This invention relates generally to a viewing device and more specifically to a method of forming and assembling a dust seal in a viewing device.
Modern computing and display technologies have facilitated development of visual perception devices such as “virtual reality” viewing devices. A virtual reality viewing device may be a wearable device that presents the user with two images, one for the left eye and one for the right eye. Objects in the images may differ from one another in a manner that allows the brain to process the objects as a three-dimensional object. When the images constantly change, movement in three-dimensions can be simulated. A virtual reality viewing device typically involves presentation of digital or virtual image information without transparency to other real-world objects.
Other visual perception devices, so called “augmented reality” viewing devices usually include technology that allows for the presentation of digital and virtual image information as an augmentation to visualization of the actual world around the user. An augmented reality viewing device may, for example, have one or more transparent eyepieces that allow the user to see real world objects behind the eyepieces. Such an eyepiece can serve as a wave guide through which light propagates from a projector towards an eye of the user. A light pattern created by the projector becomes visible on the retina of the eye. The retina of the eye then receives light from the real-world objects behind the eyepiece and light from the projector. Real world objects are thus augmented with image data from the projector, in the perception of the user.
Augmented reality devices often have technology that permit for an object to remain in a stationary position relative to real world objects, as perceived by the user, even if the user would move their head. If the user would, for example, rotate their head to the right, the rendered object has to rotate to the left within the view of the user together with real world objects. Movement of the augmented reality device may be tracked through a visual system that includes one or more cameras and depth sensors in combination with a measurement device such as an inertial measurement unit (IMU) so that the position of the object can be adjusted via the projector.
The invention provides a viewing device including a shell piece defining a first window opening, an internal mounting structure secured to the shell piece, a first camera assembly including, a transparent window mounted to the shell piece over the window first opening, the transparent window having a periphery that makes continuous contact with the shell piece, a camera having a lens, the camera being mounted to the internal mounting structure with a gap defined between the lens and the window and a seal having a first external surface contacting the shell piece and a second external surface contacting the camera so that a closed front cavity is defined jointly by the window, the lens and the seal.
The invention also provides a method of constructing a viewing device including mounting a transparent window to the shell piece over the window opening defined by the shell piece, the window having a periphery that makes continuous contact with the shell piece, mounting a camera to the internal mounting structure, locating a seal between the shell piece and the internal mounting structure and securing the internal mounting structure to the shell piece with a gap defined between a lens of the camera and the window and with the seal having a first external surface contacting the shell piece and a second external surface contacting the camera so that a closed front cavity is defined jointly by the window, the lens and the seal.
The invention is further described by way of example with reference to the accompanying drawings, wherein:
The first main sub-assembly 22 includes a shell piece 26 and first and second shell-side camera sub-assemblies 28 and 30.
The second main sub-assembly 24 includes an internal mounting structure 32, a camera electronics board 34 and first and second mounting structure-side camera sub-assemblies 36 and 38. The first and second mounting structure-side camera sub-assemblies 36 and 38 are secured to the camera electronics board 34. The camera electronics board 34 is then secured to the internal mounting structure 32.
The shell piece 26 and the internal mounting structure 32 are shown in the spaced relationship described with reference to
The first seal member 44 is an annular member that has a first external surface 64 and first engagement surface 66. An adhesive 68 is located between and secures the first external surface 64 to the shell piece 26. The adhesive 68 forms a continuous annular ring that seals continuously with the shell piece 26. A continuous annular seal between the shell piece 26 and the first external surface 64 ensures that dust particles cannot enter through any gap between the shell piece 26 and the first seal member 44.
The camera 46 has a camera body 70 and a lens 72 on the camera body 70. The camera body 70 is mounted to the camera electronics board 34. A gap 74 is defined between the transparent window 43 and the lens 72.
The second seal member 48 has an annular shape and has a second external surface 76 and second engagement surface 78.
Referring again to
The camera body 70 has a circular shape. The second external surface 76 is located around an external surface of the camera body 70. The second external surface 76 forms a seal around the camera body 70. The second external surface 76 is slightly smaller than the external surface of the camera body 70 so that the second external surface 76 is slightly deformed by the shape of the camera body 70. Continuous circumferential contact between the second external surface 76 and the camera body 70 ensures that no dust particles can travel from right to left between the camera body 70 and the second seal member 48.
When the shell piece 26 and the internal mounting structure 32 are moved from the spaced relationship towards the assembled relationship relatively towards one another, the first engagement surface 66 makes contact with the second engagement surface 78. Further movement of the shell piece 26 and the internal mounting structure 32 into the assembled relationship causes the first and second seal members 44 and 48 to deform each other. The first engagement surface 66 is depressed into the first seal member 44 and the second engagement surface 78 is depressed into the second seal member 48.
The first and second engagement surfaces 66 and 78 make continuous contact through an entire annulus around the camera body 70. Such continuous contact between the first and second engagement surfaces 66 and 78 completes the formation of a closed front cavity 98. The closed front cavity 98 is defined jointly by the transparent window 43, the shell piece 26, a portion of the camera 46 that includes the camera body 70 and lens 72, and a seal 100 that is formed by the first and second seal members 44 and 48 between the camera 46 and the shell piece 26. The closed front cavity 98 provides a space between the lens 72 and the transparent window 43 that will remain free of dust particles due to the seal 100 that is provided between the shell piece 26 and the camera 46 and because the transparent window 43 has a circular periphery 62 that seals circumferentially with the first window opening 60 in the shell piece 26.
The second mounting structure-side camera sub-assembly 38 includes a camera 110 and a third seal member 112. The camera 110 is secured to the camera electronics board 34. The third seal member 112 is secured to the camera electronics board 34 and seals with an outer surface of the camera 110.
With the shell piece 26 and the internal mounting structure 32 in the spaced relationship as shown, the third seal member 112 is slightly misaligned relative to the second seal member 108. The misalignment is because an axis of the first camera is at an angle relative to the direction that the internal mounting structure 32 is moved relative to the shell piece 26 from the spaced relationship to the assembled relationship. See
Manufacturing may require a 1.2 mm gap between components on the first and second main sub-assemblies 22, 24 that a seal has to fill. However, due to manufacturing tolerances such a gap can vary significantly. For example, the designed 1.2 mm gap can vary from a minimum gap of 0.6 mm to a maximum gap of 1.8 mm. It is thus required that the combined seal formed by the seal members be at least 1.8 mm in thickness and be compressible to 0.6 mm. A 200% compression may result in undesirable stresses if certain materials are used. Stresses between the first and second main sub-assemblies 22, 24 can result in deformations of one or more components of the sub-assemblies 22, 24. Deformations can cause changes in relationships between highly sensitive components, such as optical projectors and waveguide structures, and can significantly diminish quality of an image that is delivered to a user. Thus, manufacturing seal components from highly compressible materials can be advantageous in limiting a force applied to the main sub-assemblies 22, 24 during compression of seals disposed in gaps having high tolerance variance between the main sub-assemblies 22, 24. An open cell foam provides a material that has a very low spring constant and, for that reason, is a preferred material for the seal members described herein. Open cell foam may provide advantages over closed cell foam because open cell foam can have a lower spring constant than closed cell foam. Openings in open cell foam are still sufficiently small to prevent dust particles from passing therethrough. Open cell foam is also preferred over parts such as gromets or bellows-type parts because it is much easier to manufacture very tiny parts using open cell foam.
When an open cell material is compressed to a point where all of the open cells have been collapsed, hard stacking occurs. At the hard stacking point, any additional compression applied to the material is met with a high resistance because the material surrounding the open cells is being pushed into contact against itself rather than displacing under the compression. It is preferable that a seal member be made of a foam having an initial dimension that is compressible to a final dimension before hard stacking wherein the final dimension is less than 10% of the initial dimension. Open cell foam can be compressed more than closed cell foam before hard stacking occurs.
The seal material preferably reduces its resistance to compression force over a short period of time, i.e. compression setting occurs relatively quickly. Compression set of a material can be defined as the amount of permanent deformation that occurs as a result of force applied to the compressible material. The permanent deformation that occurs over exposure to the compressed state results in a decreasing resistance force applied to the components that are causing the compression of the seal. Preferably, the force that is created by the compression of the seal material reduces by 50% in less than 5 minutes. Such a reduction in the force further reduces stresses on other components of the viewing device such as the camera or other electronic or optical components.
A seal material that has high compressibility can prove difficult to fabricate in certain dimensions. For example, if the annular dimension of the seal is small but the thickness of the seal is large, the seal may be difficult to form using traditional methods, such as die cutting. To improve seal quality and tolerances, two shorter seals having reduced thicknesses can be fabricated and then stacked on each other to total the designed thickness of the seal component. This solution allows for thick seals to be formed from highly compressible materials for use in high-precision devices, such as the visual system described herein, where any additional force imparted to the assemblies carrying precision aligned components can disturb their positional relationships and reduce overall performance of the system.
A visual system may include the two cameras that have been described as part of a set of four to six cameras that are used together with a depth sensor to capture objects and to determine distances to the objects. A head pose and position and position of a user can be determined by processing imagery from the visual system using a simultaneous localization and mapping (SLAM) and visual odometry procedure. Such continual processing of the images provides data that indicates movement of the viewing device relative to the objects. Because the depth sensor and a gravity sensor determine the locations of the objects relative to gravitation force, the cameras can detect movement of the viewing device relative to gravitation force. The viewing device has a see-through waveguide and a projector projects an image through the waveguide on to a retina of an eye of the user. The user thus sees a rendered object within a real world environment. The objects remain fixed within the real world environment even when the user moves their head. The stationary position of the objects is made possible because the viewing system is used to determine objects in the real world environment relative to the view of the user when the user moves their head.
While the seals are referred to as circular throughout the description, one of skill in the art will appreciate that the concept of fabricating a highly compressible seal with a high thickness-to-width ratio can apply to many shapes and designs for gaskets or seals. While certain exemplary embodiments have been described and shown in the accompanying drawings, it is to be understood that such embodiments are merely illustrative and not restrictive of the current invention, and that this invention is not restricted to the specific constructions and arrangements shown and described since modifications may occur to those ordinarily skilled in the art.
This application is a National Phase of International Application No. PCT/US2019/043097, filed on Jul. 23, 2019, which claims priority from U.S. Provisional Patent Application No. 62/702,731, filed on Jul. 24, 2018, all of which are incorporated herein by reference in their entirety.
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/US2019/043097 | 7/23/2019 | WO |
| Publishing Document | Publishing Date | Country | Kind |
|---|---|---|---|
| WO2020/023543 | 1/30/2020 | WO | A |
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| Number | Date | Country | |
|---|---|---|---|
| 20210325682 A1 | Oct 2021 | US |
| Number | Date | Country | |
|---|---|---|---|
| 62702731 | Jul 2018 | US |