A METAL SPACE FRAME RADOME
20200321695 ยท 2020-10-08
Inventors
- Bryan Garrity (Marlborough, MA, US)
- Mark V. Wasson (Billerica, MA, US)
- Thomas Feldmar (Clinton, MA, US)
- Anatol Kwartler (Maynard, MA, US)
Cpc classification
F16B5/0084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01Q1/42
ELECTRICITY
International classification
Abstract
A radome with constructed panels that are mechanically fastened to each other to form a truncated faceted spherical structure. Each panel is constructed of a metal frame and a membrane attached to the frame. The mechanically fastened frame beams panel-to-panel contact spaces are sealed to prevent water ingress.
Claims
1. A radome comprising: panels that are mechanically fastened to each other to form a faceted spherical structure; each of said panels is constructed of a metal frame and a membrane that is attached to said frame; spaces between fastened frames of panel to panel contact are sealed to prevent water ingress; apexes of said fastened frames are sealed to prevent water ingress.
2. A membrane of a panel of a radome: said membrane being attached and retained by a metal frame; said membrane being sandwiched between two serrated (toothed) frame beams while imparting a compressive load in said beams using a mechanical fastener, causing said teeth to clamp down on said membrane.
3. The membrane of claim 2 wherein each of said tooth profile configured with surfaces that are parallel to said beam principal longitudinal axis and surfaces that are diagonal relative to said beam principal longitudinal axis.
4. The membrane of claim 2 wherein individual beams are mated to create an assembled frame beam with a captured membrane between said individual beams, dimensional selection allowing for a small clearance between said tooth surfaces that are parallel to said beams principal longitudinal axis.
5. The membrane of claim 2 wherein geometric configuration enables compressive force that is imparted to said individual beams when mechanically fastened to each other to convert into a membrane pinching force at said tooth diagonal surfaces intersection lines only, thus maximizing resistance of said membrane to a pull-out force without said teeth corners piercing (damaging) said membrane.
6. The membrane of claim 5 wherein each half of said panel frame beam that sandwiches said membrane is identical and inverse of the other.
7. The membrane of claim 2 wherein all said the metal frame beams are extruded using an identical extrusion die.
8. The membrane of claim 2 wherein said individual beams are either bolted or riveted when assembled into an assembled frame beam with a captured membrane between said individual beams.
9. A shank-with-flange modified cross-section shaped gasket comprising: two sealing devices in series to prevent water ingress into a radome across beam contacts; one sealing device comprises a gasket shank; a second sealing device comprises a gasket flange.
10. The shank with flange gasket of claim 9 wherein said gasket shank or stem tits into a membrane lined cavity, created when panel frame beams of adjacent panels are fastened mechanically to one another during radome erecting.
11. The shank with flange gasket of claim 10 wherein said cavity shape and cross-section size, and gasket cross-section shape and size attain a desired compression in the gasket shank under any cumulative tolerances condition.
12. The shank with flange gasket of claim 11 wherein contact between the compressed shank and membrane lined cavity creates one sealing device.
13. The shank with flange gasket of claim 9 wherein said gasket flange angles towards said shank.
14. The shank with flange gasket of claim 13 wherein magnitude of said angle and flange size is a function of a radome diameter and number of panels, which establish said angle between adjacent panels.
15. The shank with flange gasket of claim 9 wherein when said gasket is installed, said gasket flange remains outside said cavity and presses against adjacent panel membranes due to its free state angling towards said shank, thus creating said second sealing device.
16. The shank and flange gasket of claim 9 wherein said cavity and gasket shank cross-section shapes enable retaining of said gasket shank thus preventing said gasket from escaping or squeezing out of said cavity when compressed.
17. A cluster sealing for a radome comprising: an intersection of multiple triangular panels culminating in an apex where clustered corners of multiple panel frames are joined by mechanical devices; a cluster gasket used to seal each radome apex to prevent water ingress into said radome cluster joints. a cluster assembly gasket sandwiched between frame membranes and a metal cluster cap cover.
18. The cluster sealing of claim 17 wherein said radome diameter and number of panels establishes relative angle between adjacent panels, establishing radome contour.
19. The cluster sealing of claim 17 wherein said cluster gasket remains compressed against adjacent apex membranes regardless of said radome contour creating a water tight seal.
20. The cluster sealing of claim 17 wherein said cluster sealing maintains compressive contact between cluster sealing gaskets and adjacent radome membranes at each apex under varying radome contours by shaping said cluster gasket longitudinal axis cross-section as a cylinder featuring a constant outside diameter and stepped inner diameter, a stepped cone, when installed, gasket inner stepped cone smallest step diameter faces said radome interior.
21. The cluster sealing of claim 19 wherein contact area and pressure of said gasket on said apex panels is optimized for varying said radome contours by selecting number gasket inner diameter steps, landing length and height of each inner diameter step, size of constant outer diameter, and gasket material.
22. The cluster sealing of claim 19 wherein said gasket is fabricated as a bonded assembly of several layers of varying inner diameter and identical outer diameter straight wall cylinders or molded into final shape.
23. An adjustable panel beam corner joining structure comprising: adjacent beams of each triangular radome panel attached to each other at corners by an assembled corner hinge-like structure; said hinge-like structure formed when its two identical structure flanges are joined by a shoulder bolt passing through cavity of pivot axis; each panel corner beam attached to one flange of said hinge-like structure.
24. The joining structure of claim 23 wherein angle between said hinge-like structure flanges is adjusted angle formed by beams of different size triangular radome panels.
25. The joining structure of claim 24 wherein angular adjustment is accomplished by pivoting each of said hinge-like structure flange relative to other about said shoulder bolt joining members.
26. The joining structure of claim 24 wherein said angle between said hinge-like structure flanges is controlled by a gusset spacer pressed and pinned-in-place to accurately angle said hinge-like structure flanges relative to each other, gusset dimensions that impart said relative angle between flanges are proportional to radome panel size.
27. The joining structure of claim 26 wherein tabs on each hinge-like structure flange align and control exact position of said gusset when installed.
28. The joining structure of claim 23 wherein two adjustable members, upper and lower hinges of said hinge-like structure, are an identical profile so both are extruded as a long profile and subsequently cut into identical parts.
29. The joining structure of claim 23 wherein said hinge-like structure pivot shoulder bolt acts as a pivot or hinge stem and serve to attach one radome panel to said cluster caps.
30. A radome comprising: panels that are mechanically fastened to each other to form a faceted spherical structure; cut edges and holes on every panel membrane sealed from water contact; encapsulating said cut edges and adjacent holes within a sealing-film-channel around said membrane periphery fused to a membrane film-coating on both sides of said membrane.
31. The radome of claim 30 wherein said cut edges of said panel membranes to be sealed use a film wrapped over said membranes edge to form a channel.
32. The radome of claim 30 wherein said sealing-film-channel and said membrane film-coating are fused when subjected to an optimal temperature, pressure and time cycle.
33. The radome of claim 30 wherein all fastener through-holes cut into said panel membranes are larger than diameter that is necessary to allow each mechanical fastener to pass through said film-coated panel membrane, through-hole diameter oversize amount is dependent on mechanical fastener diameter, temperature, pressure and time fusing cycle.
34. The radome of claim 30 wherein during process of fusing said sealing-film-channel to said membrane film-coating, said sealing-film-channel sides fuse to each other over each through-hole, forming a single film that bridges each oversized through-hole.
35. The radome of claim 34 wherein when piercing said single sealing-film that bridges over through-holes to smaller diameter of said mechanical fastener passing through it, edge of each hole remains sealed.
36. A panel of a radome comprising: a membrane; panel outside beam; panel inside beam; pinch point; and attachment hardware.
37. A cluster sealing complex comprising: panel membranes; joined beams, a cluster gasket; an outer metal cluster cap cover; an inner metal cluster cap cover; and shoulder bolts.
38. An adjustable panel beam corner joining structure comprising: a lower hinge; an upper hinge; a gusset; a shoulder bolt; and split bushings.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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