Elastomeric teetering hinge
The invention generally relates to two-bladed turbine nacelles and associated teetering hinges. In certain embodiments, the invention provides a hinge assembly encompassing a hub and two double elastomeric teeter bearings. In some aspects, the bearings are self-contained elements that can be preloaded in a controlled manner prior to their incorporation into the larger assembly.
1. A teetering hinge assembly, the assembly comprising:
a hub comprising a shell;
a T shaped head of a turbine shaft with two horns; and
at least two double elastomeric teeter bearings positioned between the hub shell and the two horns of the T shaped shaft head, wherein each teeter bearing comprises a plurality of metal-elastomeric elements comprising:
a plurality of metal shims; and
a plurality of elastomeric bonding layers; and
wherein the plurality of metal-elastomeric elements are stacked one into the other, such that each metal-elastomeric element comprises a separate preload.
2. The teetering hinge assembly of claim 1 , wherein each metal-elastomeric element is preloadable.
3. The teetering hinge assembly of claim 2 , wherein the teeter bearing is self-contained.
4. The teetering hinge assembly of claim 3 , wherein the teeter bearing is operably configured to not transfer a preload to said hub.
5. The teetering hinge assembly of claim 2 , wherein the preload can be changed by a maintenance operation.
6. The teetering hinge assembly of claim 1 , wherein the plurality of metal-elastomeric elements of each of the teeter bearings, are sited side by side in the hub, between the hub shell and the horns of the shaft head.
7. The teetering hinge assembly of claim 6 , further comprising metallic or composite wedges, for preloading the elastomeric elements, between the hub shell and the metal-elastomeric elements and between the horns and the metal-elastomeric elements.
8. The teetering hinge assembly of claim 7 , wherein the wedges are fixed to the hub shell and the horns by screws, and each metal-elastomeric element is independently preloadable by manipulating the screws.
9. The teetering hinge assembly of claim 6 , wherein each metal-elastomeric element within the plurality of elements can be individually removed from the hub and replaced by a new element without affecting the stability of the teetering hinge.
10. The teetering hinge assembly of claim 6 , wherein the teeter bearing farther comprises one or more radial sliding bearings configured to limit the radial displacement of the metal-elastomeric element between the hub shell and the horns in order to: 1) keep the stability of the teetering hinge in case of a failure of one or more metal-elastomeric elements; and 2) protect the metal-elastomeric material by limiting its radial deformation in case of abnormal external loads.
11. The teetering hinge assembly of claim 6 , wherein a ratio between radial and axial preloads can be set by designing the angle of the wedges in view of the expected external loads.
12. The teetering hinge assembly of claim 6 , wherein each metal-elastomeric element has two symmetry radial axes (X,Y), at 90 degrees from each other.
13. The teetering hinge assembly of claim 12 , wherein each metal-elastomeric element can be rotated by 90 degrees around its longitudinal axis thereby interchanging the position of the X and Y axes to extend the design life of the metal-elastomeric elements.
14. The teetering hinge assembly of claim 1 , wherein each metal-elastomeric element can be mounted on any position of the two double teeter bearings.
15. The teetering hinge assembly of claim 1 , wherein the number and the size of the metal-elastomeric elements can be chosen to enable the fabrication of teetering hinges for larger turbines.
16. The teetering hinge assembly of claim 1 , wherein the number and the size of the metal-elastomeric elements can be chosen to facilitate maintenance and repair of the assembly.