The disclosure relates to a head mounted display, and in particular, to a head mounted display which may expand a field of view.
A large field of view (FOV) and volume miniaturization are important indicators for an augmented-reality head mounted display device. In currently available augmented reality technologies, in order to also obtain an optical-see-through function, an optical element is specifically disposed to generate a magnified virtual image for the human eye, and a user is simultaneously allowed to see the surrounding environment. Due to the volume and weight resulting from the optical element disposed in the conventional technologies, it is usually difficult to expand the field of view, and the field of view may only be 53 degrees or below in most cases, which poses various limitations to the content presented with augmented reality and the application design. The limitation on the field of view also seriously affects the sense of immersion of the user, making it difficult to also apply the content on a virtual reality platform to an augmented reality device.
The invention provides a head mounted display, which may effectively expand a range of the field of view while maintaining a light weight.
The head mounted display of the invention includes a transmissive display, a first lens, a second lens, and a beam splitter coating. The transmissive display includes an active surface. The transmissive display generates a display image beam on the active surface. The first lens includes a first surface facing the active surface of the transmissive display, and a second surface opposite to the first surface. The second lens includes a third surface and a fourth surface opposite to each other. The beam splitter coating is disposed between the second surface of the first lens and the third surface of the second lens. The third surface of a second wafer and the second surface of the first lens are attached to each other through the beam splitter coating, the first lens is a convex lens, and the second lens is a concave lens.
Based on the foregoing, in the embodiments of the invention, the first lens, the beam splitter coating, and the second lens attached to each other are disposed. In addition, the display image beam generated by the transmissive display is reflected, and the external ambient light beam is transmitted simultaneously. In this way, the field of view of the head mounted display is effectively expanded without an increase of a size of the head mounted display. Therefore, the display quality may be effectively improved with a light and thin design.
Referring to
In the present embodiment, the first lens 120 is a convex lens, and the second lens 130 is a concave lens. A display image beam generated on the active surface AF of the transmissive display 110 may be projected onto the first surface SF1 of the first lens 120. The display image beam may be further transmitted to the beam splitter coating 140 on the second surface SF of the first lens 120. The beam splitter coating 140 may reflect the received display image beam to generate a reflected display image beam, and transmit the reflected display image beam through the transmissive display 110 to be projected to a target region TG. The target region TG is an exit pupil position of the head mounted display 100 and corresponds to a position of an eyeball of a user of the head mounted display 100. The eyeball of the user of the head mounted display 100 faces a non-active surface NAF of the transmissive display 110.
In addition, in the present embodiment, an ambient light beam may be received by the fourth surface SF4 of the second lens 130. The ambient light beam may be transmitted to the third surface SF3 of the second lens 130 and penetrate through the beam splitter coating 140, and generate a focused ambient light beam according to a focusing effect generated by the second lens 130 and the first lens 120. The focused ambient light beam may be transmitted to penetrate through the transmissive display 110 and transmitted to the target region TG.
It should be noted herein that in the present embodiment, the first surface SF1 of the first lens 120 may include a first curvature CR1, and the second surface SF2 of the first lens 120 may include a second curvature CR2. An absolute value of the first curvature CR1 is less than an absolute value of the second curvature CR2. The third surface SF3 of the second lens 130 may include a third curvature CR3, and the fourth surface SF4 of the second lens 130 may include a fourth curvature CR4. An absolute value of the third curvature CR3 is greater than an absolute value of the fourth curvature CR4. In addition, the first curvature CR1 may be the same as the fourth curvature CR4, and a sum of the second curvature CR2 and the third curvature CR3 may be 0.
In particular, the second surface SF2 of the first lens 120 may be a convex surface, and the third surface SF3 of the second lens 130 may be a concave surface. In addition, the first surface SF1 of the first lens 120 and the fourth surface SF4 of the second lens 130 may be flat surfaces with a same curvature or curved surfaces with the same curvature.
Incidentally, in the present embodiment, the transmissive display 110, the first lens 120, the beam splitter coating 140, and the second lens 130 may be disposed in a tube of the head mounted display 100.
Referring to
In
In addition, the other light beam LB21 may be transmitted to the fourth surface SF4 of the second lens 220 from an outside of the fourth surface SF4 of the second lens 220. The second lens 220 may deflect the light beam LB21 to generate a light beam LB22, and cause the light beam LB22 to travel in the second lens 220 and be transmitted to the beam splitter coating 230 on the third surface SF3 of the second lens 220. The beam splitter coating 230 may cause the light beam LB22 to be penetrated and transmitted to the first lens 210. When the light beam LB22 is transmitted onto the first surface SF1 of the first lens 210, the optical path is deflected again, and a light beam LB23 is generated to be transmitted out of the first lens 210. The light beam LB23 may be transmitted to the target region.
Referring to
The beam splitter coating 340 is configured to reflect the display image beam IMB to generate a reflected display image beam RIMB. The reflected display image beam RIMB penetrates through the first surface SF1 of the first lens 320 to be transmitted to a target region TG behind the transmissive display 310.
In the present embodiment, the display image beam IMB may be an image beam of a virtual reality image. Through the reflected display image beam RIMB transmitted to the target region TG, a user may smoothly observe a virtual reality image generated on an active surface of the transmissive display 310.
In
Based on the foregoing, according to the invention, a lens group is disposed in the tube of the head mounted display device, and the beam splitter coating in the lens group is used to reflect one part of the light beam and the other part of the light beam is transmitted, thereby expanding the field of view. In this way, the head mounted display device of the invention may expand the field of view with a light and thin design, effectively improving product competitiveness of the head mounted display device.