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OIL RIGS and PLATFORMS

OIL PLATFORMS

An oil platform is a large structure used to house workers and machinery needed to drill and then produce oil and natural gas in the ocean. Depending on the circumstances, the platform may be attached to the ocean floor, consist of an artificial island, or be floating.

Generally, oil platforms are located on the continental shelf though as technology improves, drilling and production in ever deeper waters becomes both feasible and profitable. A typical platform may have around thirty wellheads located on the platform and directional drilling allows reservoirs to be accessed at both different depths and at remote positions up to 5 miles (8 kilometres) from the platform.

Many platforms also have remote wellheads attached by umbilical connections, these may be single wells or a manifold centre for multiple wells.

Oil Platform Hibernia

Platform types

Larger lake and sea-based oil platforms and oil rigs are some of the largest moveable man-made structures in the world. There are several distinct types of platforms and rigs:

  • Fixed Platforms, built on concrete and/or steel legs anchored directly onto the seabed, supporting a deck with space for drilling rigs, production facilities and crew quarters. Such platforms are, by virtue of their immobility, designed for very long term use (for instance the Hibernia platform). Various types of structure are used, steel jacket, concrete caisson, floating steel and even floating concrete. Steel jackets are vertical sections made of tubular steel members, and are usually piled into the seabed. Concrete caisson structures, pioneered by the Condeep concept, often have in-built oil storage in tanks below the sea surface and these tanks were often used as a flotation capability, allowing them to be built close to shore (Norwegian fjords and Scottish firths are popular because they are sheltered and deep enough) and then floated to their final position where they are sunk to the seabed. Fixed platforms are economically feasible for installation in water depths up to about 1,700 feet (520 m).

  • Compliant Towers, consist of narrow, flexible towers and a piled foundation supporting a conventional deck for drilling and production operations. Compliant towers are designed to sustain significant lateral deflections and forces, and are typically used in water depths ranging from 1,500 and 3,000 feet (450 and 900 m).

  • Semi-submersible Platforms having legs of sufficient buoyancy to cause the structure to float, but of weight sufficient to keep the structure upright. Semi-submersible rigs can be moved from place to place; and can be lowered into or raised by altering the amount of flooding in buoyancy tanks; they are generally anchored by cable anchors during drilling operations, though they can also be kept in place by the use of steerable thrusters. Semi-submersible can be used in depths from 600 to 6,000 feet (180 to 1,800 m).

  • Jack-up Platforms, as the name suggests, are platforms that can be jacked up above the sea, by dint of legs than can be lowered like jacks. These platforms, used in relatively low depths, are designed to move from place to place, and then anchor themselves by deploying the jack-like legs.

  • Drillships, a maritime vessel that has been fitted with drilling apparatus. It is most often used for exploratory drilling of new oil or gas wells in deep water but can also be used for scientific drilling. It is often built on a modified tanker hull and outfitted with a dynamic positioning system to maintain its position over the well.

  • Floating production systems are large ships equipped with processing facilities and moored to a location for a long period. The main types of floating production systems are FPSO (floating production, storage, and offloading system), FSO (floating storage and offloading system), and FSU (floating storage unit).

  • Tension-leg Platforms, consist of floating rigs tethered to the seabed in a manner that eliminates most vertical movement of the structure. TLPS are used in water depths up to about 6,000 feet (2,000 m).

  • Seastars are mini TLPs of relatively low cost, used in water depths between 600 and 3,500 feet (200 and 1,100 m). They can also be used as utility, satellite or early production platforms for larger deepwater discoveries.

  • Spar Platforms, moored to the seabed like the TLP, but whereas the TLP has vertical tension tethers the Spar has more conventional mooring lines. Spars have been designed in three configurations: the "conventional" one-piece cylindrical hull, the "truss spar" where the midsection is composed of truss elements connecting the upper buoyant hull (called a hard tank) with the bottom soft tank containing permanent ballast, and the "cell spar" which is built from multiple vertical cylinders. The Spar may be more economical to build for small and medium sized rigs than the TLP, and has more inherent stability than a TLP since it has a large counterweight at the bottom and does not depend on the mooring to hold it upright. It also has the ability, by use of chain-jacks attached to the risers, to move horizontally over the oil field. The first Spar was Kerr-McGee's Neptune, which is a floating production facility anchored in 1,930 feet (588 m) in the Gulf of Mexico. Dominion Oil's Devil's Tower is located in 5,610 feet (1,710 m) of water, in the Gulf of Mexico, and is the world's deepest spar. The first (and only) cell spar is Kerr-McGee's Red Hawk.

Oil Platform California USA

Maintenance and supply

A typical oil production platform is self-sufficient in energy and water needs, housing electrical generation, water desalinators and all of the equipment necessary to process oil and gas such that it can be either delivered directly onshore by pipeline or to a Floating Storage Unit and/or tanker loading facility. Elements in the oil/gas production process include wellhead, production manifold, production separator, glycol process to dry gas, gas compressors, water injection pumps, oil/gas export metering and main oil line pumps. All production facilities are designed to have minimal environmental impact.

Larger platforms are assisted by smaller ESVs (emergency support vessels) like the British Iolair that are summoned when something has gone wrong, e.g. when a search and rescue operation is required. During normal operations, PSVs (platform supply vessels) keep the platforms provisioned and supplied, and AHTS vessels can also supply them, as well as tow them to location and serve as standby rescue and firefighting vessels.

Risks

The nature of their operation — extraction of volatile substances sometimes under extreme pressure in a hostile environment — has risk and not infrequent accidents and tragedies occur. In July 1988, 167 people died when Occidental Petroleum's Alpha offshore production platform, on the Piper field in the North Sea, exploded after a gas leak. The accident greatly accelerated the practice of housing living accommodation on self-contained separate rigs, away from those used for extraction.

However, this was, in itself, a hazardous environment. In March 1980, the 'flotel' (floating hotel) platform Alexander L Keilland capsized in a storm in the North Sea with the loss of 123 lives.

Further risks are the leaching of heavy metals that accumulate in buoyancy tanks into water; and risks associated with their disposal. There has been concern expressed at the practice of partially demolishing offshore rigs to the point that ships can traverse across their site; there have been instances of fishery vessels snagging nets on the remaining structures. Proposals for the disposal at sea of the Brent Spar, a 137-metre (449 ft) tall storage buoy (another true function of that which is termed an oil rig), was for a time in 1996 an environmental cause célèbre in the UK after Greenpeace occupied the floating structure. The event led to a reconsideration of disposal policy in the UK and Europe, though Greenpeace, in hindsight, admitted some inaccuracies leading to hyperbole in their statements about Brent Spar.

Environmental effects

In British waters, the cost of removing all platform rig structures entirely was estimated in 1995 at £1.5 billion, and the cost of removing all structures including pipelines — a so-called "clean sea" approach — at £3 billion.

In the United States, Marine Biologist Milton Love has proposed that oil platforms off the California coast be retained as artificial reefs, instead of being dismantled (at great cost), because he has found them to be havens for many of the species of fish which are otherwise declining in the region, in the course of 11 years of research. Love is funded by mainly by government agencies, but also in small part by the California Artificial Reef Enhancement Program. NOAA has said it is considering this course of action, but wants money to study the effects of the rigs in detail.

In the Gulf of Mexico, more than 200 platforms have been similarly converted.

Mobile RC Oil Rig

Large platforms

The Petronius platform is an oil and gas platform in the Gulf of Mexico, which stands 2,000 feet (610 metres) above the ocean floor. This structure is partially supported by buoyancy. Depending on the criteria it may be the world's tallest structure.

The Hibernia platform is an oil and gas platform in the Atlantic Ocean off the coast of Newfoundland. The gravity base structure sits on the ocean floor in 200 m (660 ft) of water with its topsides extending 50 m (160 ft) above the surface. The platform acts as a small concrete island with serrated outer edges designed to withstand the impact of an iceberg. The GBS contains production storage tanks and the remainder of the void space is filled with ballast with the entire structure weighing in at 1.2 million tons.

History

The first oil platform in the world is the Oil Rocks (Neft Daşları), built near Baku in Azerbaijan. This platform was built in 1947 as an exercise of Soviet and Azeri ambition. The Oil Rocks lies 45–50 km (about 25 nautical miles) offshore on the Caspian Sea. The most unique feature of the Oil Rocks is that it is actually a functional city with a population of about 5000. The Oil Rocks is a city on the sea, with over 200 km of streets built on piles of dirt and landfill. Most of the inhabitants work on shifts; a week on Oil Rocks followed by a week on the shore. The small city includes shops, school, library, etc. After almost 60 years the Oil Rocks is still quite unique as the world's first and largest oil platform.

DRILLING RIGS

A drilling rig or oil rig is a structure housing equipment used to drill for water, oil or natural gas from underground reservoirs. Sometimes a drilling rig is also used to complete (prepare for production) the well. However, the rig itself is not involved with the extraction of the oil, its primary function is to make a hole in the ground so that the oil can be produced. Drilling rigs can also be used to drill for water or for exploration purposes, or to obtain mineral core samples.

The term can refer to a land-based rig, or a marine-based structure commonly called an 'offshore rig'. The term correctly refers to the equipment that drills the oil well including the rig derrick (which looks like a metal frame tower). Laypeople also refer to the structure upon which the rig sits and from which the wells produce as a 'rig', but this is not correct. The correct name for the structure in a marine environment is platform. A structure upon which wells produce is a production platform. A floating vessel upon which a drilling rig sits is afloating rig or semi-submersible rig because the whole purpose of the structure is for drilling.

Drilling rigs can be huge, capable of drilling through thousands of metres of the Earth's crust; large "mud pumps" are used to circulate drilling mud (slurry) through the drill bit and the casing, for cooling and removing the "cuttings" whilst a well is drilled; hoists in the rig can lift thousands of tons of pipe; other equipment can force acid or sand into reservoirs to facilitate extraction of the oil; and permanent living accommodation and catering for crews which may be greater than a hundred people in number. Marine rigs may operate many hundreds of miles or kilometres offshore with infrequent crew rotation.

Mobile Oil Well Spudder

The drilling and production of oil and gas pose a safety risk and a hazard to the environmentfrom the ignition of the entrained gas causing dangerous fires and also from the risk of oil leakage polluting water, land and groundwater. For these reasons, redundant safety systems and highly trained personnel are required by law in all countries with significant production.

Mobile drilling rigs

In early oil exploration, drilling rigs were semi-permanent in nature often being built on site and left in place after the completion of the well. In more recent times drilling rigs are expensive custom built machines that are capable of being moved from well to well. Some light duty drilling rigs are similar in nature to a mobile crane though these are more usually used to drill water wells. Larger land rigs must be broken apart into multiple sections and loads in order to move to a new location, a process which can often take weeks.

Small mobile drilling rigs are also used to drill or bore piles. Rig can range from 100 ton continuous flight auger (CFA) rigs to small air powered rigs used to drill holes in quarries, etc. These rigs use the same technology and equipment as the oil drilling rigs, just on a smaller scale.

The drilling mechanisms outlined below differ mechanically in terms of the machinery used, but also in terms of the method by which drill cuttings are removed from the cutting face of the drill and returned to surface.


OIL EXPLORATION

Since our appetite for cheap energy appears insatiable, it is necessary to search and find oil to replace the wells that are running dry. Oil rigs are used to drill exploration wells to look for oil. And oil platforms are used to drill into an oil field to extract the oil. There are several different types of oil rig and platform.

Graphic of platform heights

Types of offshore oil platforms

Notice how tall the offshore platforms are compared with the BT tower in London. The water in the North Sea is often over 200 metres deep. Floating rigs, more like ships are used to drill test holes and find oil. These are held (moored) in place by anchor chains or computer-controlled propellers.

Oil platforms are huge structures. Some have concrete legs that sit on the sea bed. They had to be made in a shipyard and towed out to sea. Some oil platforms are also held by giat sea anchors. Other platforms have metal legs - sometimes they are jacked up. People who work on oil platforms have to go to work by helicopter.

Some oil reservoirs need to be pumped. In this case, there are small pumps inside the well pipes. Also, water is pumped into the well to force the crude oil mixture out. This water is pumped down injector wells while the oil is pumped out of production well. The top end of the well is called the well head. This is where the oil is removed from the well.

An oil well gets its name from traditional water wells. It is a hole that is drilled into the ground to reach a reservoir of liquid - in this case oil. However, an oil well can be a little more complicated than a water well - especially oil wells under the sea bed. First of all, the drill thread has to be lowered to the sea bed before it can start drilling through the cap rock.

Secondly, the well often spans out horizontally once has penetrated the reservoir. This is because the oil is held in porous rock - it is not like an underground stream. Often the oil has to be pumped out of the rock. It is only oil close to the end of well that is retrieved.

CRUDE OIL

Crude oil is sold between countries in quantities called barrels. (The same measurement is used to sell whisky.)

One barrel of oil is the same as:

  • 159 litres (about 80 large fizzy drink bottle)

  • 35 gallons (enough to fit in the petrol tanks of about 4 cars)

  • 280 pints (a lot of bottles of milk)

The weight of a barrel depends on where the oil comes from. However, there are about 8 barrels in a tonne. You could fit nearly 2 million barrels of oil into a football stadium - or one and a half tankers. This is how much oil we use in the UK every day.

In 2004 the cost of a barrel of crude oil rose to a record of $50 - about £30.

Product

Gallons from

42 in barrel

chemical feedstock

1.2

refinery gas

1.9

petrol

19.5

kerosene's

4.1

diesel fuel

9.2

lubricants

0.5

fuel oil

4.1

bitumen

1.3

Gallons of fuel barrel of oil going as products are shown above and below

The oil we find underground is called crude oil. Crude oil is a mixture of hydrocarbons - from almost solid to gaseous. These were produced when tiny plants and animals decayed under layers of sand and mud millions of years ago. Crude oil has to be changed before it can be used for anything. This happens in an oil refinery.

Crude oil doesn't always look the same – it depends where it comes from. Sometimes it is almost colourless, or it can be thick and black. But crude oil usually looks like thin, brown treacle.

It's not just the appearance of crude oil that changes. Crudes from different sources have different make-ups. Some may have more of the valuable lighter hydrocarbons and some may have more of the heavier hydrocarbons. The compositions of different crudes are measured and published in assays. The refinery uses the information in these assyas to decide which crudes it will buy to make the products that its customers need at any given time.

When crude oil comes out of a well (especially an undersea well), the crude oil is often mixed with gases, water and sand. It forms an emulsion with the water that looks a bit like caramel. The sand is suspended in the emulsion, adding to the caramel effect. The sand will settle out and the water is removed using de-emulsifying agents. They have to be separated from the crude oil before it can be processed ready for transportation by tanker or pipeline.

The dissolved gases have to be removed at the well. Otherwise, they might come out of solution and cause a build up of pressure in a pipe or a tanker. The crude oil also contains sulphur. This has to be removed from any fractions that are going to be burnt because it forms sulphur dioxide which contributes to acid rain. So any fractions that go into fuels pass through hydrofiners to remove the sulphur.

Crude Oil

British scientists 'invent artificial petrol' that could cost just 90p per GALLON (and there's no carbon)

  • Hydrogen-based fuel produces no greenhouse gases so could help nations slash their carbon footprint
  • It is due to be available at the pumps in three to five years
Petrol price relief? Stephen Voller, Chief Executive of Cella Energy said he is confident the new fuel will work in existing cars

Petrol price relief? Stephen Voller, chief executive of Cella Energy said he is confident the new fuel will work in existing cars

Artificial petrol that costs 19p per litre could be on forecourts in as little as three years.

British scientists are refining the recipe for a hydrogen-based fuel that will run in existing cars and engines at the fraction of the cost of conventional petrol.

With hydrogen at its heart rather than carbon, it will not produce any harmful emissions when burnt, making it better for the environment, as well as easier on the wallet.

The first road tests are due next year and, if all goes well, the cut-price ‘petrol’ could be on sale in three to five years.

Professor Stephen Bennington, the project’s lead scientist, said: ‘In some senses, hydrogen is the perfect fuel. It has three times more energy than petrol per unit of weight, and when it burns, it produces nothing but water.

‘Our new hydrogen storage materials offer real potential for running cars, planes and other vehicles that currently use hydrocarbons.’

The fuel is expected to cost around $1.50 a gallon, or 19p a litre. Even with fuel taxes, the forecourt price is likely to be around 60p a litre – less than half the current cost.

That would bring the price of filling a 70-litre Ford Mondeo down to around £42.

Energy from hydrogen can be harnessed by burning the gas or combining it with oxygen in a fuel cell to produce electricity.

But current methods of storing hydrogen are expensive and not very safe.

How it works: Cella Energy is optimistic that drivers will not need to modify their cars in order to use the fuel

How it works: Cella Energy is optimistic that drivers will not need to modify their cars in order to use the fuel

To get round this, scientists from the Rutherford Appleton Laboratory, near Oxford, University College London and Oxford University have found a way of densely packing hydrogen into tiny beads that can be poured or pumped like a liquid.



Stephen Volker, of Cellar Energy, which is developing the technology, told Gizmag: ‘We have developed micro-beads that can be used in an existing gasoline or petrol vehicle to replace oil-based fuels.

Green energy: A hydrogen fuel bus in London. Unlike existing 'green' fuels the new fuel under development will not require motorists to upgrade their vehicles

Green energy: A hydrogen fuel bus in London. Unlike existing 'green' fuels the new fuel under development will not require motorists to upgrade their vehicles

'Early indications are that the micro-beads can be used in existing vehicles without engine modification. The materials are hydrogen-based, and so when used produce no carbon emissions at the point of use, in a similar way to electric vehicles.’

A tankful of the artificial petrol, which has yet to be given a brand name, is expected to last 300 to 400 miles, in line with conventional fuel.

But AA president Edmund King warned: ‘The fact the hydrogen is cheaper now doesn’t mean it always will be because the Government would soon get its hands on it and increase the tax.’



Future Technology and Aircraft Types

The following discussion is based on a presentation by Ilan Kroo entitled, Reinventing the Airplane: New Concepts for Flight in the 21st Century.

When we think about what may appear in future aircraft designs, we might look at recent history. The look may be frightening. From first appearances, anyway, nothing has happened in the last 40 years!


There are many causes of this apparent stagnation. The first is the enormous economic risk involved. Along with the investment risk, there is a liability risk which is of especially great concern to U.S. manufacturers of small aircraft. One might also argue that the commercial aircraft manufacturers are not doing too badly, so why argue with success and do something new? These issues are discussed in the previous section on the origins of aircraft.

Because of the development of new technologies or processes, or because new roles and missions appear for aircraft, we expect that aircraft will indeed change. Most new aircraft will change in evolutionary ways, but more revolutionary ideas are possible too.

This section will discuss several aspects of future aircraft including the following:

  • Improving the modern airplane
  • New configurations
  • New roles and requirements

Improving the Modern Airplane

Breakthroughs in many fields have provided evolutionary improvements in performance. Although the aircraft configuration looks similar, reductions in cost by nearly a factor of 3 since the 707 have been achieved through improvements in aerodynamics, structures and materials, control systems, and (primarily) propulsion technology. Some of these areas are described in the following sections.

Active Controls

Active flight control can be used in many ways, ranging from the relatively simple angle of attack limiting found on airplanes such as the Boeing 727, to maneuver and gust load control investigated early with L-1011 aircraft, to more recent applications on the Airbus and 777 aircraft for stability augmentation.

Reduced structural loads permit larger spans for a given structural weight and thus a lower induced drag. As we will see, a 10% reduction in maneuver bending load can be translated into a 3% span increase without increasing wing weight. This produces about a 6% reduction in induced drag.

Reduced stability requirements permit smaller tail surfaces or reduced trim loads which often provide both drag and weight reductions.

Such systems may also enable new configuration concepts, although even when applied to conventional designs, improvements in performance are achievable. In addition to performance advantages the use of these systems may be suggested for reasons of reliability, improved safety or ride quality, and reduced pilot workload, although some of the advantages are arguable.

New Airfoil Concepts

Airfoil design has improved dramatically in the past 40 years, from the transonic "peaky" sections used on aircraft in the 60's and 70's to the more aggressive supercritical sections used on today's aircraft. The figure below illustrates some of the rather different airfoil concepts used over the past several decades.

Continuing progress in airfoil design is likely in the next few years, due in part to advances in viscous computational capabilities. One example of an emerging area in airfoil design is the constructive use of separation. The examples below show the divergent trailing edge section developed for the MD-11 and a cross-section of the Aerobie, a flying ring toy that uses this unusual section to enhance the ring's stability.

Flow Near Trailing Edge of DTE Airfoil and Aerobie Cross-Section

Flow Control

Subtle manipulation of aircraft aerodynamics, principally the wing and fuselage boundary layers, can be used to increase performance and provide control. From laminar flow control, which seeks to reduce drag by maintaining extensive runs of laminar flow, to vortex flow control (through blowing or small vortex generators), and more recent concepts using MEMS devices or synthetic jets, the concept of controlling aerodynamic flows by making small changes in the right way is a major area of aerodynamic research. Although some of the more unusual concepts (including active control of turbulence) are far from practical realization, vortex control and hybrid laminar flow control are more likely possibilities.

Structures

Structural materials and design concepts are evolving rapidly. Despite the conservative approach taken by commercial airlines, composite materials are finally finding their way into a larger fraction of the aircraft structure. At the moment composite materials are used in empennage primary structure on commercial transports and on the small ATR-72 outer wing boxes, but it is expected that in the next 10-20 years the airlines and the FAA will be more ready to adopt this technology.

New materials and processes are critical for high speed aircraft, UAV's, and military aircraft, but even for subsonic applications concepts such as stitched resin film infusion (RFI) are beginning to make cost-competitive composite applications more believable.

Propulsion

Propulsion is the area in which most evolutionary progress has been made in the last few decades and which will continue to improve the economics of aircraft. Very high efficiency, unbelievably large turbines are continuing to evolve, while low cost small turbine engines may well revolutionize small aircraft design in the next 20 years. Interest in very clean, low noise engines is growing for aircraft ranging from commuters and regional jets to supersonic transports.

Multidisciplinary Optimization

In addition to advances in disciplinary technologies, improved methods for integrating discipline-based design into a better system are being developed. The field of multidisciplinary optimization permits detailed analyses and design methods in several disciplines to be combined to best advantage for the system as a whole.

The figure here shows the problem with sequential optimization of a design in individual disciplines. If the aerodynamics group assumes a certain structural design and optimizes the design with respect to aerodynamic design variables (corresponding to horizontal motion in the conceptual plot shown on the right), then the structures group finds the best design (in the vertical degree of freedom), and this process is repeated, we arrive at a converged solution, but one that is not the best solution. Conventional trade studies in 1 or 2 or several parameters are fine, but when hundreds or thousands of design degrees of freedom are available, the use of more formal optimization methods are necessary.

Although a specific technology may provide a certain drag savings, the advantages may be amplified by exploiting these savings in a re-optimized design. The figure to the right shows how an aircraft was redesigned to incorporate active control technologies. While the reduced static margin provides small performance gains, the re-designed aircraft provides many times that advantage. Some typical estimates for fuel savings associated with "advanced" technologies are given below. Note that these are sometimes optimistic, and cannot be simply added together.

Active Control10%
Composites20%
Laminar Flow10%
Improved Wing10%
Propulsion20%
Total70%

New Configuration Concepts

Apart from evolutionary improvements in conventional aircraft, revolutionary changes are possible when the "rules" are changed. This is possible when the configuration concept iteself is changed and when new roles or requirements are introduced.

The following images give some idea of the range of concepts that have been studied over the past few years, some of which are currently being pursued by NASA and industry.

Blended Wing Body

The BWB design is intended to improve airplane efficiency through a major change in the airframe configuration. The thick centerbody accommodates passengers and cargo without the extra wetted area and weight of a fuselage. Orginally designed as a very large aircraft with as many as 800 passengers, versions of the BWB has been designed with as few as 250 passengers and more conventional twin, podded engines.


Joined Wing

The joined wing design was developed principally by Dr. Julian Wolkovitch in the 1980's as an efficient structural arrangement in which the horizontal tail was used as a sturcural support for the main wing as well as a stabilizing surface. It is currently being considered for application to high altitiude long endurance UAVs.




Oblique Flying Wing

One of the most unusual concepts for passenger flight is the oblique wing, studied by Robert T. Jones at NASA from 1945 through the 1990s. Theoretical considerations suggest that the concept is well suited to low drag supersonic flight, while providing a structurally efficient means of achieving variable geometry.

New Roles and Requirements

In addition to new configuration ideas, new roles and requirements for aircrafrt may lead to new aircraft concepts. Some of these are summarized below.



Pacific Rim Travel

As global commerce continues to increase, the need for passenger and cargo transportation grows as well. Many have speculated that growth in pacific rim travel may be the impetus for high speed aircraft development. The figure above suggests how the time required for flight from Los Angeles to Tokyo varies with cruise Mach number. (The somewhat facetious Mach 8 aircraft requires extra time to cool off before passengers can deplane.)


Supersonic transportation (Boeing High Speed Civil Transport Concept)


Ground Effect Cargo Tranport Concept


Vehicles designed for missions other than carrying passengers include military aircraft with new constraints on radar detection (low observables), very high altitude aircraft, such as the Helios solar powered aircraft intended for atmospheric science and earth observation studies, and vehicles such as the Proteus, designed as a communications platform.

Low Observables (B2 Bomber)


Autonomous Air Vehicles (Pathfinder: a prototype for Helios solar UAV)

Halo Autonomous Air Vehicle for Communications Services (an AeroSat)

Finally a new class of air vehicles intended to provide lower cost access to space is under study. The near-term future of such designs depends on the economic health of the commercial space enterprise and it presently appears that these concepts are not likely to be seen soon.

Access to Space

Conclusions

  • Improved understanding and analysis capabilities permit continued improvement in aircraft designs
  • Exploiting new technologies can change the rules of the game, permitting very different solutions
  • New objectives and constraints may require unconventional configurations
  • Future progress requires unprecedented communication among aircraft designers, scientists, and computational specialists

Algae Oil Extraction

Oil extraction from algae is a hotly debated topic currently because this process is one of the more costly processes which can determine the sustainability of algae-based biodiesel.

In terms of the concept, the idea is quite simple: Harvest the algae from its growth medium (using an appropriate separation process), and extract the oil out of it. Extraction can be broadly categorized into two methods:

  1. Mechanical methods

The mechanical methods are further classified into:

  • Expression/Expeller press
  • Ultrasonic-assisted extraction
  1. Chemical methods

The chemical methods are further classified into:

  • Hexane Solvent Method
  • Soxhlet extraction
  • Supercritical fluid Extraction

Each of these methods has drawbacks:

  1. The mechanical press generally requires drying the algae, which is energy intensive
  2. The use of chemical solvents present safety and health issues
  3. Supercritical extraction requires high pressure equipment that is both expensive and energy intensive.

Many manufacturers of algae oil use a combination of mechanical pressing and chemical solvents in extracting oil.

Apart from these, there are some other methods which are not well-known. This includes the following:

Enzymatic extraction - Enzymatic extraction uses enzymes to degrade the cell walls with water acting as the solvent, this makes fractionation of the oil much easier. The costs of this extraction process are estimated to be much greater than hexane extraction.

Osmotic shock - Osmotic Shock is a sudden reduction in osmotic pressure, this can cause cells in a solution to rupture. Osmotic shock is sometimes used to release cellular components, such as oil.

CHALLENGES IN OIL EXTRACTION FROM ALGAE:

  • Microscopic algae suspended in water are virtually indestructible
    • Cell wall has a high elasticity modulus
    • Even when free water has been removed, wet biomass retains sufficient interstitial water to act as lubricant
  • Rupture of cell wall through mechanical friction and steam explosion is only possible when dry

BREAKTHROUGHS IN OIL EXTRACTION FROM ALGAE:

  1. a.Single-Step Extraction:

The OriginOil’s algae Single-Step oil extraction process is simpler and more efficient than current systems, without requiring chemicals or significant capital expenditure for heavy machinery.

The Single Step Process harvests, concentrates and extracts oil from algae, and separates oil, water and biomass in one step. The process does not use chemicals or heavy machinery and no initial dewatering is required, and separates the oil, water and biomass in less than an hour. The company’s Quantum Fracturing technology combines with electromagnetic pulses and pH modification to break down cell walls and release oil from the algae cells.

OriginOil’s Single-Step Algal Oil Extraction
  1. b. Continuous algal oil extraction system:

Cavitation Technologies Inc. (CTI) has developed a technology that is able to extract oil from algae on a continuous basis utilizing cavitation based extraction. CTI’s Nano reactor is used to create cavitation bubbles in a solvent material, when these bubbles collapse near the cell walls it creates shock waves and liquid jets that cause those cells walls to break and release their contents into the solvent. The company plans to license the technology to algal fuel developers.

  1. c. Extraction using nanotechnology:

Catilin and Iowa State University - Center for Catalysis (ISU-CCAT), members of the National Alliance for Advanced Biofuels and Bioproducts (NAABB), will build on their pioneering algal oil extraction technology using mesoporous nanoparticles to selectively extract and sequester targeted fuel-relevant and high value compounds within the algal lipid mixture. The balance of the algal oil, which contains free fatty acids (FFA) and triglycerides, will be converted to biodieselusing Catilin's commercially available T300 catalyst. This technology is efficient and solid catalyst provides a cost effective conversion route.

Oil extraction from Algae - A gist from the Oilgae Comprehensive Report

In the Comprehensive Oilgae Report, Oil extraction from algae deals with some of the key concepts like current methods of oil extraction, trends and developments in Algae oil extraction, Efforts and solutions, Challenges.

Oil extraction from algae employs the use of different methods which presents its own advantages and disadvantages. Therefore the prime focus is to overcome these challenges which is an important phenomenon in the production of Biofuel from algae.

  • Determining the Most Efficient and Cost Effective Extraction Method - The challenge here is that higher the efficiency of the extraction method, the higher is its cost.
  • Reducing the Energy Requirements for Extraction - Algae oil extraction is quite energy intensive and this is an important challenge to be recognized and addressed.
  • Efforts: Origin Oil’s invention of a method to extract the oil from algae with high energy efficiency that builds on the company’s first patent, Quantum Fracturing™, in which ultrasound from intense fluid fracturing breaks down algae cells and reduces the overall energy required for extraction.

  • High Cell Wall Elasticity - Cell wall and membrane have high elasticity modulus, hence extraction methods need to overcome these.
  • Efforts: A method of intense sonication of liquids can break the cell structure mechanically and improve material transfer. This effect supports the extraction of lipids from algae.

  • Insterstitial Water Decreased Extraction Effectiveness - Even when free water has been removed, wet biomass retains sufficient interstitial water to act as lubricant, thus decreasing the effectiveness of extraction, especially with cost-effective methods such as the expeller press. Efforts: Some efforts are working towards direct fermentation of still-wet algae, thereby overcoming the problem of oil extraction

NASA Technology

NASA's centers individually and in combination have developed technology that has had big impacts on general aviation, commercial and military aircraft. The following 10 technologies are examples:
illustration showing 10 technologies that have had big impacts on commercial, military and general aviation aircraft.

1. Computational fluid dynamics - During the 1970s, NASA developed sophisticated computer codes that could accurately predict the flow of a fluid using complex simulations, such as air over an aircraft's wing or fuel through a space shuttle's main engine.

Those codes became computational fluid dynamics, or CFD, which today is considered a vital tool for the study of fluid dynamics. CFD greatly reduces the time required to test and manufacture nearly any type of aircraft.

2. Composite structures - NASA first partnered with private industry during the 1970s to conduct research on how to develop strong, nonmetallic materials that could replace heavier metals and aluminums on aircraft.

Composite materials have gradually replaced metallic materials on parts of an aircraft's tail, wings, fuselage, engine cowlings, and landing gear doors. Using composite materials can reduce the overall weight of an aircraft and improve fuel efficiency.

3. Winglets - During the 1970s and 1980s, NASA studies led to the development of vertical endplates, or "winglets," that are now seen on many aircraft wings. This innovation is the first of three efforts on this list that were led by NASA Langley Research Center's pioneering scientist Richard Whitcomb, who was chief of the Transonic Aerodynamics Branch at Langley in Hampton, Va.

Winglets reduce vortices and drag, thereby improving airflow and fuel efficiency. The first aircraft to adopt winglets were within the general aviation and business jet communities. In the mid-1980s, Boeing produced the 747-400 commercial jetliner, which used winglets to increase its range.

A winglet flight test program at the NASA Dryden Flight Research Center, Edwards, Calif., in 1979-80 first validated Whitcomb's research when the test aircraft - a military version of the Boeing 707 jetliner - recorded an increased fuel mileage rate of 6.5 percent.

4. Lightning protection standards - During the 1970s and 1980s, NASA conducted extensive research and flight tests to identify the conditions that cause lightning strikes, the types of currents, and the levels of threat.

The research confirmed the data that were incorporated into design guidelines that are used in new aircraft and in flight operations to protect critical digital systems.

5. Area rule - In the 1950s, Whitcomb discovered one of the most revolutionary aeronautics technologies when he researched "area rule," a concept that helped aircraft designers avoid the disruption in airflow caused by the attachment of the wings to the fuselage.

Whitcomb deduced that removing the equivalent wing cross-sectional area from that of the fuselage cross-sectional area avoided the abrupt bump and improved the distribution of flow across the longitudinal area of the aircraft. By using the area rule, aircraft designers for decades have been able to allow aircraft to fly higher, faster, and farther.

6. Turbo AE code - During the 1990s, NASA developed a computer code that generates two-dimensional simulations of potential aeroelastic problems that can occur in jet engine blades. Such problems include flutter or fatigue that can eventually cause engine fan blades to stall or fail.

With TURBO-AE, engineers can more efficiently design thinner, lighter, faster rotating blades for today's jet engines built for higher performance, lower emissions and lower noise.

7. NASA structural analysis (NASTRAN) - In the 1960s, NASA partnered with industry to develop a common generic software program that engineers could use to model and analyze different aerospace structures, including any kind of spacecraft or aircraft.

Today, NASTRAN is an industry-standard tool for computer-aided engineering of all types of structures.

8. Digital Fly-By-Wire - During the 1960s and 1970s, Dryden researchers developed and flight test the digital fly-by-wire system, which replaced heavier and less reliable hydraulics systems with a digital computer and electric wires to send signals from the pilot to the control surfaces of an aircraft.

The F-8 Digital Fly-By-Wire flight research project in 1972-73 validated the principal concepts of all-electric flight control systems now used on nearly all modern high-performance aircraft and on military and civilian transports. It was the forerunner of current fly-by-wire systems used in the space shuttles.

9. Glass cockpit - During the 1970s and 1980s, NASA created and tested the concept of an advanced cockpit display that would replace the growing number of dial and gauge instruments that were taking up space on an aircraft's flight deck.

Called a "glass cockpit," the innovative approach uses flat panel digital displays to provide the flight deck crew with a more integrated, easily understood picture of the vehicle situation. Glass cockpits are in use on commercial, military, and general aviation aircraft, and on NASA's space shuttle fleet.

10. Supercritical airfoil - During the 1960s and 1970s, Whitcomb led a team of researchers to develop and test a series of unique geometric shapes of airfoils, or wing designs, that could be applied to subsonic transport to improve lift and reduce drag.

The resulting "supercritical airfoil" shape, when integrated with the aircraft wing, minimizes drag and helps improve the aircraft's cruise efficiency. Compared to a conventional wing, the supercritical wing is flatter on the top and rounder on the bottom with a downward curve at the trailing edge.

Results of the NASA flight research at what today is known as Dryden demonstrated that aircraft using the supercritical wing concept would have increased cruising speed, fuel efficiency (about 15 percent), and flight range over those using conventional wings. As a result, supercritical wings are now commonplace on virtually every modern subsonic commercial transport.