Vertical Axle or Axis Helically Swept Blade Wind Turbine
20170276119 · 2017-09-28
Inventors
Cpc classification
Y02E10/74
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F05B2220/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/211
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D3/062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The Vertical Axle or Axis Helically Swept Blade Wind Turbine, is by definition a vertical wind turbine using a blade or blades shaped as a spiral, with one side of the blade flat, the other side serving as an airfoil to create desired overall torque, all around its full turn, or integer number of full turns, using this the same cross section all along its stretch. Among its intrinsic advantages are; Simplicity, Greater Electric Power Output related to swept area facing the wind, Earlier “kick in” for lower wind speeds, Wind Direction Independent, Ease of Maintenance, due to ground level access to most of its components and Self-Controlling by definition. All of these advantages combined, make harnessing the wind power using this invention, more cost-effective in a multitude of aspects.
Claims
1. That a Circle Segment or similar Airfoil is used as Cross Section Profile for the entire Blade, where the width of the Blade serves as the Chord of this Segment AND that,
2. This Circle Segment or Airfoil Cross Section Profile is Helically Swept all along its stretch for at least one 360 degree turn of this blade, or all along any integer number of full 360 degree turns of this blade. Heeding those dual claims, makes this Vertical Axle or Axis Helically Swept Blade Wind Turbine UNIQUE, in terms of RELATIVE SIMPLICITY of manufacturing this Wind Turbine, as well as of its overall utility and maintenance.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
[0019] To comply with prevailing US design requirements, the one-example-of-design efforts were being outsourced to Martinez & Turek, Inc., located in Rialto in southern California. It should be noted in
[0020] Generally, it should also be noted, that the Drawing Material solely serves as one example of appearance, whereas Pitch of the Helically Swept Turbine Blade and/or the integer number of full turns and overall dimensions could vary, depending on desired Power Output, Wind Conditions etc.
DETAILED DESCRIPTION OF THE VERTICAL AXLE OR AXIS, HELICALLY SWEPT BLADE WIND TURBINE INNOVATION
[0021] The Vertical Axle Or Axis, Helically Swept Blade Wind Turbine consists of ONE or SEVERAL helically swept Blade(s) that preferably has (have) its (their) flat side(s) facing upwards and its (their) airfoil side(s) facing downwards, in order to prevent intrinsic Lift Forces from elevating this type of Wind Turbine off its foundation. However, if sufficiently secured, the opposite direction of flat- and airfoil sides respectively, would be possible.
[0022] The Vertical Axle Or Axis, Helically Swept Blade Wind Turbine BLADE MUST AT LEAST revolve ONE TURN, i.e. 360 degrees, around its either physical Axle or Imaginary Axis, in order to fully make use of its TRIPLE Different Major Feature Areas, and combination of those in between. Wind Direction is supposed to be coming FROM the viewer of the Principle View named
The TRIPLE Different Major Feature Areas are
[0023] 1) Perpendicular to Wind Direction; Aerodynamic “Lift or Suction” turned TOURQUE,
[0024] 2) Downstream Dynamic Air Pressure; Adding to the overall Torque on the flat side of the Blade(s),
[0025] 3) Upstream Drag produced; thus partially Self-Controlling its rotating speed, read rpm.
[0026] Obviously, the Electric Generator will also serve as means of Controlling the rotating speed, preferably letting the peripheral speed in Major Feature Area 2), to be slightly less than for ambient wind speed.
[0027] The Vertical Axle Or Axis, Helically Swept Blade Wind Turbine BLADE could also revolve SEVERAL FULL TURNS, e.g. 4×360 degrees, around its either physical Axle or Imaginary Axis, thus similarly making use of its TRIPLE Different Major Feature Areas for each turn (i.e. 360 degrees), mentioned above. If using a SEVERAL FULL TURNS Wind Turbine BLADE(S), the overall feature could be slightly TAPERED (as a slight cone with its smallest diameter at the top) to allow produced Torque to become more evenly distributed all over its height, due to the fact that ambient wind speeds will probably be higher further up than closer to the ground level. Therefore, Tapered Helically Swept Blade(s) would probably be the most feasible solution in most cases. In rare situations where this type of Wind Turbines will be standing on “Hawaiian Pali alike cliffs”, an up-side-down-tapered scenario could be used instead. In the case of using ONE turn (i.e. 360 degrees) BLADE(S) only, even this scenario could be slightly tapered for reasons mentioned above.
[0028] Blade Cross Section Profile:
[0029] The Blade Cross Section Profile would preferably, but not necessary, be made as a Symmetric Wing Profile, due to manufacturing reasons and simplicity, with or without Turbulence Generators (T.G.). If using Turbulence Generators to yield desired and added turbulence vortices from its middle and thickest section of the airfoil side, this will generate extra “Lift or Suction”, but will not be regarded mandatory, since the very airfoil side will create most of the overall Torque of The Vertical Axle Or Axis, Helically Swept Blade Wind Turbine anyways. Thus, the Turbulence Generators would serve as Efficiency Enhancement only. Measurements stated in the Helix Cross Section
[0030] Helical Sweep Pitch:
[0031] The Helical Sweep Pitch could vary from case to case, but an optimal pitch of circa 45 degrees is very likely, taken into account the overall Height of Wind Turbine, Desired Overall Torque, Use of Blade Material etc.
[0032] Physical Axle:
[0033] If using a Physical Axle, this will have to be directly connected by means of streamlined beams/struts or spokes, or a combination of those, attached to the swept BLADE(s), then through a possible suitable Gear Box all the way to the Electric Generator on the ground level, OR connected through a traction driving the Electric Generator directly on a flywheel hub close to the ground level.
[0034] Imaginary Axis:
[0035] If using a Stand-Alone Structure with its intrinsic Imaginary Axis, this will have to be secured into a toroid or flat ring-shaped bottom level, connected to the Electric Generator close to the ground level by means of streamlined beams/struts or spokes, or a combination of those, OR connected through a traction driving the Electric Generator directly on a flywheel hub close to the ground level.
[0036] Intrinsic Advantages: [0037] Simplicity, read cheaper to manufacture and to maintain [0038] Increased overall output, related to “projected area facing the wind” for HAWTs [0039] Wind Direction Independent, without losses when wind directions change [0040] Ease of Maintenance, due to ground level access to most of its components [0041] Self-Controlling by definition, bringing SW and Control Systems to a minimum [0042] More evenly generated low noise, due to its more evenly distributed appearance [0043] Economics, due to its earlier “Kick In” generating torque at relatively low wind speeds [0044] Security, due to its Self-Controlling virtues, having to heed hurricanes and above solely
[0045] Intrinsic Disadvantages: [0046] Using of suitably sized sections when assembling and erecting this type of Wind Turbine, unless being made of softer collapsible materials that could stiffen and/or congeal when getting ready to be used
[0047] Manufacturing, Assembling and Erecting:
[0048] The Vertical Axle Or Axis, Helically Swept Blade Wind Turbine, could be manufactured using similar materials and shaping techniques as for Horizontal Axle Wind Turbines and their propeller blades, making the Helically Swept Blade in suitable numbers of say, 90 degree sections of the spiral, connecting them on-site by fittings not protruding from the blade surfaces, using appropriate scaffolding and ladders when erecting this kind of wind turbine.
[0049] Scale Models of this invention indicate pertinent intrinsic advantages, described above, as well as a justification of suggested assembling and erecting methods above.