See-through computer display systems
An apparatus includes an eye cover adapted to be removably mounted on a head-worn computer with a see-through computer display and a flexible audio headset mounted to the eye cover. The flexible audio headset is mounted to the eye cover with a magnetic connection.
1. A wearable head device comprising:
an image source; and
display optics configured to provide a first view of the image source to a user of the wearable head device and further configured to provide a second view of the image source to the user,
wherein:
the display optics are telecentric with respect to the image source,
the image source is configured to move with respect to a first optical element of the display optics,
the first optical element comprises a powered prism,
the display optics comprise a lens and a combiner,
the first view corresponds to a first focus distance,
the second view corresponds to a second focus distance different from the first focus distance,
providing the first view comprises providing a view of the image source when the image source is located a first distance from the first optical element,
providing the second view comprises providing a view of the image source when the image source is located a second distance from the first optical element,
the view of the image source in the first view is substantially the same size as the view of the image source in the second view, and
the display optics are further configured to provide a view of an environment of the user concurrently with providing the first view of the image source.
2. The wearable head device of claim 1 , further comprising an illumination source configured to illuminate the image source, wherein the illumination source is at least partially telecentric with respect to the image source.
3. The wearable head device of claim 1 , further comprising a first wedge and a second wedge, the first wedge in contact with the second wedge and configured to move with respect to the second wedge, wherein:
the first wedge and the second wedge are each disposed between the image source and the first optical element,
motion of the first wedge in a first direction with respect to the second wedge displaces the image source in a first direction with respect to the first optical element, and
motion of the first wedge in a second direction with respect to the second wedge displaces the image source in a second direction with respect to the first optical element.
4. The wearable head device of claim 3 , wherein the first wedge comprises a first transparent portion and the second wedge comprises a second transparent portion, such that light from the image source can be viewed through the first transparent portion and further through the second transparent portion.
5. The wearable head device of claim 1 , further comprising one or more piezoelectric actuators disposed between the image source and the first optical element, wherein:
application of a first signal to the one or more piezoelectric actuators displaces the image source to the first distance from the first optical element to provide the first view, and
application of a second signal to the one or more piezoelectric actuators displaces the image source to the second distance from the first optical element to provide the second view.
6. The wearable head device of claim 5 , wherein the one or more piezoelectric actuators comprises a pair of bimorph piezoelectric actuators.
7. The wearable head device of claim 1 , further comprising a scissors jack actuator disposed between the image source and the first optical element, wherein:
the scissors jack actuator comprises a shaft having an adjustable length,
adjustment of the shaft length to a first length displaces the image source to the first distance from the first optical element to provide the first view, and
adjustment of the shaft length to a second length displaces the image source to the second distance from the first optical element to provide the second view.
8. The wearable head device of claim 1 , further comprising a voice coil motor, the image source coupled to the voice coil motor, wherein:
application of a first signal to the voice coil motor displaces the image source to the first distance from the first optical element to provide the first view, and
application of a second signal to the voice coil motor displaces the image source to the second distance from the first optical element to provide the second view.
9. The wearable head device of claim 1 , wherein:
the display optics are configured to provide the first view in response to a determination that a focus distance of the user corresponds to the first focus distance; and
the display optics are configured to provide the second view in response to a determination that the focus distance of the user corresponds to the second focus distance.
10. A method of providing views to a user of a wearable head device, the method comprising:
providing, to the user, via display optics of the wearable head device, a first view of an image source of the wearable head device; and
providing, to the user, via the display optics, a second view of the image source;
wherein:
the display optics are telecentric with respect to the image source,
the first optical element comprises a powered prism,
the display optics comprise a lens and a combiner,
the image source is configured to move with respect to a first optical element of the display optics,
the first view corresponds to a first focus distance,
the second view corresponds to a second focus distance different from the first focus distance,
providing the first view comprises providing a view of the image source when the image source is located a first distance from the first optical element,
providing the second view comprises providing a view of the image source when the image source is located a second distance from the first optical element,
the view of the image source in the first view is substantially the same size as the view of the image source in the second view, and
the method further comprises providing to the user, via the display optics, a view of an environment of the user concurrently with providing the first view of the image source.
11. The method of claim 10 , further comprising illuminating the image source via an illumination source of the wearable head device, wherein the illumination source is at least partially telecentric with respect to the image source.
12. The method of claim 10 , the wearable head device comprising a first wedge and a second wedge, the first wedge in contact with the second wedge and configured to move with respect to the second wedge, wherein:
the first wedge and the second wedge are each disposed between the image source and the first optical element,
motion of the first wedge in a first direction with respect to the second wedge displaces the image source in a first direction with respect to the first optical element, and
motion of the first wedge in a second direction with respect to the second wedge displaces the image source in a second direction with respect to the first optical element.
13. The method of claim 12 , wherein the first wedge comprises a first transparent portion and the second wedge comprises a second transparent portion, such that light from the image source can be viewed through the first transparent portion and further through the second transparent portion.
14. The method of claim 10 , the wearable head device comprising one or more piezoelectric actuators disposed between the image source and the first optical element, wherein:
application of a first signal to the one or more piezoelectric actuators displaces the image source to the first distance from the first optical element to provide the first view, and
application of a second signal to the one or more piezoelectric actuators displaces the image source to the second distance from the first optical element to provide the second view.
15. The method of claim 14 , wherein the one or more piezoelectric actuators comprises a pair of bimorph piezoelectric actuators.
16. The method of claim 10 , the wearable head device comprising a scissors jack actuator disposed between the image source and the first optical element, wherein:
the scissors jack actuator comprises a shaft having an adjustable length,
adjustment of the shaft length to a first length displaces the image source to the first distance from the first optical element to provide the first view, and
adjustment of the shaft length to a second length displaces the image source to the second distance from the first optical element to provide the second view.
17. The method of claim 10 , the wearable head device comprising a voice coil motor, the image source coupled to the voice coil motor, wherein:
application of a first signal to the voice coil motor displaces the image source to the first distance from the first optical element to provide the first view, and
application of a second signal to the voice coil motor displaces the image source to the second distance from the first optical element to provide the second view.
18. The method of claim 10 , wherein:
providing the first view comprises providing the first view in response to a determination that a focus distance of the user corresponds to the first focus distance; and
providing the second view comprises providing the second view in response to a determination that the focus distance of the user corresponds to the second focus distance.