Assembly for vibration isolation of a rotatable mass
An assembly for coupling a rotatable mass to a body including a flexure layer, and a method for assembling and manufacturing the same. The flexure layer includes an inner region operable to be coupled to the rotatable mass via a bearing assembly, an outer region operable to be coupled to the body, and a flexure element including a first end coupled to the inner region and a second end coupled to the outer region.
1. An assembly for coupling a rotatable mass to a body, the assembly comprising:
a flexure layer comprising:
an inner region operable to be coupled to the rotatable mass via a bearing assembly;
an outer region operable to be coupled to the body;
a flexure element including a first end coupled to the inner region and a second end coupled to the outer region
a damping element including an inner damping element coupled to the inner region, an outer damping element coupled to the outer region; and
a visco-elastic material (VEM) coupled to the flexure layer adjoining the inner damping element and the outer damping element.
2. The assembly of claim 1 , wherein the flexure element has a flexibility operable to reduce a natural frequency of the assembly below 330 Hz.
3. The assembly of claim 1 , wherein the flexure element has a flexibility operable to reduce a natural frequency of the assembly below 20 Hz.
4. The assembly of claim 1 , wherein the flexure element is formed between one or more serpentine slots in the flexure layer.
5. The assembly of claim 4 , wherein each serpentine slot of the one or more serpentine slots is substantially uniform in width.
6. The assembly of claim 1 , wherein the flexure element is s-shaped.
7. The assembly of claim 1 , wherein the flexure element is bow-shaped.
8. The assembly of claim 1 , wherein the inner damping element and the outer damping element are formed between one or more serpentine slots in the flexure layer.
9. The assembly of claim 8 , wherein the inner damping element is an inner bracket attached to the inner region.
10. The assembly of claim 1 , wherein the inner damping element is formed as an inner finger and the outer damping element is formed as an outer finger, the inner finger adjoining the outer finger.
11. The assembly of claim 1 , wherein the inner damping element is an inner finger and the outer damping element is a first outer finger and a second outer finger, the inner finger interlaced between the first outer finger and the second outer finger.
12. The assembly of claim 1 , wherein the VEM is positioned between the inner damping element and the outer damping element.
13. The assembly of claim 1 , further comprising:
a constraint layer coupling the VEM layer to the flexure layer.
14. The assembly of claim 13 , wherein the constraint layer is an annular disk.
15. The assembly of claim 1 , wherein the flexure element and the damping element are in the same plane as the flexure layer.
16. A method for coupling a rotatable mass to a body, the method comprising:
coupling an inner region of a flexure layer comprising the inner region, a flexure element, a damping element, an outer region, and a damping element to a rotatable body, the flexure element having a first end coupled to the inner region and a second end coupled to the outer region and the damping element including an inner damping element coupled to the inner region, an outer damping element coupled to the outer region;
coupling the outer region to the body; and
coupling a visco-elastic material (VEM) to the inner damping element and the outer damping element of the damping element over a shearing region.
17. The method of claim 16 , the method further comprising:
coupling a constraint layer to the flexure layer, the VEM positioned between the flexure layer and the constraint layer.
18. A method for manufacturing a flexure layer operable to isolate vibrations between a rotatable mass and a body, the method comprising:
forming a flexure layer;
removing material from the flexure layer to form a flexure element, the flexure element including a first end coupled to an inner region of the flexure element and a second end coupled to an outer region of the flexure element;
removing material from a damping region of the flexure layer to form a damping element including an inner damping element coupled to the inner region, an outer damping element coupled to the outer region; and
coupling a visco-elastic material (VEM) to the inner damping element and the outer damping element of the damping element over a shearing region.