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Encyclopedia > Tesla turbine

The Tesla turbine is a bladeless turbine design patented by Nikola Tesla in 1913. It is referred to as a bladeless turbine because it uses the boundary layer effect and not a fluid impinging upon the blades as in a conventional turbine. The Tesla turbine is also known as the boundary layer turbine, cohesion-type turbine, and Prandtl layer turbine (after Ludwig Prandtl). It is one of the few turbomachines that can be simply manufactured in primitive machine shops. One of Tesla’s desire for implementation of this turbine was for geothermal power, which was described in "Our Future Motive Power". [1] WWII era steam turbine used for ship propulsion. ... Below is a list of Tesla patents. ... Nikola Tesla (Smiljan, Austrian Empire, July 10, 1856 - New York, USA, January 7, 1943) was a world-renowned Serb [2] inventor, physicist, mechanical engineer and electrical engineer. ... 1913 (MCMXIII) was a common year starting on Wednesday. ... In physics and fluid mechanics, the boundary layer is that layer of fluid in the immediate vicinity of a bounding surface. ... Ludwig Prandtl Ludwig Prandtl (4 February 1875 - 15 August 1953) was a German physicist. ... In mechanical engineering, turbomachinery describes machines that transfer energy between a rotor and a fluid, including both turbines and compressors. ... Thermally active area, New Zealand. ...

Contents


Pump

If a similar set of disks and a housing with an involute shape (versus circular for the turbine) are used, the device can be used as a pump. In this configuration a motor is attached to the shaft. The fluid enters near the center, is given energy by the disks, then exits at the periphery. The Tesla turbine does not use friction in the conventional sense; precisely, it avoids it, and uses adhesion (the Coandă effect) and viscosity instead. It utilizes the boundary layer effect on the disc blades. This is an important point of this invention. In the differential geometry of curves, an involute of a smooth curve is another curve, obtained by attaching a string to the curve and tracing the end of the string as it is wound onto the curve. ... Coanda effect as demonstrated with a spoon and a water stream. ... The boundary layer is the layer of fluid in the immediate vicinity of a bounding surface. ...


Smooth rotor disks were originally proposed, but these gave poor starting torque. Tesla subsequently discovered that smooth rotor disks with small washers bridging the disks in ~12–24 places around the perimeter of a 10″ disk and a second ring of 6–12 washers at a sub-diameter made for a significant improvement in starting torque, without compromising efficiency.


Description

A Tesla turbine consists of a set of smooth disks, with nozzles applying a moving gas to the edge of the disk. The gases drag on the disk by means of viscosity and the adhesion of the surface layer of the gas. As the gas slows and adds energy to the disks, it spirals in to the center exhaust. Since the rotor has no projections, it is very sturdy. The pitch drop experiment at the University of Queensland. ... Dew drops adhering to a spider web Water droplets adhering on a hibiscus petal Adhesion is the molecular attraction exerted between bodies in contact. ... R0t0r is from efnet ...

View of Tesla turbine
Tesla turbine
"bladeless" design
(Larger)

Tesla wrote 'This turbine is an efficient self-starting prime mover which may be operated as a steam or mixed fluid turbine at will, without changes in construction and is on this account very convenient. Minor departures from the turbine, as may be dictated by the circumstances in each case, will obviously suggest themselves but if it is carried out on these general lines it will be found highly profitable to the owners of the steam plant while permitting the use of their old installation. However, the best economic results in the development of power from steam by the Tesla turbine will be obtained in plants especially adapted for the purpose. ' Image File history File links Tesla turbine diagram File history Legend: (cur) = this is the current file, (del) = delete this old version, (rev) = revert to this old version. ...


This turbine can also be successfully applied to condensing plants operating with high vacuum. In such a case, owing to the very great expansion ratio, the exhaust mixture will be at a relatively low temperature and suitable for admission to the condenser. Better fuel has to be used and special pumping facilities provided but the economic results attained will fully justify the increased outlay.


All the plates and washers are fitted on and keyed to a sleeve threaded at the ends and equipped with nuts and collars for drawing the thick end-plates together or, if desired, the collars may by simply forced onto it and the ends upset. The sleeve has a hole fitting snugly on the shaft and is fastened to the same as usual.


This construction permits free expansion and contraction of each plate individually under the varying influence of heat and centrifugal force and possesses a number of other advantages which are of considerable practical moment. A larger active plate area and consequently more power is obtained for a given width, improving efficiency. Warping is virtually eliminated and smaller side clearances may be used which results in diminished leakage and friction losses. The rotor is better adapted for dynamic balancing and through rubbing friction resists disturbing influences thereby ensuring quieter running. For this reason and also because the discs are not rigidly joined it is protected against damage which might otherwise be caused by vibration or excessive speed.

View of Tesla turbine system
Tesla turbine system
complete system
(Larger)

The Tesla turbine has the following traits: Image File history File links Tesla turbine system DATE : Sept 25, 1922 -- Economic Transformation of the Energy of Steam by Turbines -- British Patent GB 186,083 File history Legend: (cur) = this is the current file, (del) = delete this old version, (rev) = revert to this old version. ...

  • Installation normally working with a mixture of steam and products of combustion and in which the exhaust heat is used to provide steam which is supplied to the turbine, providing a valve governing the supply of such last mentioned steam so that the pressures and temperatures can be adjusted to the optimum working conditions.

A Tesla turbine installation as diagrammed is:

  1. Able to start with steam alone.
  2. A disc type adapted to work with fluids at high temperature.

An efficient Tesla turbine requires close spacing of the disks. For example, a steam-powered type must maintain 0.4 millimeter inter-disk spacing. The disks must be maximally smooth to minimize surface and shear losses. Disks must also be maximally thin to prevent drag and turbulence at disk edges. Unfortunately, preventing disks from warping and distorting was a major challenge in Tesla's time. It is thought that this inability to prevent the disks distorting contributed to the commercial failure of the turbines, because metallurgical technology at the time was not able to produce disks of sufficient quality and rigidity.


Efficiency and calculations

In Tesla's time, the efficiency of conventional turbines was low because the aerodynamic theory to proper blade design didn't exist and the engineering materials of the time put severe limitations on operating speeds and temperatures. The efficiency of a conventional turbine is related to the difference in temperature between the intake and the exhaust. This requires that the materials used to construct it be able to withstand very high temperatures for reasonable efficiency.


Tesla's design sidestepped the key drawbacks of the bladed turbine. It does suffer from other problems such as shear losses and flow restrictions. [citation needed] Some of Tesla turbine's advantages lie in relatively low flow rate applications or when small applications are called for. The disks need to be as thin as possible at the edges so as not to introduce turbulence as the fluid leaves the disks. This translates to needing to grow the number of disks as the flow rate increases. Maximum efficiency comes in this system when the inter-disk spacing approximates the thickness of the boundary layer, and since boundary layer thickness is dependent on viscosity and pressure, the claim that a single design can be used efficiently for a variety of fuels and fluids is incorrect.[citation needed] A Tesla turbine differs from a conventional turbine only in the mechanism used to transfer energy to the shaft. Various analyses show that the flow rate between the disks must be kept relatively low to maintain efficiency. [citation needed] Reportedly, the efficiency of the Tesla turbine goes down with increased load. [citation needed] Under light load, the spiral taken by the fluid moving from the intake to the exhaust is a tight spiral, undergoing many rotations. Under load, the number of rotations drops and the spiral becomes progressively shorter. This increases the shear losses and reduces the efficiency.[citation needed]


The turbine efficiency of the gas Tesla turbine is estimated to be above 60, reaching a maximum of 95 percent. Keep in mind that turbine efficiency is different to the cycle efficiency of the engine using the turbine. Axial turbines which operate today in steam plants or jet engines have efficiencies of about 80 - 95 %. This is different to the cycle efficiencies of the plant or engine which are between 30% and 40%, and are limited by any irreversibilities to be below the Carnot cycle efficiency. Tesla claimed that a steam version of his device would achieve around 95 percent efficiency. [2][3] The methods and apparatus for the propulsion of fluids and thermodynamic transformation of energy were disclosed in various patents. The thermodynamic efficiency is a measure of how well it performs compared to an isentropic case. It is the ratio of the ideal to the actual work input/output. This can be taken to be the ratio of the ideal change in enthalpy to the real enthalpy for the same change in pressure. A heat engine is an engine that uses heat to produce mechanical work by carrying a working substance through a cyclic process. ... Categories: Marine propulsion | Stub ... A thermodynamic process may be defined as the energetic evolution of a thermodynamic system proceeding from an initial state to a final state. ... Thermodynamic efficiency (e) is defined as: where W is the absolute value of the work done in one thermodynamic cycle. ... An isentropic process (a combination of the Greek word iso -same- and entropy) is one during which the entropy of working fluid remains constant. ... Enthalpy (symbolized H, also called heat content) is the sum of the internal energy of matter and the product of its volume multiplied by the pressure. ... Pressure (symbol: p) is the force per unit area applied on a surface in a direction perpendicular to that surface. ...


In the 1950s, Warren Rice attempted to re-create Tesla's experiments, but he did not perform these early tests on a pump built strictly in line with the Tesla's patented design (it, among other things, was not a Tesla multiple staged turbine nor did it possess Tesla's nozzle).[4] Rice's experimental single stage system used air as the working fluid. Rice's test turbines, as published in early reports, produced an overall measured efficiency as the working fluid of 36% to 41% for a single stage. [5] Higher percentages would be expected if design as originally proposed by Tesla. The examples and perspective in this article or section may not represent a worldwide view. ...


In his final work with the Tesla turbine and published just prior to his retirement, Rice conducted a bulk-parameter analysis of model laminar flow in multiple disk turbines. A very high claim for rotor efficiency (as opposed to overall device efficiency) for this design was published in 1991 entitled "Tesla Turbomachinery".[6] This paper states:

"With proper use of the analytical results, the rotor efficiency using laminar flow can be very high, even above 95%. However, in order to attain high rotor efficiency, the flowrate number must be made small which means high rotor efficiency is achieved at the expense of using a large number of disks and hence a physically larger rotor." [7]

Actual modern multiple stage bladed turbines typically reach 60% - 70% efficiency. Actual volute-rotor matched Tesla-type machines of reasonable size with common fluids (steam, gas, and water) would also be expected to be around this range (if not higher). [8] A volute is a spiral scroll-like ornament such as that used on an Ionic capital. ...


Further reading

September 18 is the 261st day of the year (262nd in leap years). ... 1911 (MCMXI) was a common year starting on Sunday (click on link for calendar). ... Scientific American is a popular-science magazine, published monthly since August 28, 1845, making it the oldest continuously published magazine in the United States. ... September 30 is the 273rd day of the year (274th in leap years) in the Gregorian calendar, with 92 days remaining. ...

References and notes

Citations

  1. ^ Nikola Tesla, "On Future Motive Power".
  2. ^ Stearns, E. F., "The Tesla Turbine". Popular Mechanics, December 1911. (Lindsay Publications)
  3. ^ Andrew Lee Aquila, Prahallad Lakshmi Iyengar, and Patrick Hyun Paik, "The Multi-disciplinary Fields of Tesla; bladeless turbine". nuc.berkeley.edu.
  4. ^ "Debunking the Debunker, Don Lancaster Again Puts His Foot In", Tesla Engine Builders Association.
  5. ^ Debunking the Debunker, Don Lancaster
  6. ^ "Interesting facts about Tesla" QnA: I've heard stories about the Tesla turbine that cite a figure of 95% efficiency. Do you have any information regarding this claim? And, why haven't these devices been utilized in the mainstream?. Twenty First Century Books.
  7. ^ Rice, Warren, "Tesla Turbomachinery". Conference Proceedings of the IV International Tesla Symposium, September 22-25, 1991. Serbian Academy of Sciences and Arts, Belgrade, Yugoslavia. (PDF)
  8. ^ Warren Rice, "Tesla Turbomachinery".

PDF is an abbreviation with several meanings: Portable Document Format Post-doctoral fellowship Probability density function There also is an electronic design automation company named PDF Solutions. ...

External links and articles

Patents

Tesla

Other

  • U.S. Patent 6726442, Disc turbine inlet to assist self-starting, Letourneau (February 11, 2002)
  • U.S. Patent 6682077, Labyrinth seal for disc turbine, Letourneau (February 13, 2002)
  • U.S. Patent 6692232, Rotor assembly for disc turbine, Letourneau (March 15, 2002)
  • U.S. Patent 6973792, Method of and apparatus for a multi-stage boundary layer engine and process cell, Hicks (December 13, 2005)
Photos
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Boundary layers
Tesla fan sites

  Results from FactBites:
 
Tesla turbine - Wikipedia, the free encyclopedia (1477 words)
It is referred to as a bladeless turbine because it uses the boundary layer effect and not a fluid impinging upon the blades as in a conventional turbine.
The Tesla turbine does not use friction in the conventional sense; precisely, it avoids it, and uses adhesion (the Coandă effect) and viscosity instead.
Tesla subsequently discovered that smooth rotor disks with small washers bridging the disks in ~12–24 places around the perimeter of a 10″ disk and a second ring of 6–12 washers at a sub-diameter made for a significant improvement in starting torque, without compromising efficiency.
SRedmond-com Disk Turbine Generator Page 1 (1018 words)
A disk turbine is distinguished form a conventional turbine mainly by the orientation and form of the blades.
An axial flow turbine is similar to an airplane propeller -- the gas passes in a straight line along the axis of the shaft.
The mechanical action which drives a Tesla style disk turbine depends on the adhesion of the fast moving gas to the disks as it travels in a spiral inside the disk sandwich toward the center port.
  More results at FactBites »


 

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