The present invention relates generally to wind turbines, and more particularly, to tower assemblies for wind turbines having adjustable hub heights.
Wind power is considered one of the cleanest, most environmentally friendly energy sources presently available, and wind turbines have gained increased attention in this regard. A modern wind turbine typically includes a tower, a generator, a gearbox, a nacelle, and one or more rotor blades. The rotor blades capture kinetic energy from wind using known airfoil principles and transmit the kinetic energy through rotational energy to turn a main shaft coupling the rotor blades to a gearbox, or if a gearbox is not used, directly to the generator. The generator then converts the mechanical energy to electrical energy that may be deployed to a utility grid.
The wind turbine tower typically includes a base tower section secured to a foundation and one or more upper tower sections secured atop the base tower section to form a tower of a certain height. The foundation may be a concrete slab foundation, an anchor cage foundation, or any other suitable foundation capable of supporting loads produced by the wind and/or gravitational forces. Further, each tower section generally includes a cylindrical wall defining an outer diameter and an inner diameter separated by a radial thickness that is uniform along the entire length of the sections.
The overall tower height of wind turbines may be dependent on a number of factors. For example, the tower height may vary based on environmental conditions at the wind turbine site and/or costs of materials. In addition, increasing the tower height allows for longer rotor blades which in turn produce more power. Thus, conventional tower heights can be increased or decreased by modifying the number of tower sections stacked together. In addition, when the tower height is modified, additional manufacturing steps are required to ensure that the tower can withstand site and component loading. More specifically, if a certain site requires a tower with an increased height to harvest higher wind speeds, the cylindrical walls of the corresponding wall sections are designed with a thicker radial thickness to account for higher loads. Alternatively, if a certain site requires a tower having a lower height to harvest lower wind speeds, the cylindrical walls of the corresponding wall sections are designed with a thinner radial thickness to save material costs. In addition, whether a tower is designed with a thicker or thinner radial thickness, it is difficult for an operator to tell the difference when assembling the tower. As such, tower heights have to be specifically designed for differing site and loading conditions. In addition, additional efforts are spent identifying and locating which tower sections should be used for which tower, e.g. at a wind farm.
Accordingly, an improved tower assembly for a wind turbine that addresses the aforementioned issues would be desired in the art. Thus, the present disclosure is directed to a tower assembly for a wind turbine having an adjustable hub height that does not require a redesign for every site.
Aspects and advantages of the invention will be set forth in part in the following description, or may be obvious from the description, or may be learned through practice of the invention.
In one aspect, the present disclosure is directed to a tower assembly for a wind turbine having an adjustable height. The tower assembly includes at least one base tower section having a cylindrical base wall defining an overall length extending from a first end to a second end. The cylindrical base wall further defines an outer diameter that is uniform along the entire length from the first end to the second end. The tower assembly also includes an adjustable upper tower section arranged atop the base tower section. The upper tower section includes a first tower portion integral with a second tower portion. The first tower portion includes a first tower wall portion defining a first length extending from a first end to a second end. Further, the first tower wall portion includes a tapering cross-section from the first end to the second end of the first length thereof. The second tower portion includes a second tower wall portion defining a second length extending from a first end to a second end. Further, the second tower wall portion defines a uniform cylindrical cross-section from the first end to the second end of the second length thereof.
In one embodiment, the tapering cross-section of the first tower wall portion may taper towards the second tower portion.
In another embodiment, the tower assembly may further include a transitional tower section arranged between the base tower section and the upper tower section. In such embodiments, the transitional tower section includes an outer wall defining a length extending from a first end to a second end. Further, in certain embodiments, the outer wall of the transitional tower section may define an outer diameter that tapers along the length thereof.
In further embodiments, the second tower portion of the upper tower section may include an upper tower can mountable to a nacelle of the wind turbine. In addition, the second tower portion of the upper tower section may be constructed of one or more removable tower cans arranged below the upper tower can.
In additional embodiments, the tower assembly may further include at least one platform in any one of the base tower section, the transitional tower section, and/or the upper tower section. For example, in one embodiment, the tower assembly may include at least one platform in the second tower portion of the upper tower section.
In another aspect, the present disclosure is directed to an adjustable upper tower section for a tower of a wind turbine. The upper tower section includes a first tower portion having a first tower wall portion defining a first length extending from a first end to a second end. The first tower wall portion includes a tapering cross-section from the first end to the second end of the first length thereof. The upper tower section also includes a second tower portion integral with the first tower portion. The second tower portion includes a second tower wall portion defining a second length extending from a first end to a second end. The second tower wall portion defines a uniform cylindrical cross-section from the first end to the second end of the second length thereof. It should also be understood that the upper tower section may further include any of the additional features as described herein.
In yet another aspect, the present disclosure is directed to a method for adjusting a tower height of a wind turbine. The method includes securing a base tower section to a foundation. The base tower section has a cylindrical base wall defining an outer diameter that is uniform along its entire length. The method also includes mounting an adjustable upper tower section atop the base tower section. The upper tower section has a first tower portion integral with an adjustable second tower portion. The first tower portion has a first tower wall portion defining a first length extending from a first end to a second end. Further, the first tower wall portion has a tapering cross-section from the first end to the second end of the first length thereof. The second tower portion has a second tower wall portion defining a second length extending from a first end to a second end. Moreover, the second tower wall portion defines a uniform cylindrical cross-section from the first end to the second end of the second length thereof. Thus, the method further includes evaluating at least one of site conditions or loading conditions of the wind turbine and adjusting a height of the second tower portion based on the evaluation.
In one embodiment, the step of adjusting the height of the second tower portion based on the evaluation may include adding or removing at least one tower can of the second tower portion. More specifically, in certain embodiments, the step of adding or removing at least one tower can to the second tower portion may include adding or removing at least one tower can below an upper tower can of the second tower portion.
In another embodiment, the method may include mounting a transitional tower section between the base tower section and the upper tower section. In such embodiments, the transitional tower section may include an outer wall defining a length extending from a first end to a second end. More specifically, as mentioned, the outer wall of the transitional tower section may define an outer diameter that tapers along the length thereof.
In additional embodiments, the method may also include installing at least one platform in the second tower portion after adding or removing at least one tower can thereto. It should be understood that the method may further include any of the additional steps, features and/or embodiments as described herein.
These and other features, aspects and advantages of the present invention will become better understood with reference to the following description and appended claims. The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
A full and enabling disclosure of the present invention, including the best mode thereof, directed to one of ordinary skill in the art, is set forth in the specification, which makes reference to the appended figures, in which:
Reference now will be made in detail to embodiments of the invention, one or more examples of which are illustrated in the drawings. Each example is provided by way of explanation of the invention, not limitation of the invention. In fact, it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the scope or spirit of the invention. For instance, features illustrated or described as part of one embodiment can be used with another embodiment to yield a still further embodiment. Thus, it is intended that the present invention covers such modifications and variations as come within the scope of the appended claims and their equivalents.
Generally, the present disclosure is directed to a tower assembly for a wind turbine having an adjustable height. As such, in some instances, the hub height can be adjusted to 100% tower capacity so as to maximize energy production. More specifically, the tower assembly includes an adjustable upper tower section having a first tower portion integral with a second tower portion. The first tower portion includes a first tower wall portion defining a first length extending from a first end to a second end. Further, the first tower wall portion includes a tapering cross-section from the first end to the second end of the first length thereof. The second tower portion includes a second tower wall portion defining a second length extending from a first end to a second end. Further, the second tower wall portion defines a uniform cylindrical cross-section from the first end to the second end of the second length thereof. In addition, the second tower portion is constructed of a plurality of removable tower cans that can be added or removed to adjust an overall height of the tower assembly.
In other words, the adjustable upper tower section has a partially cylindrical cross-section providing many advantages not present in the prior art. For example, the tower assembly of the present disclosure is configured to optimize the tower height (and therefore hub height) based on site and/or loading conditions. Further, by providing a tower assembly with a height can that be easily increased, higher energy levels can be achieved at multiple wind turbine sites. Moreover, the tower assembly of the present disclosure provides a flexible assembly that can be easily sourced multiple wind turbine sites. In addition, the tower assembly of the present disclosure allows for positioning of the same platform for multiple configurations or heights of the tower assembly.
Thus, if a certain wind turbine site has lower wind speeds, the adjustable upper tower section can extend higher in order to harvest the higher winds and utilize 100% original tower capacity. Alternatively, if a certain site has lower wind speeds, the adjustable upper tower section can be shortened to accommodate the lower winds and not exceed 100% original tower capacity. Further, the tower sections described herein that are below the upper tower section are identical and the upper section differs only by the length of the cylindrical segment.
Referring now to the drawings,
Referring now to
Referring back to
Further, as shown in
Referring back to
More specifically, as shown in the illustrated embodiment, the second tower portion 34 of the adjustable upper tower section 32 may further include an upper tower can 50 mountable to the nacelle 14 of the wind turbine 10. For example, the upper tower can 50 may be specifically designed (e.g. with flanges, bolt holes, etc.) for mounting the tower assembly 22 to the nacelle 14 and/or a yaw bearing configured between the nacelle 14 and the top of the tower 12. Thus, in such embodiments, one or more of the lower tower cans 52 are removed or added, leaving the upper tower can 50 in place.
In addition, in certain embodiments, as shown in
Referring now to
Accordingly, every time the hub height is adjusted as described herein, the upper platform elevation changes since the platform is typically always at the same distance from the top of the upper tower section 32 to allow for service and maintenance of the top section joint. Since the upper tower section 32 is also tapered to connect the maximum ground diameter to the required machine support diameter, the diameter of that platform changes as well and requires a redesign. Providing a cylindrical region at the top of the upper tower section 32 allows for using the same platform with the same diameter for each adjusted elevation.
Referring now to
In another embodiment, the method 100 may include mounting the transitional tower section 33 between the base tower section 15 and the adjustable upper tower section 32. In additional embodiments, the method 100 may also include installing at least one platform 54 in the second tower portion 34 after adding or removing at least one tower 52 can thereto.
This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they include structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.