Systems and methods for a liquid metal bearing assembly fill port and plug
Various methods and systems are provided for a liquid metal bearing assembly. In one embodiment, a liquid metal bearing assembly includes a fill port fluidly coupled to a liquid metal reservoir of the liquid metal bearing assembly, the fill port comprising an inlet diameter and an outlet diameter, the outlet diameter smaller than the inlet diameter, and a pin formed to fit inside the fill port and prevent liquid metal from leaving the liquid metal reservoir via the fill port.
1. A liquid metal bearing assembly, comprising:
a fill port fluidly coupled to a liquid metal reservoir of a liquid metal bearing assembly, the fill port having an inlet diameter and an outlet diameter, the outlet diameter smaller than the inlet diameter; and
a pin shaped to fit inside the fill port and prevent liquid metal from leaving the liquid metal reservoir via the fill port.
2. The liquid metal bearing assembly of claim 1 , further comprising a rotating component and a stationary component, wherein the rotating component at least partially circumferentially surrounds the stationary component, and the liquid metal reservoir is formed at a second radial distance between the rotating component and the stationary component.
3. The liquid metal bearing assembly of claim 2 , wherein the fill port is disposed in the rotating component a first radial distance from a bearing centerline.
4. The liquid metal bearing assembly of claim 3 , wherein the fill port is disposed perpendicular to the bearing centerline.
5. The liquid metal bearing assembly of claim 3 , wherein the fill port is disposed parallel to the bearing centerline.
6. The liquid metal bearing assembly of claim 1 , wherein the fill port further comprises a stepped diameter between the inlet diameter and the outlet diameter, the stepped diameter greater than the outlet diameter and less than the inlet diameter.
7. The liquid metal bearing assembly of claim 1 , wherein the pin is configured as at least one of a ball bearing or a plug.
8. The liquid metal bearing assembly of claim 1 , wherein the pin is press fit, brazed, and/or welded into the fill port.
9. The liquid metal bearing assembly of claim 1 , wherein the liquid metal bearing assembly is a straddle bearing.
10. The liquid metal bearing assembly of claim 1 , wherein each of the fill port and the pin include a self-alignment feature to allow for press-fit insertion of the pin into the fill port.
11. The liquid metal bearing assembly of claim 10 , wherein the self-alignment feature of the pin includes an undercut in pin geometry and/or radial expansion of a body of the pin via a knife-edge member.
12. A method, comprising:
filling a reservoir of a liquid metal bearing with a lubricant by injecting the lubricant into the reservoir via a fill port in a rotating member of the liquid metal bearing; and
sealing the reservoir from an atmosphere by inserting a pin into the fill port.
13. The method of claim 12 , further comprising welding, brazing, and/or press fitting the pin into the fill port to retain the pin within the fill port.
14. The method of claim 12 , further comprising applying a wetting or antiwetting coating to at least one of the fill port or the pin.
15. An x-ray source, comprising:
a cathode;
an anode with a rotating feature where the rotating feature is rotated by a liquid metal bearing assembly having a rotating component circumferentially surrounding a stationary component, the rotating component including a fill port positioned a radial distance from a rotational axis of the liquid metal bearing assembly, and where a lubricant reservoir of the liquid metal bearing assembly is selectively isolated from atmosphere by inserting a pin into the fill port.
16. The x-ray source of claim 15 , wherein the fill port has an upper region with an inlet diameter, a lower region with an outlet diameter less than the inlet diameter, and a smooth, linear transition coupling the upper region to the lower region, wherein a diameter of the smooth, linear transition gradually transitions from the inlet diameter, adjacent to the upper region to the outlet diameter, adjacent to the lower region.
17. The x-ray source of claim 16 , wherein the lower region is configured with a first portion, having a stepped diameter, and a second portion having the outlet diameter, where the outlet diameter is less than the stepped diameter, with a stepped transition between the first portion and the second portion.
18. The x-ray source of claim 15 , wherein the pin is configured as a ball bearing which is press fit and optionally welded or brazed into the fill port using at least one of a wire ring, a washer, a braze ring, a braze ball, and a plurality of braze beads.
19. The x-ray source of claim 15 , wherein the pin is configured as a plug which is press fit and optionally welded or brazed into the fill port using at least one of a disk, a washer, a wire ring, a braze ring, and a braze ball.
20. The x-ray source of claim 19 , wherein the pin has at least one of a stepped configuration with a first plug height having a first plug width and a second plug height having a second plug width, the second plug width less than the first plug width, and a press fit configuration with an upper pin region having an upper pin diameter, a lower pin region having a lower pin diameter, and a smooth, linear pin transition wherein a diameter of the smooth, linear pin transition gradually transitions from the upper pin diameter, adjacent to the upper pin region to the lower pin diameter, adjacent to the lower pin region, and optionally including radial threads in the upper pin region.