PORTABLE INFORMATION HANDLING SYSTEM WITH A MULTI-TORQUE HINGE TO SUPPORT WHITEBOARD INPUT MODE
20230176627 · 2023-06-08
Assignee
Inventors
Cpc classification
E05D2011/085
FIXED CONSTRUCTIONS
G06F3/0488
PHYSICS
E05D11/084
FIXED CONSTRUCTIONS
G06F1/169
PHYSICS
G06F1/1679
PHYSICS
G06F1/1618
PHYSICS
G06F1/1684
PHYSICS
E05D11/087
FIXED CONSTRUCTIONS
International classification
E05D11/08
FIXED CONSTRUCTIONS
Abstract
A portable information handling system includes a variable torque hinge that increases torque to resist hinge rotation when the information handling system housing rotates to a writing position, such as rotation to a range of between 300 and 350 degrees. In one embodiment, a sequential hinge rotates in the writing range about one axle that has increased friction in the desired writing range generated by a cam having a variable surface area and depth to work a variable friction between a friction structure and axle end cap.
Claims
1. An information handling system comprising: a housing having first and second housing portions; a processor disposed in the housing and operable to execute instructions to process information; a memory disposed in the housing and interfaced with the processor, the memory operable to store the instructions and information; a touchscreen display coupled to the housing and operable to detect end user touches as inputs; and a hinge rotationally coupling the first and second housing portions, the hinge having a torque engine generating friction in response to rotation of the first and second housing portions, the friction providing torque to resist rotation of the first and second housing portions, the hinge rotating the first and second housing portions from a closed position for 360 degrees to a tablet position, the torque engine having at least a first torque and a second torque, the first torque having a first level associated with maintaining a stationary rotational orientation through a first rotation range when free of rotational force, the second torque having a second level greater than the first level and associated with maintaining a stationary rotational orientation through a second rotational range when a writing force is applied against the display, the second rotational range having the first housing portion resting on a support surface, the second housing portion elevated above the support surface at an angle and the display exposed with an upward orientation at the second housing portion to accept end user touch inputs.
2. The information handling system of claim 1 wherein the second rotational range is substantially 300 degrees to 350 degrees of rotation from the closed position.
3. The information handling system of claim 1 wherein the torque engine comprises: a friction structure configured to maintain a position relative to a hinge axle as the hinge axle turns; an axle cap that couples to the axle to turn with the axle as the first and second housing portions rotate; and a cam disposed between the friction structure and axle cap to increase friction in the second rotational range.
4. The information handling system of claim 1 wherein the hinge further comprises: a first axle coupled to the first housing portion; a second axle coupled to the second housing portion; a sequential rotation device interfaced between the first and second axles to manage sequential rotation of the first and second axles; a friction structure coupled between the first and second axles; an axle cap coupled to the first axle; and a cam integrated in the friction structure and aligned to increase force applied to the axle cap when in the second rotational range.
5. The information handling system of claim 1 wherein the hinge further comprises: a first axle coupled to the first housing portion; a second axle coupled to the second housing portion; a synchronized rotation device interfaced between the first and second axles to manage synchronized rotation of the first and second axles; a friction structure coupled between the first and second axles; a first axle cap coupled to the first axle; and a cam integrated in the friction structure and aligned to increase force applied to the axle cap when in the second rotational range.
6. The information handling system of claim 5 further comprising a second axle cap coupled to the second axle, the friction structure integrating a second cam aligned to increase force applied to the second axel cap when in the second rotational range.
7. (canceled)
8. The information handling system of claim 1 further comprising: one or more sensors operable to detect the housing rotational orientation; an embedded controller interfaced with the one or more sensors and configured to detect the second rotational range; and a torque enhancer interfaced with the hinge and the embedded controller, the embedded controller commanding enhanced torque when the housing has the second rotational range and a writing orientation.
9. The information handling system of claim 8 wherein the embedded controller commands the enhanced torque in response to a palm detected at the touchscreen display in a writing position.
10. A method for managing torque during rotation of a portable information handling system housing having first and second housing portions, the method comprising: resisting rotation of the first and second housing portions through a first rotation range with a maintenance torque associated with maintaining a stationary rotational orientation when the first and second housing portions are free of rotational force; and resisting rotation of the first and second housing portions through a second rotation range with a writing torque associated with maintaining a stationary rotational orientation when a writing force is applied against a display of the information handling system, the second rotation range configured to have one of the first and second housing portions resting on a support surface and the other of the first and second housing portions elevated above the support surface with the display exposed at an upper side to accept written inputs.
11. The method of claim 10 wherein the second rotational range is substantially 300 degrees to 350 degrees of rotation from a closed position.
12. The method of claim 10 further comprising: generating the maintenance torque by friction between a hinge axle cap and a friction structure that work against each other during rotation of the hinge; and generating the writing torque by a cam disposed between the axle cap and friction structure that engages when the hinge rotates to the second rotation range.
13. The method of claim 12 wherein: the hinge rotates first and second axles sequentially; and the cam generates the writing torque at only one axle of the hinge having rotation in the second rotation range.
14. The method of claim 12 wherein: the hinge rotates first and second axles synchronously; and first and second cams couple between the axle caps and friction structure for the first and second axles of the hinge to each generate the writing torque in the second rotation range.
15. The method of claim 10 further comprising: sensing the second rotation range with sensors of the information handling system; sensing a hand placement on the display in a writing position; and in response to the second rotation range and hand placement, engaging a torque enhancer to further increase writing torque.
16. The method of claim 15 wherein the sensing the second rotation range includes sensing placement of the housing on a support structure.
17. A system for managing torque during rotation of a portable information handling system housing having first and second housing portions, the system comprising: first and second hinges, each of the first and second hinges having first and second axles; and a torque engine coupled to each of the first and second hinges, each torque engine having a friction structure coupled to the first and second axles and an end cap coupled to each of the first and second axles, and having a cam disposed between the friction structure and the first and second end caps to generate a first torque in a first rotation range and a second torque in a second rotation range, the first torque associated with maintaining a stationary rotational orientation through the first rotation range when free of rotational force, the second torque associated with maintaining a stationary rotation orientation through the second rotation range when a writing force is applied against the hinge, the second rotation range configured to have at least 270 degrees of rotation from a closed position with one of the first and second housing portions resting on a support surface and the other of the first and second housing portions elevated above the support surface with the display exposed at an upper side to accept written inputs.
18. The system of claim 17 wherein the second rotation range is substantially 300 degrees to 350 degrees of rotation from a closed position of the hinge.
19. The system of claim 17 further comprising: a sequential rotation device coupled to each hinge and coordinating rotation of the one axle at a time; wherein only the axle associated with rotation in the second rotation range has the cam that generates the second torque.
20. The system of claim 17 further comprising: an embedded controller operable to execute instructions; a torque enhancer interfaced with the embedded controller and at least one of the first and second hinges; plural sensors operable to detect the second rotation range; and non-transitory memory interfaced with the embedded controller and storing instructions that when executed on the embedded controller causes: detection of writing at a touchscreen display of the portable information handling system when in the second rotation range; and selective engagement of torque enhancer in response to the detection of writing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The present invention may be better understood, and its numerous objects, features and advantages made apparent to those skilled in the art by referencing the accompanying drawings. The use of the same reference number throughout the several figures designates a like or similar element.
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DETAILED DESCRIPTION
[0017] A portable information handling system rotates to a writing position at which increased torque generated at a hinge maintains the housing position against rotational force introduced by end user writing against a display surface. For purposes of this disclosure, an information handling system may include any instrumentality or aggregate of instrumentalities operable to compute, classify, process, transmit, receive, retrieve, originate, switch, store, display, manifest, detect, record, reproduce, handle, or utilize any form of information, intelligence, or data for business, scientific, control, or other purposes. For example, an information handling system may be a personal computer, a network storage device, or any other suitable device and may vary in size, shape, performance, functionality, and price. The information handling system may include random access memory (RAM), one or more processing resources such as a central processing unit (CPU) or hardware or software control logic, ROM, and/or other types of nonvolatile memory. Additional components of the information handling system may include one or more disk drives, one or more network ports for communicating with external devices as well as various input and output (I/O) devices, such as a keyboard, a mouse, and a video display. The information handling system may also include one or more buses operable to transmit communications between the various hardware components.
[0018] Referring now to
[0019] Referring now to
[0020] Referring now to
[0021] Referring now to
[0022] In the example embodiment, friction that generates torque to resist rotation of hinge 18 is provided by torque engine 50 that couples to axles 58. Torque engine 50 includes a friction structure 52 fit over both axles 58 so that each axle 58 rotates within and relative to friction structure 52. An end cap 54 couples in a fixed position over each axle 58 to rotate with the axle rotation and is tightened to compress against friction structure 52 so that friction between the base of end cap 54 and the surface of friction structure 52 resists rotation of axle 58. A nut on the end of end cap 54 allows adjustment of the amount of friction created with tightening of the nut causing end cap 54 to press more firmly against friction structure 52. To generate the variable torque that increases resistance to rotation in the writing rotational orientation range (i.e., 300 to 350 degrees from the closed position), a cam 60 is integrated in the surface of friction structure 52 where end cap 54 is in contact against friction structure 52. A larger protrusion of the cam 60 feature towards end cap 54 increases the amount of friction that resists rotation of axle 58 by increasing the compression of end cap 54 against friction structure 52. Similarly, an increase in the surface area working against rotation increases friction by increasing the contact area between end cap 54 and friction structure 52. Adjusting the size and rotational orientation of the cam feature determines how much torque is generated as the hinge rotational orientation changes.
[0023] Referring now to
[0024] Referring now to
[0025] Although the present invention has been described in detail, it should be understood that various changes, substitutions and alterations can be made hereto without departing from the spirit and scope of the invention as defined by the appended claims.