MLchartDataset catalogue

Patent · US10613582B2 · B2 · US

Docking mechanisms and methods of restraining two portions of a computing device

(11) Publication number
US10613582B2
(21) Application number
16/383,559
(22) Filing date
2019-04-12
(30) Priority date
2017-10-17
(43) Publication date
2020-04-07
(45) Date of grant
2020-04-07
(51) IPC
F16B 2/14; F16B 21/16; G06F 1/16
(52) CPC
  • G06F Electric digital data processing: 1/1632, 1/1654, 1/1679
  • F16B Devices for fastening or securing constructional elements or machine parts together, e.g. nails, bolts, circlips, clamps, clips or wedges; joints or jointing: 2/14, 21/16
(73) Assignee
Microsoft Technology Licensing LLC
(72) Inventors
David Ian Rosen; Joseph Benjamin Gault; Cesar AMBRIZ RIOS; Anthony E. Hillyerd
(54) Title
Docking mechanisms and methods of restraining two portions of a computing device
(57) Abstract

A docking mechanism is described. The docking mechanism may include a locking protrusion and a locking receptacle configured to receive the locking protrusion and having an inclined surface. The docking mechanism may include a wedging member abutting the inclined surface. The docking mechanism may include a locking detent. The locking detent may have a spring configured to bias the locking detent towards the locking protrusion. Computing devices that include docking mechanisms are also described. Methods of use of the docking mechanisms are also described.

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Claims (28)

  1. A docking mechanism, comprising: a locking protrusion; a locking receptacle configured to receive the locking protrusion and having an inclined surface; a wedging member abutting the inclined surface; and a locking detent located within the locking receptacle, the locking detent having a biasing member configured to bias the locking detent towards the locking protrusion.
  2. The docking mechanism of claim 1, wherein one or more of the wedging member and the locking detent are in surface contact with the locking protrusion.
  3. The docking mechanism of claim 1, wherein one or more of the wedging member and the locking detent are in line contact with the locking protrusion.
  4. The docking mechanism of claim 1, wherein one or more of the wedging member and the locking detent are in point contact with the locking protrusion.
  5. The docking mechanism of claim 1, wherein one or more of the wedging member and the locking detent are in at least partial surface contact with the locking protrusion.
  6. The docking mechanism of claim 1, wherein the wedging member and the locking detent are both in line contact with the locking protrusion.
  7. The docking mechanism of claim 1, wherein the wedging member and the locking detent are both in point contact with the locking protrusion.
  8. The docking mechanism of claim 1, wherein the wedging member is in line contact with the inclined surface.
  9. The docking mechanism of claim 1, wherein the wedging member is in point contact with the inclined surface.
  10. The docking mechanism of claim 1, wherein the wedging member includes a curved surface.
  11. The docking mechanism of claim 1, wherein the wedging member includes a curved back surface.
  12. The docking mechanism of claim 1, wherein the wedging member includes a curved front surface.
  13. The docking mechanism of claim 1, wherein a first coefficient of friction between the wedging member and the inclined surface is the same as a second coefficient of friction between the wedging member and the locking protrusion.
  14. The docking mechanism of claim 1, wherein a first coefficient of friction between the wedging member and the inclined surface is between 0.2 and 0.4.
  15. The docking mechanism of claim 1, wherein the locking detent, the wedging member, and the locking protrusion cooperate to retain the locking protrusion within the locking receptacle until a separation force of greater than 28 Newtons is applied.
  16. The docking mechanism of claim 15, wherein the separation force is less than 50 Newtons is applied.
  17. The docking mechanism of claim 1, further comprising one or more magnets, wherein the one or more magnets, the locking detent, the wedging member, and the locking protrusion cooperate to retain the locking protrusion within the locking receptacle until a separation force of greater than 28 Newtons is applied.
  18. The docking mechanism of claim 1, wherein a height of the locking protrusion is less than 5 mm.
  19. A computing device, comprising: a locking protrusion; a locking receptacle configured to receive the locking protrusion and having an inclined surface; a wedging member having a biasing member configured to bias the wedging member toward the locking protrusion, at least a portion of a front surface of the wedging member being curved and at least a portion of a back surface of the wedging member being curved, the curved portion of the back surface abutting the inclined surface in a restraining state, the curved portion of the front surface abutting the locking protrusion in a biased state; and a locking detent having a biasing member configured to bias the detent towards the locking protrusion, one or more of the wedging member and the locking protrusion or the locking detent and the locking protrusion being in line to surface, point to surface, line to line, point to line, or point to point contact.
  20. The docking mechanism of claim 19, wherein a first coefficient of friction between the wedging member and the inclined surface is the same as a second coefficient of friction between the wedging member and the locking protrusion.
  21. The docking mechanism of claim 19, wherein a first coefficient of friction between the wedging member and the inclined surface is between 0.2 and 0.4.
  22. The docking mechanism of claim 19, wherein the locking detent, the wedging member, and the locking protrusion cooperate to retain the locking protrusion within the locking receptacle until a separation force of greater than 28 Newtons is applied.
  23. The docking mechanism of claim 19, further comprising one or more magnets, wherein the one or more magnets, the locking detent, the wedging member, and the locking protrusion cooperate to retain the locking protrusion within the locking receptacle until a separation force of greater than 28 Newtons is applied.
  24. The docking mechanism of claim 19, wherein a height of the locking protrusion is less than 5 mm.
  25. The docking mechanism of claim 19, wherein a first coefficient of friction between the wedging member and the inclined surface is between 0.2 and 0.4.
  26. The docking mechanism of claim 19, wherein a height of the locking protrusion is less than 5 mm.
  27. A method for restraining two portions of a computing device, comprising: inserting a locking protrusion of a first portion into a locking receptacle of a second portion, the locking receptacle having an inclined surface, a wedging member abutting the inclined surface, and a locking detent within the locking receptacle, the locking detent having a biasing member configured to bias the locking detent towards the locking protrusion; applying a separation force between the first portion and the second portion; if the separation force is less than 40 Newtons, resisting separation of the first portion from the second portion; and if the separation force is greater than 50 Newtons, separating the first portion from the second portion.
  28. The docking mechanism of claim 27, wherein a first coefficient of friction between the wedging member and the inclined surface is the same as a second coefficient of friction between the wedging member and the locking protrusion.

Description

Use of computing devices is becoming more ubiquitous by the day. Computing devices range from standard desktop computers to wearable computing technology and beyond. One area of computing devices that has grown in recent years is the hybrid computer. Hybrid computers may act as a tablet computer or a laptop computer. Many hybrid computers include input devices that may be separated from the screen.

The subject matter claimed herein is not limited to implementations that solve any disadvantages or that operate only in environments such as those described above. Rather, this background is only provided to illustrate one example technology area where some implementations described herein may be practiced.

In one implementation, a docking mechanism is described. The docking mechanism may include a locking protrusion and a locking receptacle configured to receive the locking protrusion and having an inclined surface. The docking mechanism may include a wedging member abutting the inclined surface. The docking mechanism may include a locking detent. The locking detent may have a spring configured to bias the locking detent towards the locking protrusion.

In another implementation, a computing device is described. The computing device includes a locking protrusion and a locking receptacle configured to receive the locking protrusion and having an inclined surface. The computing device includes a wedging member having a spring configured to bias the wedging member toward the locking protrusion.

Citations (4)

  • US20140133080A1
  • US20150055289A1
  • US20160266616A1
  • US10303214B2
Record as JSON
{
  "publication_number": "US10613582B2",
  "country": "US",
  "kind": "B2",
  "title": "Docking mechanisms and methods of restraining two portions of a computing device",
  "abstract": "A docking mechanism is described. The docking mechanism may include a locking protrusion and a locking receptacle configured to receive the locking protrusion and having an inclined surface. The docking mechanism may include a wedging member abutting the inclined surface. The docking mechanism may include a locking detent. The locking detent may have a spring configured to bias the locking detent towards the locking protrusion. Computing devices that include docking mechanisms are also described. Methods of use of the docking mechanisms are also described.",
  "claims": [
    "1. A docking mechanism, comprising: a locking protrusion; a locking receptacle configured to receive the locking protrusion and having an inclined surface; a wedging member abutting the inclined surface; and a locking detent located within the locking receptacle, the locking detent having a biasing member configured to bias the locking detent towards the locking protrusion.",
    "2. The docking mechanism of claim 1, wherein one or more of the wedging member and the locking detent are in surface contact with the locking protrusion.",
    "3. The docking mechanism of claim 1, wherein one or more of the wedging member and the locking detent are in line contact with the locking protrusion.",
    "4. The docking mechanism of claim 1, wherein one or more of the wedging member and the locking detent are in point contact with the locking protrusion.",
    "5. The docking mechanism of claim 1, wherein one or more of the wedging member and the locking detent are in at least partial surface contact with the locking protrusion.",
    "6. The docking mechanism of claim 1, wherein the wedging member and the locking detent are both in line contact with the locking protrusion.",
    "7. The docking mechanism of claim 1, wherein the wedging member and the locking detent are both in point contact with the locking protrusion.",
    "8. The docking mechanism of claim 1, wherein the wedging member is in line contact with the inclined surface.",
    "9. The docking mechanism of claim 1, wherein the wedging member is in point contact with the inclined surface.",
    "10. The docking mechanism of claim 1, wherein the wedging member includes a curved surface.",
    "11. The docking mechanism of claim 1, wherein the wedging member includes a curved back surface.",
    "12. The docking mechanism of claim 1, wherein the wedging member includes a curved front surface.",
    "13. The docking mechanism of claim 1, wherein a first coefficient of friction between the wedging member and the inclined surface is the same as a second coefficient of friction between the wedging member and the locking protrusion.",
    "14. The docking mechanism of claim 1, wherein a first coefficient of friction between the wedging member and the inclined surface is between 0.2 and 0.4.",
    "15. The docking mechanism of claim 1, wherein the locking detent, the wedging member, and the locking protrusion cooperate to retain the locking protrusion within the locking receptacle until a separation force of greater than 28 Newtons is applied.",
    "16. The docking mechanism of claim 15, wherein the separation force is less than 50 Newtons is applied.",
    "17. The docking mechanism of claim 1, further comprising one or more magnets, wherein the one or more magnets, the locking detent, the wedging member, and the locking protrusion cooperate to retain the locking protrusion within the locking receptacle until a separation force of greater than 28 Newtons is applied.",
    "18. The docking mechanism of claim 1, wherein a height of the locking protrusion is less than 5 mm.",
    "19. A computing device, comprising: a locking protrusion; a locking receptacle configured to receive the locking protrusion and having an inclined surface; a wedging member having a biasing member configured to bias the wedging member toward the locking protrusion, at least a portion of a front surface of the wedging member being curved and at least a portion of a back surface of the wedging member being curved, the curved portion of the back surface abutting the inclined surface in a restraining state, the curved portion of the front surface abutting the locking protrusion in a biased state; and a locking detent having a biasing member configured to bias the detent towards the locking protrusion, one or more of the wedging member and the locking protrusion or the locking detent and the locking protrusion being in line to surface, point to surface, line to line, point to line, or point to point contact.",
    "20. The docking mechanism of claim 19, wherein a first coefficient of friction between the wedging member and the inclined surface is the same as a second coefficient of friction between the wedging member and the locking protrusion.",
    "21. The docking mechanism of claim 19, wherein a first coefficient of friction between the wedging member and the inclined surface is between 0.2 and 0.4.",
    "22. The docking mechanism of claim 19, wherein the locking detent, the wedging member, and the locking protrusion cooperate to retain the locking protrusion within the locking receptacle until a separation force of greater than 28 Newtons is applied.",
    "23. The docking mechanism of claim 19, further comprising one or more magnets, wherein the one or more magnets, the locking detent, the wedging member, and the locking protrusion cooperate to retain the locking protrusion within the locking receptacle until a separation force of greater than 28 Newtons is applied.",
    "24. The docking mechanism of claim 19, wherein a height of the locking protrusion is less than 5 mm.",
    "25. The docking mechanism of claim 19, wherein a first coefficient of friction between the wedging member and the inclined surface is between 0.2 and 0.4.",
    "26. The docking mechanism of claim 19, wherein a height of the locking protrusion is less than 5 mm.",
    "27. A method for restraining two portions of a computing device, comprising: inserting a locking protrusion of a first portion into a locking receptacle of a second portion, the locking receptacle having an inclined surface, a wedging member abutting the inclined surface, and a locking detent within the locking receptacle, the locking detent having a biasing member configured to bias the locking detent towards the locking protrusion; applying a separation force between the first portion and the second portion; if the separation force is less than 40 Newtons, resisting separation of the first portion from the second portion; and if the separation force is greater than 50 Newtons, separating the first portion from the second portion.",
    "28. The docking mechanism of claim 27, wherein a first coefficient of friction between the wedging member and the inclined surface is the same as a second coefficient of friction between the wedging member and the locking protrusion."
  ],
  "description_excerpt": "Use of computing devices is becoming more ubiquitous by the day. Computing devices range from standard desktop computers to wearable computing technology and beyond. One area of computing devices that has grown in recent years is the hybrid computer. Hybrid computers may act as a tablet computer or a laptop computer. Many hybrid computers include input devices that may be separated from the screen.\n\nThe subject matter claimed herein is not limited to implementations that solve any disadvantages or that operate only in environments such as those described above. Rather, this background is only provided to illustrate one example technology area where some implementations described herein may be practiced.\n\nIn one implementation, a docking mechanism is described. The docking mechanism may include a locking protrusion and a locking receptacle configured to receive the locking protrusion and having an inclined surface. The docking mechanism may include a wedging member abutting the inclined surface. The docking mechanism may include a locking detent. The locking detent may have a spring configured to bias the locking detent towards the locking protrusion.\n\nIn another implementation, a computing device is described. The computing device includes a locking protrusion and a locking receptacle configured to receive the locking protrusion and having an inclined surface. The computing device includes a wedging member having a spring configured to bias the wedging member toward the locking protrusion.",
  "cpc": [
    "G06F 1/1632",
    "F16B 2/14",
    "F16B 21/16",
    "G06F 1/1654",
    "G06F 1/1679"
  ],
  "ipc": [
    "F16B 2/14",
    "F16B 21/16",
    "G06F 1/16"
  ],
  "assignees": [
    "Microsoft Technology Licensing LLC"
  ],
  "inventors": [
    "David Ian Rosen",
    "Joseph Benjamin Gault",
    "Cesar AMBRIZ RIOS",
    "Anthony E. Hillyerd"
  ],
  "filing_date": "2019-04-12",
  "publication_date": "2020-04-07",
  "grant_date": "2020-04-07",
  "priority_date": "2017-10-17",
  "application_number": "US-201916383559-A",
  "family_id": "64051719",
  "cited_by_count": 0,
  "citations": [
    "US20140133080A1",
    "US20150055289A1",
    "US20160266616A1",
    "US10303214B2"
  ]
}

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