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With a fleet of R22 helicopters, prefer to train existing stockmen employed with the company into this skilled position, however we also employ pilots when necessary who are experienced in the stockcamp, and have a working knowledge of mustering cattle from the ground.

Leading a team of approximately six, when possible the head stockperson is promoted from within an existing stockcamp.

HR license is essential. Positions are available across the company for both experienced and beginner stock people.

While both horses and motorbikes are used for mustering, recruits must have a minimum level of horse handling skills to gain employment.

Cattle handling skills are a definite advantage, although not crucial. Many skills will be learnt on the job, so an enthusiastic attitude is essential.

Both male and female accommodation is available, and the stock men and women enjoy a team atmosphere.

The majority of recruitment for these positions occurs before the new mustering season begins in late January to early February, although positions do become available throughout the year.

Positions are available for Grader and Loader operators. A fleet of modern Cat 12G and G graders are used to maintain station road, airstrips and fence lines.

The operator must be capable of basic day to day maintenance. The station cook is an integral part of station life and atmosphere.

Cooking for around 10 20 people on the station, the station cook prepares a wide variety of meals, desserts, biscuits and cakes, and works closely with both the management of the station and the stockcamp.

The cook enjoys private en-suited accommodation. Applicants must have cooking experience, maintain a clean hygienic environment, be punctual and enjoy working in a team environment.

The skill requirement varies greatly from trained teacher to passionate school leaver, the one common thread being a love of children and wanting to work and experience life in an outback schoolroom.

The governess follows a well planned schedule provided by the Schools that are situated in the closest large centre, such as Mount Isa and Cairns.

The station gardening position requires a fit and active person with a true interest in gardening. The gardens are expansive, requiring attention with a range of equipment such as ride on and push lawn mowers, whipper snippers, mulchers and blowers.

Watering, fertilizing, pruning, potting, planting and sweeping are amongst the many gardening duties involved. The magnets are usually near absolute zero, while the channel is several thousand degrees.

Magnesium peroxide degrades near moisture. Alumina is water-resistant and can be fabricated to be quite strong, so in practice most MHDs have used alumina for the insulating walls.

For the electrodes of clean MHDs i. Coal-burning MHDs have intensely corrosive environments with slag. The slag both protects and corrodes MHD materials.

In particular, migration of oxygen through the slag accelerates corrosion of metallic anodes. The spinel was reported to have electronic conductivity, absence of a resistive reaction layer but with some diffusion of iron into the alumina.

The diffusion of iron could be controlled with a thin layer of very dense alumina, and water cooling in both the electrodes and alumina insulators.

Attaching the high temperature electrodes to conventional copper bus bars is also challenging. The usual methods establish a chemical passivation layer, and cool the busbar with water.

MHD generators have not been employed for large scale mass energy conversion because other techniques with comparable efficiency have a lower lifecycle investment cost.

Advances in natural gas turbines achieved similar thermal efficiencies at lower costs, by having the turbine's exhaust drive a Rankine cycle steam plant.

To get more electricity from coal, it is cheaper to simply add more low-temperature steam-generating capacity. A coal-fueled MHD generator is a type of Brayton power cycle , similar to the power cycle of a combustion turbine.

However, unlike the combustion turbine, there are no moving mechanical parts; the electrically conducting plasma provides the moving electrical conductor.

The side walls and electrodes merely withstand the pressure within, while the anode and cathode conductors collect the electricity that is generated.

All Brayton cycles are heat engines. Ideal Brayton cycles also have an ideal efficiency equal to ideal Carnot cycle efficiency.

Thus, the potential for high energy efficiency from an MHD generator. All Brayton cycles have higher potential for efficiency the higher the firing temperature.

This upper bound in temperature limits the energy efficiency in combustion turbines. The upper bound on Brayton cycle temperature for an MHD generator is not limited, so inherently an MHD generator has a higher potential capability for energy efficiency.

The temperatures at which linear coal-fueled MHD generators can operate are limited by factors that include: a the combustion fuel, oxidizer, and oxidizer preheat temperature which limit the maximum temperature of the cycle; b the ability to protect the sidewalls and electrodes from melting; c the ability to protect the electrodes from electrochemical attack from the hot slag coating the walls combined with the high current or arcs that impinge on the electrodes as they carry off the direct current from the plasma; and d by the capability of the electrical insulators between each electrode.

These plants would recover MHD exhaust heat for oxidant preheat, and for combined cycle steam generation. However, no testing at those aggressive conditions or size has yet occurred, and there are no large MHD generators now under test.

There is simply an inadequate reliability track record to provide confidence in a commercial coal-fuelled MHD design.

U25B MHD testing in Russia using natural gas as fuel used a superconducting magnet, and had an output of 1.

A coal-fired MHD generator series of tests funded by the U. None of these tests were conducted for long-enough durations to verify the commercial durability of the technology.

Neither of the test facilities were in large-enough scale for a commercial unit. Superconducting magnets are used in the larger MHD generators to eliminate one of the large parasitic losses: the power needed to energize the electromagnet.

Superconducting magnets, once charged, consume no power, and can develop intense magnetic fields 4 teslas and higher. The only parasitic load for the magnets are to maintain refrigeration, and to make up the small losses for the non-supercritical connections.

Because of the high temperatures, the non-conducting walls of the channel must be constructed from an exceedingly heat-resistant substance such as yttrium oxide or zirconium dioxide to retard oxidation.

Similarly, the electrodes must be both conductive and heat-resistant at high temperatures. MHD reduces overall production of hazardous fossil fuel wastes because it increases plant efficiency.

However, this equipment is an additional expense. If molten metal is the armature fluid of an MHD generator, care must be taken with the coolant of the electromagnetics and channel.

The alkali metals commonly used as MHD fluids react violently with water. Also, the chemical byproducts of heated, electrified alkali metals and channel ceramics may be poisonous and environmentally persistent.

The first practical MHD power research was funded in in the U. The initial patent on MHD is by B. Karlovitz, U.

Patent No. World War II interrupted development. Brian C. The group set up a steering committee to set up further conferences and disseminate ideas.

In , the group set up a second conference in Paris, France, in consultation with the European Nuclear Energy Agency.

Further research in the s by R. Rosa established the practicality of MHD for fossil-fueled systems. V generator of It began issuing a periodic status report in This pattern persisted, in this institutional form, up until Toward the end of the s, interest in MHD declined because nuclear power was becoming more widely available.

In the late s, as interest in nuclear power declined, interest in MHD increased. It was here it was first patented.

In the s, the U. A great deal of engineering, chemistry and material science was completed. After final components were developed, operational testing completed with 4, hours of continuous operation, 2, on Montana Rosebud, 2, on Illinois No.

The testing ended in The Japanese program in the late s concentrated on closed-cycle MHD. The belief was that it would have higher efficiencies, and smaller equipment, especially in the clean, small, economical plant capacities near megawatts electrical which are suited to Japanese conditions.

Open-cycle coal-powered plants are generally thought to become economical above megawatts. These experiments extracted up to Some authorities believe this system was a disc generator with a helium and argon carrier gas and potassium ionization seed.

The basic MHD design was to be a system with inert gases using a disk generator. A joint U. This established centres of research in:.

In the natural-gas fired U plant was completed near Moscow, with a designed capacity of 25 megawatts. By it delivered 6 megawatts of power.

U's bottoming plant was actually operated under contract with the Moscow utility, and fed power into Moscow's grid. There was substantial interest in Russia in developing a coal-powered disc generator.

In the first industrial power plant with MHD generator was built, but in the project was cancelled before MHD launch and this power plant later joined to Ryazan Power Station as a 7th unit with ordinary construction.

From Wikipedia, the free encyclopedia. Redirected from MHD generator. Energy portal. June Theory and Experiments" PDF.

AIAA Journal. September The Physics of Fluids. Bibcode : PhFl Journal of Applied Physics. Bibcode : JAP Hall instability of current carrying slightly ionized plasmas.

Newcastle upon Tyne, England. Paper Hubert; E. Volume IV. Proceedings of the conference held July , Paris, France.

Bibcode : pig4. Ya Ionization instability of a plasma with hot electrons PDF. Belgrade, Yugoslavia.

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Many skills will be learnt on the job, so an enthusiastic attitude is essential. Both male and female accommodation is available, and the stock men and women enjoy a team atmosphere.

The majority of recruitment for these positions occurs before the new mustering season begins in late January to early February, although positions do become available throughout the year.

Positions are available for Grader and Loader operators. A fleet of modern Cat 12G and G graders are used to maintain station road, airstrips and fence lines.

The operator must be capable of basic day to day maintenance. The station cook is an integral part of station life and atmosphere.

Cooking for around 10 20 people on the station, the station cook prepares a wide variety of meals, desserts, biscuits and cakes, and works closely with both the management of the station and the stockcamp.

The cook enjoys private en-suited accommodation. Applicants must have cooking experience, maintain a clean hygienic environment, be punctual and enjoy working in a team environment.

The skill requirement varies greatly from trained teacher to passionate school leaver, the one common thread being a love of children and wanting to work and experience life in an outback schoolroom.

The governess follows a well planned schedule provided by the Schools that are situated in the closest large centre, such as Mount Isa and Cairns.

The station gardening position requires a fit and active person with a true interest in gardening. The gardens are expansive, requiring attention with a range of equipment such as ride on and push lawn mowers, whipper snippers, mulchers and blowers.

Watering, fertilizing, pruning, potting, planting and sweeping are amongst the many gardening duties involved. The gardener may also be called on to assist in other ways if suitable, such as driving a vehicle to the nearest town.

The Bore Runner is responsible for checking and maintaining stock watering points and maintaining fences around the station.

Applicants must be self motivated with an ability to work unsupervised. The Handyman duties will vary from station to station and will be determined by the Station Manager.

Steam flaking experience is an advantage but not essential. Training and the opportunity for responsibility and further advancement will be provided to the right people.

The peak enthalpy extraction in these experiments reached However, the exhaust of an MHD generator burning fossil fuel is almost as hot as a flame.

By routing its exhaust gases into a heat exchanger for a turbine Brayton cycle or steam generator Rankine cycle , MHD can convert fossil fuels into electricity with an estimated efficiency up to 60 percent, compared to the 40 percent of a typical coal plant.

A magnetohydrodynamic generator might also be the first stage of a gas-cooled nuclear reactor. MHD generators have difficult problems in regard to materials, both for the walls and the electrodes.

Materials must not melt or corrode at very high temperatures. Exotic ceramics were developed for this purpose, and must be selected to be compatible with the fuel and ionization seed.

The exotic materials and the difficult fabrication methods contribute to the high cost of MHD generators. Also, MHDs work better with stronger magnetic fields.

The most successful magnets have been superconducting , and very close to the channel. A major difficulty was refrigerating these magnets while insulating them from the channel.

The problem is worse because the magnets work better when they are closer to the channel. There are also severe risks of damage to the hot, brittle ceramics from differential thermal cracking.

The magnets are usually near absolute zero, while the channel is several thousand degrees. Magnesium peroxide degrades near moisture.

Alumina is water-resistant and can be fabricated to be quite strong, so in practice most MHDs have used alumina for the insulating walls. For the electrodes of clean MHDs i.

Coal-burning MHDs have intensely corrosive environments with slag. The slag both protects and corrodes MHD materials.

In particular, migration of oxygen through the slag accelerates corrosion of metallic anodes. The spinel was reported to have electronic conductivity, absence of a resistive reaction layer but with some diffusion of iron into the alumina.

The diffusion of iron could be controlled with a thin layer of very dense alumina, and water cooling in both the electrodes and alumina insulators.

Attaching the high temperature electrodes to conventional copper bus bars is also challenging. The usual methods establish a chemical passivation layer, and cool the busbar with water.

MHD generators have not been employed for large scale mass energy conversion because other techniques with comparable efficiency have a lower lifecycle investment cost.

Advances in natural gas turbines achieved similar thermal efficiencies at lower costs, by having the turbine's exhaust drive a Rankine cycle steam plant.

To get more electricity from coal, it is cheaper to simply add more low-temperature steam-generating capacity. A coal-fueled MHD generator is a type of Brayton power cycle , similar to the power cycle of a combustion turbine.

However, unlike the combustion turbine, there are no moving mechanical parts; the electrically conducting plasma provides the moving electrical conductor.

The side walls and electrodes merely withstand the pressure within, while the anode and cathode conductors collect the electricity that is generated.

All Brayton cycles are heat engines. Ideal Brayton cycles also have an ideal efficiency equal to ideal Carnot cycle efficiency.

Thus, the potential for high energy efficiency from an MHD generator. All Brayton cycles have higher potential for efficiency the higher the firing temperature.

This upper bound in temperature limits the energy efficiency in combustion turbines. The upper bound on Brayton cycle temperature for an MHD generator is not limited, so inherently an MHD generator has a higher potential capability for energy efficiency.

The temperatures at which linear coal-fueled MHD generators can operate are limited by factors that include: a the combustion fuel, oxidizer, and oxidizer preheat temperature which limit the maximum temperature of the cycle; b the ability to protect the sidewalls and electrodes from melting; c the ability to protect the electrodes from electrochemical attack from the hot slag coating the walls combined with the high current or arcs that impinge on the electrodes as they carry off the direct current from the plasma; and d by the capability of the electrical insulators between each electrode.

These plants would recover MHD exhaust heat for oxidant preheat, and for combined cycle steam generation.

However, no testing at those aggressive conditions or size has yet occurred, and there are no large MHD generators now under test.

There is simply an inadequate reliability track record to provide confidence in a commercial coal-fuelled MHD design.

U25B MHD testing in Russia using natural gas as fuel used a superconducting magnet, and had an output of 1. A coal-fired MHD generator series of tests funded by the U.

None of these tests were conducted for long-enough durations to verify the commercial durability of the technology.

Neither of the test facilities were in large-enough scale for a commercial unit. Superconducting magnets are used in the larger MHD generators to eliminate one of the large parasitic losses: the power needed to energize the electromagnet.

Superconducting magnets, once charged, consume no power, and can develop intense magnetic fields 4 teslas and higher. The only parasitic load for the magnets are to maintain refrigeration, and to make up the small losses for the non-supercritical connections.

Because of the high temperatures, the non-conducting walls of the channel must be constructed from an exceedingly heat-resistant substance such as yttrium oxide or zirconium dioxide to retard oxidation.

Similarly, the electrodes must be both conductive and heat-resistant at high temperatures. MHD reduces overall production of hazardous fossil fuel wastes because it increases plant efficiency.

However, this equipment is an additional expense. If molten metal is the armature fluid of an MHD generator, care must be taken with the coolant of the electromagnetics and channel.

The alkali metals commonly used as MHD fluids react violently with water. Also, the chemical byproducts of heated, electrified alkali metals and channel ceramics may be poisonous and environmentally persistent.

The first practical MHD power research was funded in in the U. The initial patent on MHD is by B. Karlovitz, U. Patent No. World War II interrupted development.

Brian C. The group set up a steering committee to set up further conferences and disseminate ideas. In , the group set up a second conference in Paris, France, in consultation with the European Nuclear Energy Agency.

Further research in the s by R. Rosa established the practicality of MHD for fossil-fueled systems. V generator of It began issuing a periodic status report in This pattern persisted, in this institutional form, up until Toward the end of the s, interest in MHD declined because nuclear power was becoming more widely available.

In the late s, as interest in nuclear power declined, interest in MHD increased. It was here it was first patented. In the s, the U.

A great deal of engineering, chemistry and material science was completed. After final components were developed, operational testing completed with 4, hours of continuous operation, 2, on Montana Rosebud, 2, on Illinois No.

The testing ended in The Japanese program in the late s concentrated on closed-cycle MHD. The belief was that it would have higher efficiencies, and smaller equipment, especially in the clean, small, economical plant capacities near megawatts electrical which are suited to Japanese conditions.

Open-cycle coal-powered plants are generally thought to become economical above megawatts. These experiments extracted up to Some authorities believe this system was a disc generator with a helium and argon carrier gas and potassium ionization seed.

The basic MHD design was to be a system with inert gases using a disk generator. A joint U. This established centres of research in:. In the natural-gas fired U plant was completed near Moscow, with a designed capacity of 25 megawatts.

By it delivered 6 megawatts of power. U's bottoming plant was actually operated under contract with the Moscow utility, and fed power into Moscow's grid.

There was substantial interest in Russia in developing a coal-powered disc generator. In the first industrial power plant with MHD generator was built, but in the project was cancelled before MHD launch and this power plant later joined to Ryazan Power Station as a 7th unit with ordinary construction.

From Wikipedia, the free encyclopedia. Redirected from MHD generator. Energy portal. June Theory and Experiments" PDF. AIAA Journal.

September The Physics of Fluids. Bibcode : PhFl

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