam) and circulating that fluid throughout the home typically by way of radiators, baseboard heaters or through the floors. The fluid can be heated by any means...gas, wood, fuel oil, etc, but in built-up areas where piped gas is available, natural gas is currently the most economical and therefore the usual choice. The fluid is in an enclosed system and circulated throughout by means of a motorized pump. Most new systems are fitted with condensing boilers for greater efficiency. The name can be a misnomer in that, except for systems using steam radiators, the water in a properly functioning hydronic boiler never actually boils. These boilers are referred to as condensing boilers because they condense the water vapor in the flue gases to capture the latent heat of vaporization of the water produced during combustion.

NOTE:

autoroll 566 printer


iaa event monitor


commercial label printer


outdoor double-color display


tire recycling system


biodiesel processing system


motorola bluetooth hs820


3360ec solvent printer


premier sealent system


uds 201 modems


screeen grabber pro


rfactor motec display


Keyboards And Monitor


amana oven display


ic card system


new flash drive


icat dental scanner


hawk missile system


suntour brake system


speedstar a200 driver


e-sky honeybee barebones


ryukyu islands japan


programmable lcd display


bion bicycle computers


easycap capture usb


amada coma used


subaru gost driver


ctx pr710 drivers


sony dslr flash


quantum sealent system

Blower door

A blower door is a diagnostic tool designed to measure the airtightness of buildings. and to help locate air leakage sites. A blower door consists of a calibrated fan for measuring an airflow rate, and a pressure-sensing device to measure the air pressure created by the fan flow. The combination of pressure and fan-flow measurements are used to determine the building airtightness. The airtightness of a building is useful knowledge when trying to increase energy conservation or decrease indoor air pollution, or control building pressures.

Uses of blower-door testing
Blower doors can be used in a variety of types of testing. These include (but aren't limited to):

NFPA Clean Agent Retention testing (this type of testing is usually described as a door fan test rather than a blower door test)
Testing residential houses for air tightness
Testing buildings for compliance with standards for energy efficiency, such as those by the Leadership in Energy and Environmental Design (LEED) and Passive House/Passivhaus.
Testing building envelopes and window frames for water tightness and rain penetration

How blower-door tests work
A basic blower-door system includes three components: a calibrated fan, a door-panel system, and a device to measure fan flow and building pressure. The blower-door fan is temporarily sealed into an exterior doorway using the door-panel system. The fan is used to blow air into or out of the building, which creates a small pressure difference between inside and outside. This pressure difference forces air through all holes and penetrations in the building enclosure. The tighter the building (e.g. fewer holes), the less air is needed from the blower door fan to create a change in building pressure.

Blower-door airtightness measurements are presented in a number of different formats, including but not limited to:

Air flow
CFM50 is defined as the air flow (in cubic feet per minute) needed to create a 50-pascal pressure change in the building envelope. CFM50 is one of the most basic measurements of airtightness. Air flow measurements are sometimes referenced to different building pressures such as 25 or 75 pascals.

Air changes per hour at 50 pascals
In order to compare the relative airtightness of buildings, it is useful to normalize the measurements for the size of the building. This allows easy comparison of various sized buildings to each other, or to program guidelines. One of the most common ways to normalize building airtightness is to calculate the number of times per hour that the total volume of the enclosure is changed, when the enclosure is subjected to a 50-pascal pressure difference. To calculate air changes per hour, the total volume of the enclosure is required in addition to the CFM50 measurement. It is also common to use the building enclosure surface area to normalize airtightness measurements.

A pressure of 50 Pa is equal to 0.2 inches (5.1 mm) of water column.

Leakage area
Leakage area estimates are a useful way to visualize the cumulative size of all leaks or holes in the building enclosure. Estimated leakage areas can also be used in infiltration models to estimate natural infiltration rates (i.e. the air change rate under natural weather conditions). In order to accurately estimate leakage areas, it is best to conduct the blower-door test over a wide range of building pressures (e.g. 60 Pa to 15 Pa). There are a variety of standard calculation methods used to calculate leakage areas.

Leakage area per square area
Leakage area estimates can also be normalized for the size of the enclosure being tested, For example, the LEED Green Building Rating System has set an airtightness standard for multifamily dwelling units of 1.25 square inches (8.1 cm²) of leakage area per 100 square feet (9.3 m2) of enclosure area, in order to control tobacco smoke between units. This is equal to 0.868cm²/m².

NOTE:

woolworth store princeton


gateway 700g monitor


tork skull headset


ibm r40 drivers


Digital Camera Working


Video Display System


enteral closed system


Networked Storage System


scr 201 driver


hi-point atw driver


furuno radar used


Switch For Computer


defense attache system


v265 USB Connection


refubished lcd monitors


tdm line monitor


asus x80 webcam


aunt pollys dreams


retractable seating system


usb falsh drive


parking guidance system


aluminum in-ear earphone


detector protection system


Home Stereos System


color changer scanner


magnetic beaing system


polaris multi-function display


susquehanna health system


cnr v1.2 driver


motorola w315 driver

Bleed screw

A bleed screw is a device used to create a temporary opening in an otherwise closed system, which facilitates the removal of air or another substance from the system by way of pressure and density differences.

On a home radiator unit, the bleed screw can be opened, usually by means of a key, to allow air to escape from the unit. Bleed screws are also found on some pump types fulfilling a similar purpose.

They are most often located at the top of the radiator on the side where the inflow pipe is. The screw itself, usually a hexagonal or square knob, is inside a small round protrusion.

The key looks similar to that used to wind a clock. It is inserted into the protrusion, mates with the bleed screw and turns it. Opening the bleed screw then allows air which has risen to the top of the radiator system (the top of the radiator itself) to escape and new water to take its place. Removing the air and allowing water to displace it makes the radiator work more efficiently since it fills completely whereas before it did not.

On a vehicle braking systems, bleed screws, sometimes known as "bleed nipples", are at each wheel of the vehicle to allow bleeding of the braking system. Bleeding air from the brake lines is necessary for correct operation of the hydraulic system and preventing loss of braking ability after service work is performed on the vehicle's brakes.

Engine cooling systems can also have bleed screws. They usually takes the form of a bolt with a hole through the middle that is threaded into a hole on the vehicle's cylinder head. This hole goes into the water jacket of the cylinder head. When the bleed screw is loosened, antifreeze is added to the vehicle's cooling system and the increase in fluid pressure displaces air through the passage in the center of the bleed screw. When liquid begins to flow out the passage (meaning all air has been evacuated from the system) the bleed screw is tightened closed. Bleed screws are not common on cars today and are only necessary when design of a vehicle's cooling system results in areas where air can be trapped in the system.

NOTE:

variable dc drive


card shape usb


professional in-ear monitor


epson c88 driver


2007 tarmac pro


eg-u-024 usb disk


fabrication acrylic display


Notebooks And Computer


Digital Data System


MP3 Players Driver


levono notebook computer


scott tolley dds


Analog Digital System


single bluetooth headset


Network Data System


led dual-color display


solvent extraction system


computerized control system


Wide Scroll Mouse


automatic mixing system


nokia 3310 lcd


eobd2 memo scanner


hotelier learning system


hobart mixer used


multi sharing system


usb watch driver


headphone for computer


multi power monitor


solar usb flash


endoscopy camera system