Systems and methods for mixed reality

US11935206B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11935206-B2
Application numberUS-202318296141-A
CountryUS
Kind codeB2
Filing dateApr 5, 2023
Priority dateMay 16, 2017
Publication dateMar 19, 2024
Grant dateMar 19, 2024

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  1. Title

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  5. First independent claim

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Abstract

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A virtual image generation system comprises a planar optical waveguide having opposing first and second faces, an in-coupling (IC) element configured for optically coupling a collimated light beam from an image projection assembly into the planar optical waveguide as an in-coupled light beam, a first orthogonal pupil expansion (OPE) element associated with the first face of the planar optical waveguide for splitting the in-coupled light beam into a first set of orthogonal light beamlets, a second orthogonal pupil expansion (OPE) element associated with the second face of the planar optical waveguide for splitting the in-coupled light beam into a second set of orthogonal light beamlets, and an exit pupil expansion (EPE) element associated with the planar optical waveguide for splitting the first and second sets of orthogonal light beamlets into an array of out-coupled light beamlets that exit the planar optical waveguide.

First claim

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What is claimed is: 1. A virtual image generation system comprising: a planar optical waveguide having opposing first and second faces; an in-coupling (IC) element configured for optically coupling a collimated light beam from an image projection assembly into the planar optical waveguide as an in-coupled light beam; a first orthogonal pupil expansion (OPE) element associated with the first face of the planar optical waveguide for splitting the in-coupled light beam into a first set of orthogonal light beamlets; a second orthogonal pupil expansion (OPE) element associated with the second face of the planar optical waveguide for splitting the in-coupled light beam into a second set of orthogonal light beamlets; and an exit pupil expansion (EPE) element associated with the planar optical waveguide for splitting the first and second sets of orthogonal light beamlets into an array of out-coupled light beamlets that exit the planar optical waveguide. 2. The virtual image generation system of claim 1 , where planar optical waveguide is formed of a single unitary substrate. 3. The virtual image generation system of claim 1 , wherein the first OPE element is disposed on the first face of the planar optical waveguide, and the second OPE element is disposed on the second face of the planar optical waveguide. 4. The virtual image generation system of claim 1 , wherein the EPE element is disposed on one of the first and second surfaces of the planar optical waveguide. 5. The virtual image generation system of claim 1 , wherein the IC element is configured for optically coupling the collimated light beam from the image projection assembly as the in-coupled light beam for propagation within the planar optical waveguide via total internal reflection (TIR) along a first optical path that alternately intersects the first OPE element and the second OPE element, such that portions of the in-coupled light beam are deflected as the respective first set of orthogonal light beamlets and the second set of orthogonal light beamlets that propagate within the planar optical waveguide via TIR along second parallel optical paths. 6. The virtual image generation system of claim 5 , wherein the second parallel optical paths are orthogonal to the first optical path. 7. The virtual image generation system of claim 1 , wherein the first set of orthogonal light beamlets and the second set of orthogonal light beamlets intersect the EPE element, such that portions of the first set of orthogonal light beamlets and the second set of orthogonal light beamlets are deflected as the out-coupled light beamlet array out of the planar optical waveguide. 8. The virtual image generation system of claim 1 , wherein the EPE element is configured for imparting a convex wavefront profile on the out-coupled light beamlet array exiting the planar optical waveguide, the convex wavefront profile having a center of radius at a focal point to produce an image at a given focal plane. 9. The virtual image generation system of claim 1 , wherein the collimated light beam defines an entrance pupil, and the out-coupled light beamlet array defines an exit pupil larger than the entrance pupil. 10. The virtual image generation system of claim 9 , wherein the exit pupil is at least ten times larger than the entrance pupil. 11. The virtual image generation system of claim 9 , wherein the exit pupil is at least one hundred times larger than the entrance pupil. 12. The virtual image generation system of claim 1 , wherein each of the IC element, OPE element, and EPE element is diffractive. 13. The virtual image generation system of claim 1 , wherein the out-coupled light beamlet array is a two-dimensional out-coupled light beamlet array. 14. The virtual image generation system of claim 1 , further comprising the image projection assembly. 15. The virtual image generation system of claim 14 , wherein the image projection assembly comprises a scanning device configured for scanning the collimated light beam.

Assignees

Inventors

Classifications

  • G06T19/006Primary

    Mixed reality (object pose determination, tracking or camera calibration for mixed reality G06T7/00) · CPC title

  • Diffraction gratings {(holographic optical elements G02B5/32, G03H; integrally combined with optical fibres G02B6/02057; for coupling light guides G02B6/34; integrally combined with optical integrated light guides G02B6/12; grating systems G02B27/44)} · CPC title

  • for controlling the direction of light (in light guides G02B6/35) · CPC title

  • characterised by optical features · CPC title

  • Diffractive optical elements, e.g. gratings, holograms (gratings per se G02B5/18; holograms used as optical elements per se G02B5/32) · CPC title

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What does patent US11935206B2 cover?
A virtual image generation system comprises a planar optical waveguide having opposing first and second faces, an in-coupling (IC) element configured for optically coupling a collimated light beam from an image projection assembly into the planar optical waveguide as an in-coupled light beam, a first orthogonal pupil expansion (OPE) element associated with the first face of the planar optical w…
Who is the assignee on this patent?
Magic Leap Inc
What technology area does this patent fall under?
Primary CPC classification G06T19/006. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Mar 19 2024 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 12 related publications on this page (citations in our corpus or others sharing the same primary CPC).