Showing posts with label Marine Propellers and Propulsion. Show all posts
Showing posts with label Marine Propellers and Propulsion. Show all posts

Saturday, January 21, 2012

The Future of Shipping Industry - Nuclear Ship Propulsion

Marine industry, like other fuel dependent enterprises, faces a danger of fuel shortage. At present fossil fuels feature at top on list of fuels used in this industry. Of these, diesel is the one used most frequently under various names such as gas oil, marine gas oil (DMX, DMB), intermediate fuel oil (IFO), residual fuel oil (RMA, RML) etc.

But they are under immediate danger of exhaustion. In this scenario, marine nuclear propulsion steps in as the savior. However, how much can the shipping industry rely on this new technology?

What is nuclear marine propulsion?

For those who don’t know much about it, nuclear marine propulsion refers to use of nuclear energy for purpose of propulsion of ships. It makes use of a nuclear reactor where a nuclear reaction can be carried out under controlled conditions. Such reaction produces immense energy which can be tapped and used to power anything from small vessels to a cruise ship.

9.11 Nuclear Ship Propulsion: Is it the Future of the Shipping Industry?

The nuclear reaction carried out is a fission reaction wherein a heavier molecule splits into smaller ones producing energy along with the products. This energy produced is mainly used to heat water that can be further used to produce steam for the purpose of nuclear ship propulsion.

Status of nuclear marine propulsion

Use of nuclear ships is increasing gradually though this idea has been present for long. Nuclear reactions have been used to produce energy for other commercial purposes mainly electricity production for some time now. But idea of marine propulsion using this energy was proposed somewhere in 1940s when the first design for a nuclear marine propulsion engine was made. Since then, nuclear ships have become designed and used. Right now, the marine propulsion dependent on nuclear energy is found mainly in armed forces and navy but soon commercial and domestic nuclear ships will also become just as common.

Savannah nuclear cruise ship Nuclear Ship Propulsion: Is it the Future of the Shipping Industry?

Mostly merchant cargo ships like American NS Savannah (1962-1972) and German NA Otto Hahn (1968- 1972) or nuclear powered ice breakers have been in use for brief periods. At present, only few ships based on nuclear marine propulsion are in use on experimental basis.

Why is nuclear marine propulsion a good idea?

Amongst all the speculations and standing doubts about use of marine propulsion system based on nuclear energy, there are some key factors that make this a good idea, whatever way you look at it.

  • In the current scenario of extreme fuel shortage, nuclear ships are the answer that everyone has been looking for. Energy produced from nuclear reactions is immense which can be used easily.
  • Since amount of energy produced in every reaction is quite large, a single time energy production can be used for a propulsion ship for a long time. Nuclear ships offer a refilling solution of as less as once a month. This could make shipping a speedy and hassle free process.
  • A nuclear reactor is designed to produce energy under controlled conditions. It is compact and can be moved around easily. So apprehensions about practicality of a nuclear reactor on ships, boats and vessels can be put to a rest.
  • Nuclear military ships like submarines can survive for months underwater without feeling the need to resurface for refueling. This can make combative forces much more efficient.
  • Fuel efficiency of nuclear propulsion engines is more than most of the fuels currently in use. This means that amount of energy derived from nuclear reactions per unit weight is more than any other fuel.
  • The better power to weight ratio means that nuclear ships can have better weight carrying capacity than other ships, offering quicker traveling over longer distances with greater load.
  • Nuclear ships tackle problem of air pollution too as there is no production of undesirable smoke or particular pollutants that have become a menace all over the world.

nuclear Nuclear Ship Propulsion: Is it the Future of the Shipping Industry?

Why can’t we trust this technology much right now?

The picture of a nuclear energy powered propulsion ship seems very rosy. However, there is a downside with this whole scenario. Some of the points not so good with this technology are:

  • Nuclear reactions produce immense energy, which if not controlled can lead to disastrous results. As such, even a minor fault can lead to accidents with massive implications all over the world.
  • Most apprehensions lie with use of something as dynamic as nuclear energy on ships which can be occupied by thousands of people at sometimes.
  • In case of accidents of nuclear ships, there is a huge chance of contamination of water bodies with nuclear fuels that can damage marine life and human population both. During the brief usage of such ships, the number of accidents due to minor technical faults has been proportionately large.
  • Due to the need for ships to travel across the world, there is a need for nuclear reactors to be able to bear that sort of wear and tear. The nuclear reactor should be secured to prevent its undesirable movement on the ship.
  • The major problem faced by every nuclear ship would be of disposal of nuclear waste. With increasing use of nuclear fuel all over the world, there is an increasing stack of nuclear waste that humans are still struggling to dispose of. In absence of a practical solution to dispose of excessive amount of nuclear wastes that will be produced due to such ships, there could be more problems in long run.
  • At last, one major apprehension with this energy is its political and moral implications. There will always be fear of this energy being misused which remains one of the major political reasons to be cautious about this energy.

There is a future in nuclear energy for marine propulsion but still there is a long way to go before we can see a fully fledged ship running on nuclear marine propulsion system.

Saturday, January 9, 2010

Basics of Designing a Marine Propeller - A primer for Non Naval Architects : Part 1

Marine Propellers are usually described as pushing against water in order to propel a ship forward. In fact, this isn’t quite the case. What a propeller does is apply an acceleration to a mass of water. According to Newton’s Law of Action and Reaction, the action of increasing the velocity of a mass of water in a given direction generates an equal and opposite reaction in the propeller/shaft assembly. This is described as the thrust of the propeller and it is this thrust that drives the ship forward.

The basic theory of how a propeller works was put together by three eminent Victorians, Rankine, Greenhill and RE Froude (son of our old friend William Froude) between 1865 and 1889. They envisaged an idealized propeller called a Rankine Disk Actuator which imparts a sudden uniform acceleration to all the fluid passing through it, the flow being frictionless and the water being present in unlimited quantities and the Rankine Disk working with 100 percent efficiency. In this idealized system, the energy imparted to the water by the Rankine Disk Actuator is

E = 0.5 x M x (V1-V0)(p2)

Where E is the energy required for the acceleration, M is the mass of water accelerated, V1 is the final velocity of the water and V0 is the initial velocity of the water. Due to the limitations of the text system here I can’t use superscripts so (p2) indicates squares, (p3) indicated cubes etc., etc. This is, of course, a slightly modified standard kinetic energy equation. Unfortunately, that’s the last easy bit of mathematics. Because adding any energy into the system changes the values of both V1 and V0, the equation has to be integrated between zero and t seconds where t is the time taken for the system to come to equilibrium.

Now, (V1-V0), the increase in velocity of the water, is determined by the design of the screw. Each turn of the screw accelerates a package of water from V0 to V1. Increasing the rate of revolution increases the number of those packages that goes through the Rankine Disk but does not increase the speed at which they leave the disk. This is important; it doesn’t matter how fast the screw turns or how large it is, it the design of the screw and that design only that determines the acceleration of the water. A good comparison is a road with a 55 mph speed limit - improving the quality of the road or widening it to include more lanes will increase the volume of traffic the road can handle but the speed of the traffic will only be increased by raising the speed limit.

M, the mass of the water passing through the Rankine Disk Actuator, is equivalent to the density of water times the volume of water passed. Increasing the volume (and thus the mass) of the disk can be achieved by using a larger disk and/or increasing the revolutions per minute of the propeller. In mathematical terms, the water passing through the Rankine Disk is a cylinder, the diameter of which is the diameter of the disk and the length of which (the number of packages transiting the disk) is determined by the speed at which the disk is turning. From an energy point of view, it doesn’t matter very much whether the cylinder is long and thin (a small prop running at high speed) or short and fat (a large prop running at slow speed). As long as the two cylinders contain the same volume of water being accelerated the same amount, they’ll demand the same amount of energy and yield the same level of thrust. (Remember these cylinders are mathematical constructs not physical reality).

This treatment gives us one very important lesson which takes some complex mathematics to prove because it seems so outrageous. Since we are accelerating a cylinder of water through a disk, fully half the thrust developed by the acceleration of that cylinder is delivered before the water ever touches the disk! In short, we seem to get the thrust before the water gets the acceleration. This is outrageous, ridiculous, unbelievable and perfectly correct - it is a major consideration in designing underwater hull forms.

Unfortunately, when we leave the idealized world of the Rankine Disk Actuator and enter the real world, life starts to get complex. Firstly, the cylinder isn’t a cylinder. Before the water hits the propeller it is being drawn along at speed above that of water outside the cylinder. Bernoulli’s law dictates that water will be drawn into the cylinder from outside, causing the cylinder to bulge outwards. The other side of the prop, the fact that acceleration is constant by the volume of water being pushed through is increased as the revolving speed of the prop goes up causes increased pressure areas aft of the prop. This causes a high-pressure bulge here too. (A simple experiment illustrates this - take a garden hose and set it running full blast. Now put your thumb over the nozzle). Eventually, this high-pressure region reaches the proportions where it breaks the surface, giving the famous rooster-tail effect. (It can also have a forward vector that has a propulsive effect on the ship). These two factors mean that the propeller isn’t at the center of a cylinder but a complex shape rather like an hourglass with the propeller at the thin neck. Again, the equations have to be integrated in order to get the “volume” (i.e. the energy content) of the system. If we were following the maths in detail, we would now be dealing with several layers of integrated equations.

Another problem is induced rotation. In the Rankine Disk Actuator, no axial rotation is applied to the water flow. At low transiting volumes, this is almost true, but as volumes get larger and the ratio of prop diameter to speed of rotation reaches critical values, the water leaving the propeller (the race) becomes more and more spiral in shape. This is purely awful - every drop of energy that goes into rotating the water instead of accelerating it is wasted (in effect it shortens our mathematical-construct cylinder). In mathematical terms the pitch of the spiral shortens as speed of prop rotation increases and the loss of energy is proportional to the square of that pitch.

Increasing prop size and speed of rotation are both good in that they increase the volume of water the prop accelerates. However, there are limits on both. Propeller size has physical limitations (we really do not want the blade tips hitting the hull plating), material restrictions (having the prop fly apart from metal fatigue is usually quite depressing) and also hydrodynamic restrictions which we’ll come to later. If speed of rotation is pushed too high, the propeller starts to hit the axial rotation problem described above and also starts to cavitate. This is by way of being an upper limit - reductions in propeller efficiency from cavitation quickly get so high that adding extra power will actually slow the ship down.

The inefficiency of a small, fast running propeller is murderous. For example, if the efficiency of a prop was really that of a Rankine Disk Actuator, halving the diameter of a propeller could be compensated by increasing the speed of the propeller by a factor of four - the energy contents would be the same. In reality, the efficiency of the half-diameter quadruple-speed propeller would be only 61.8 percent of the full-size, slow speed version - it would provide less that 2/3 the thrust. So, mathematically, the Rankine Disk Actuator equations eventually show us that a large, slow-turning propeller is a better deal than a small, fast-turning one. As an insight into a science nobody had thought of a few years earlier, the Rankine Disk momentum theory isn’t bad for a group of Victorian gentlemen who had virtually nothing to work with except slide-rules and their own perceptive brilliance.

In effect we have a cycle by which the engines generate power, that power is used by the screws to accelerate water, the reaction to which is thrust which pushes the ship forward. Unfortunately, the limitations on prop size and speed of rotation plus the fact that the acceleration applied to the water by the props is fixed by the design of the props, means there is a limit to the energy the props can use (in mathematics, to the size of our hour-glass or cylinder depending on whether we are looking at reality or theory). Any extra power generated by the engines above that limit is so much deadweight. In reality, of course, this limit isn’t a sharp point but an area in which the efficiency by which the screws convert energy into thrust quickly drops to zero. Nonetheless, adding 500 tons of machinery to a ship that is already overpowered will not achieve anything at all.

We can’t do much about the density of water (well actually we can. The effects of pressure from depth are quite important - a propeller running at 45 feet will give measurably more thrust than the same prop at 15 feet due to water pressure. Also, the compressive effect of a heavy hull will have a beneficial effect on the effective mass of water going through the prop. These are, however, relatively minor effects in terms of the sort of gains we are looking for). If we are going to get a major gain in energy utilization out of the power train we have to improve the amount by which the propeller accelerates the water and design the prop so that cavitation is delayed as long as possible. Unfortunately, here the Rankine Disk ceases to be of help since the mechanism by which it accelerates the water is not considered. There are two theories that do deal with this, the Blade Element Theory (which evolved shortly after the pioneering work of Rankine, Greenhill and Froude) and the Circulation Theory (evolved by F.W. Lanchester for aircraft in 1907 and applied to ships by Betz and Prandtl some years later). Both involve mathematics of extreme complexity. The Circulation Theory in particular allows the acceleration applied to water by a blade of given shape to be calculated by a thing called the Kutta-Joukowski Equation. The fun question is, what is the ideal shape?

What makes this question difficult is the fact that the propeller works in the ship’s wake. What is normally called a wake isn’t; its a combination of the ship’s real wake and the race from the screws. Differentiating between the two is easy - the race travels backwards relative to the ship, the wake travels in the same direction as the ship but at a lower speed. The wake results from (a) the frictional drag of the hull which produces a following current, maximizing around the stern (b) the streamline flow past the hull causing increased pressure where the hull lines close also creating a following current and © the wave pattern formed by the ship on the surface in which the water packages have an orbital motion, the top being in the same direction as the movement of the ship and the bottom being in the opposite direction. The forward speed of the wake in proportion to that of the ship is called the Wake Fraction. This will significantly reduce the (V1-V0) value (by half for a wake fraction of 50 percent) with obvious effects on thrust. The three factors that create the wake give a hydrodynamic picture of unsurpassed complexity. Newton and Hadler did a whole series of studies back in 1960 on the performance of propellers using Fourier Analysis to create mathematical constructs of wakes using the computers then available. They produced a series of flow diagrams of single and twin-screw ships sections aft and of the props working in those flow conditions. These clearly showed that the twin-screw environment was much less chaotic than the single-screw situation. In a single centerline screw, the relative intensity of the wake/prop interaction (which should be constant for maximum efficiency) varied from 0.10 at the tip to 0.67 at the root of the blade. In a twin-screw, the same figures were 0.02 at the tip to 0.04 at the root. The study also showed that the effect on the wake form from a centerline screw was enough to badly disrupt the more favorable environment surrounding the wing screws. These experiments at last provided a reasonable explanation of why twin screws work better than single centerline props and lead to a concerted effort to relate hull design to wake characteristics.

In 1965, Van Manen produced a series of conclusions based on his extrapolation of Newton and Hadler’s work. These were that the wake pattern is largely a product of the aft body of the ship, that harmonic amplitudes (transverse vibration) are inherently more severe on ships with centerline screws, the finer the stern, the more efficient the props, that blade geometry has a significant effect on induced shaft vibration, that transom sterns are less prone to cavitation, that the rudder has little effect on the wake and that minor changes in speed, displacement, hull form and trim have major and completely unpredictable effects on the wake pattern and, therefore, screw performance. In 1972, Van Oossanen et al investigated these areas but failed to come up with meaningful answers as did Holden in 1980 (although he did have some success in predicting effects on wakes with low peak values). This whole area is still largely a mystery although Chaos Theory may provide some clues as to what is happening back there.

So, having gotten the theory out of the way, how do we design a prop to convert more power into thrust and, thus, to make bigger battleships possible? If the ship design isn’t pushing the limits of practical, it’s quite simple. We take the desired prop diameter from the hull design, take the desired speed of revolution from the machinery design people and put the two figures into a pre-calculated graphical projection that will give us the “optimum” prop design for those conditions. This optimum isn’t really that, its the best commercial approximation that can be mass produced for those conditions. If we want anything better, its has to be custom-designed for that specific ship.

This involves massive tank-testing of hull forms to determine the wake characteristics at a wide variety of ship speeds and then the incorporation of those figures into a computer model to determine how a propeller will behave in those conditions. The geometry of each blade can then be designed (and redesigned and redesigned and ... you get the message) to try and reduce wake/prop interaction and to equalize that effect across the blade. This involves, slow, patient changes to leading and trailing edge configuration and blade cross section at varying points along the length of the blade (i.e. from root to tip). Blade area should be maximized to eliminate cavitation and the number of blades selected to give optimum results (usually that means as many as possible consistent with keeping flow conditions smooth). Typical selections these days are four, five and seven bladed props with nine-bladed units beginning to make an appearance. For some unfathomable reason, six-bladed props are more prone to exhibiting unfavorable characteristics than other configurations so are usually avoided (this is not an absolute). These days, much of this work can be done by computer simulation with the results confirmed by tank testing. Today’s customized propellers have extremely complex blade shapes, involving high skew and rake levels and extreme radial pitch changes and radical differences in cross section at each stage along the tip to blade axis. Throughout the design process one thing has to be kept in the back of people’s minds - can this prop actually be built? There is no point in designing the perfect propeller if it can’t be built!

Thursday, November 26, 2009

Marine Propellers and Propulsion



Marine Propellers and Propulsion, Second Edition
Hardbound, 560 pages, publication date: JUN-2007
ISBN-13: 978-0-7506-8150-6
ISBN-10: 0-7506-8150-0
Imprint: BUTTERWORTH HEINEMANN
Butterworth-Heinemann; 2 edition (July 23, 2007) | 560 pages | 0750681500 | PDF | 13 Mb


Although the propeller lies submerged out of sight, it is a complex component in both the hydrodynamic and structural sense. Marine Propellers and Propulsion fulfils the need for a comprehensive and cutting edge volume that brings together a great range of knowledge on propulsion technology, a multi-disciplinary and international subject. The book comprises three main sections covering hydrodynamics; materials and mechanical considerations; and design, operation and performance. The discussion relates theory to practical problems of design, analysis and operational economy, and is supported by extensive design information, operational detail and tabulated data. Fully updated and revised to cover the latest advances in the field, the new edition now also includes four new chapters on azimuthing and podded propulsors, propeller-rudder interaction, high-speedpropellers, and propeller-ice interaction.

· The most complete book available on marine propellers, fully updated and revised, with four new chapters on azimuthing and podded propulsors, propeller-rudder interaction, high-speedpropellers, and propeller-ice interaction
· A valuable reference for marine engineers and naval architects gathering together the subject of propulsion technology, in both theory and practice, over the last forty years
· Written by a leading expert on propeller technology, essential for students of propulsion and hydrodynamics, complete with online worked examples.

Contents

1 The early development of the screw propeller 2 Propulsion systems 2.1 Fixed pitch propellers 2.2 Ducted propellers 2.3 Podded and azimuthing propulsors 2.4 Contra-rotating propellers 2.5 Overlapping propellers 2.6 Tandem propellers 2.7 Controllable pitch propellers 2.8 Waterjet propulsion 2.9 Cycloidal propellers 2.10 Paddle wheels 2.11 Magnetohydrodynamic propulsion 2.12 Superconducting motors for marine propulsion 3 Propeller geometry 3.1 Frames of reference 3.2 Propeller reference lines 3.3 Pitch 3.4 Rake and skew 3.5 Propeller outlines and area 3.6 Propeller drawing methods 3.7 Section geometry and definition 3.8 Blade thickness distribution and thickness fraction 3.9 Blade interference limits for controllable pitch propellers 3.10 Controllable pitch propeller off-design section geometry 3.11 Miscellaneous conventional propeller geometry terminology 4 The propeller environment 4.1 Density of water 4.2 Salinity 4.3 Water temperature 4.4 Viscosity 4.5 Vapour pressure 4.6 Dissolved gases in sea water 4.7 Surface tension 4.8 Weather 4.9 Silt and marine organisms 5 The wake field 5.1 General wake field characteristics 5.2 Wake field definition 5.3 The nominal wake field 5.4 Estimation of wake field parameters 5.5 Effective wake field 5.6 Wake field scaling 5.7 Wake quality assessment 5.8 Wake field measurement 6 Propeller performance characteristics 6.1 General open water characteristics 6.2 The effect of cavitation on open water characteristics 6.3 Propeller scale effects 6.4 Specific propeller open water characteristics 6.5 Standard series data 6.6 Multi-quadrant series data 6.7 Slipstream contraction and flow velocities in the wake 6.8 Behind-hull propeller characteristics 6.9 Propeller ventilation 7 Theoretical methods – basic concepts 7.1 Basic aerofoil section characteristics 7.2 Vortex filaments and sheets 7.3 Field point velocities 7.4 The Kutta condition 7.5 The starting vortex 7.6 Thin aerofoil theory 7.7 Pressure distribution calculations 7.8 Boundary layer growth over an aerofoil 7.9 The finite wing 7.10 Models of propeller action 7.11 Source and vortex panel methods 8 Theoretical methods – propeller theories 8.1 Momentum theory – Rankine (1865); R. E. Froude (1887) 8.2 Blade element theory ?W. Froude (1878) 8.3 Propeller-Theoretical development (1900?1930) 8.4 Burrill's analysis procedure (1944) 8.5 Lerbs analysis method (1952) 8.6 Eckhardt and Morgan's design method (1955) 8.7 Lifting surface correction factors – Morgan et al. 8.8 Lifting surface models 8.9 Lifting-line – lifting-surface hybrid models 8.10 Vortex lattice methods 8.11 Boundary element methods 8.12 Methods for specialist propulsors 8.13 Computational fluid dynamics methods 9 Cavitation 9.1 The basic physics of cavitation 9.2 Types of cavitation experienced by propellers 9.3 Cavitation considerations in design 9.4 Cavitation inception 9.5 Cavitation-induced damage 9.6 Cavitation testing of propellers 9.7 Analysis of measured pressure data from a cavitating propeller 9.8 Propeller?rudder interaction 10 Propeller noise 10.1 Physics of underwater sound 10.2 Nature of propeller noise 10.3 Noise scaling relationships 10.4 Noise prediction and control 10.5 Transverse propulsion unit noise 10.6 Measurement of radiated noise 11 Propeller?ship interaction 11.1 Bearing forces 11.2 Hydrodynamic interaction 12 Ship resistance and propulsion 12.1 Froude's analysis procedure 12.2 Components of calm water resistance 12.3 Methods of resistance evaluation 12.4 Propulsive coefficients 12.5 The influence of rough water 12.6 Restricted water effects 12.7 High-speed hull form resistance 12.8 Air resistance 13 Thrust augmentation devices 13.1 Devices before the propeller 13.2 Devices at the propeller 13.3 Devices behind the propeller 13.4 Combinations of systems 14 Transverse thrusters 14.1 Transverse thrusters 14.2 Steerable internal duct thrusters 15 Azimuthing and podded propulsors 15.1 Azimuthing thrusters 15.2 Podded propulsors 16 Waterjet propulsion 16.1 Basic principle of waterjet propulsion 16.2 Impeller types 16.3 Manoeuvring aspects of waterjets 16.4 Waterjet component design 17 Full-scale trials 17.1 Power absorption measurements 17.2 Bollard pull trials 17.3 Propeller-induced hull surface pressure measurements 17.4 Cavitation observation 18 Propeller materials 18.1 General properties of propeller materials 18.2 Specific properties of propeller materials 18.3 Mechanical properties 18.4 Test procedures 19 Propeller blade strength 19.1 Cantilever beam method 19.2 Numerical blade stress computational methods 19.3 Detailed strength design considerations 19.4 Propeller backing stresses 19.5 Blade root fillet design 19.6 Residual blade stresses 19.7 Allowable design stresses 19.8 Full-scale blade strain measurement 20 Propeller manufacture 20.1 Traditional manufacturing method 20.2 Changes to the traditional technique of manufacture 21 Propeller blade vibration 21.1 Flat-plate blade vibration in air 21.2 Vibration of propeller blades in air 21.3 The effect of immersion in water 21.4 Simple estimation methods 21.5 Finite element analysis 21.6 Propeller blade damping 21.7 Propeller singing 22 Propeller design 22.1 The design and analysis loop 22.2 Design constraints 22.3 The choice of propeller type 22.4 The propeller design basis 22.5 The use of standard series data in design 22.6 Basic design considerations 22.7 The design process 23 Operational problems 23.1 Performance related problems 23.2 Propeller integrity related problems 23.3 Impact or grounding 24 Service performance and analysis 24.1 Effects of weather 24.2 Hull roughness and fouling 24.3 Hull drag reduction 24.4 Propeller roughness and fouling 24.5 Generalized equations for the roughness-induced power penalties in ship operation 24.6 Monitoring of ship performance 25 Propeller tolerances and inspection 25.1 Propeller tolerances 25.2 Propeller inspection 26 Propeller maintenance and repair 26.1 Causes of propeller damage 26.2 Propeller repair 26.3 Welding and the extent of weld repairs 26.4 Stress relief

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