1. Field of the Invention
The present invention relates to hinge technology and more particularly, to a smoothly openable and closable dual-shaft hinge, which is practical for use in a dual leaf electronic device, allowing the cover member of the dual leaf electronic device to be opened from to the base member thereof or closed on it smoothly.
2. Description of the Related Art
Flip-up mobile electronic devices, such as notebooks, smart phones, generally comprise a base member and a cover member. Some flip-up mobile electronic devices allow the cover member to be turned to the bottom side of the base member, allowing the flip-up mobile electronic device to be used as a tablet computer. A folding tablet computer is also known comprised of dual leaf touchscreen. When using the folding tablet computer, the user needs to extend out the dual leaf touchscreen. A flip-up mobile electronic device generally uses a dual-shaft hinge to connect the base member and the cover member, allowing the cover member to be turned between the top surface of the base member and the bottom side thereof. A dual-shaft hinge for this application purpose generally comprises an axle housing, and a first pivot shaft and a second pivot shaft respectively pivotally coupled to the axle housing and respectively affixed to the cover member and the base member, and thus, the cover member can be turned from the top side of the base member to the bottom side thereof, or turned from the bottom side of the base member to the top side of the base member and then closed on the top side of the base member.
According to conventional designs, rotation between the first pivot shaft and the axle housing can be achieved through a screw transmission mechanism, a linkage, or a gear transmission mechanism. In any transmission design, rotation of the first pivot shaft can cause the axle housing to be turned about the second pivot shaft, i.e., the rotation of the first pivot shaft and the turning action of the axle housing about the second pivot shaft occur at the same time. The rotation of the first pivot shaft and the turning action of the axle housing about the second pivot shaft occur simultaneously due to that the designer cannot control the sequence and angle of the action of the first pivot shaft and the action of the axle housing. Forcing the first pivot shaft to rotate on its own axis and the axle housing to turn about the second pivot shaft causes the first pivot shaft and the second pivot shaft to bear a large stress, and thus, the first pivot shaft and the second pivot shaft can be broken easily during operation. The stress can be produced heavily at the initial stage the dual-shaft hinge is turned. Further, because the first and second pivot shafts are rotated at the same time, an angular deviation produced between the first and second pivot shafts can cause a jam, leading to hinge damage.
The present invention has been accomplished under the circumstances in view. It is therefore the main object of the present invention to provide a smoothly openable and closable dual-shaft hinge, which has the axle housing so designed that when the cover member is turned in direction from the top side of the base member toward the bottom side thereof, the friction resistance between the first pivot shaft of the pivot shaft set and the axle housing is smaller than the friction resistance between the second pivot shaft of the pivot shaft set and the axle housing, and, when the cover member is turned in direction from the bottom side of the base member toward the top side thereof, friction resistance between the first pivot shaft and the axle housing is larger than the friction resistance between the second pivot shaft and the axle housing, and thus, the actuation sequence and angle of the rotation of the first pivot shaft in the axle housing and the turning of the axle housing about the second pivot shaft can be smoothly controlled.
To achieve this and other objects of the present invention, a smoothly openable and closable dual-shaft hinge comprises an axle housing and a pivot shaft set. The axle housing comprises a base defining a first surface at a top side thereof and a second surface at an opposing bottom side thereof, a first bearing portion smoothly curved from one lateral side of the first surface of the base in direction toward an opposite lateral side of the first surface, a first pivot shaft chamber defined between the first bearing portion and the first surface, a second bearing portion smoothly curved from one lateral side of the second surface of the base in direction toward an opposite lateral side of the second surface, and a second pivot shaft chamber defined between the second bearing portion and the second surface. The first bearing portion and the second bearing portion extend in reversed directions. The pivot shaft set comprises a first pivot shaft, and a second pivot shaft. The first pivot shaft comprises a first shaft body located at one end thereof, and a first connection bar located at an opposite end thereof. The first shaft body is pivotally coupled to the first pivot shaft chamber of the axle housing. The first connection bar is disposed outside the axle housing, and connected to a cover member. The second pivot shaft comprises a second shaft body located at one end thereof, and a second connection bar located at an opposite end thereof. The second shaft body is pivotally coupled to the second pivot shaft chamber of the axle housing. The second connection bar is disposed outside the axle housing, and connected to a base member. When turning the cover member toward a bottom side of the base member, the first pivot shaft is rotated with the cover member in the first pivot shaft chamber and the axle housing is turned about the second pivot shaft in accordance with the turning direction of the cover member, and at this time, the rotating direction of the first pivot shaft is reversed to the extending direction of the first bearing portion from the first surface, and the turning direction of the axle housing is reversed to the extending direction of the second bearing portion from the second surface, and thus, the friction resistance produced between the first shaft body of the first pivot shaft and the first bearing portion is smaller than the friction resistance produced between the second shaft body of the second pivot shaft and the second bearing portion. When turning the cover member toward an opposing top side of the base member, the first pivot shaft is rotated with the cover member in the first pivot shaft chamber in accordance with the turning direction of the cover member, and the axle housing is turned about the second pivot shaft in accordance with the turning direction of the cover member, and at this time, the rotating direction of the first pivot shaft is same as the extending direction of the first bearing portion from the first surface and the turning direction of the axle housing is same as the extending direction of the second bearing portion from the second surface, and thus, the friction resistance produced between the first shaft body of the first pivot shaft and the first bearing portion is larger than the friction resistance produced between the second shaft body of the second pivot shaft and the second bearing portion.
Referring to
The axle housing 1 comprises a base 11 having a flat first surface 12 located at a top side thereof and a second surface 13 located at a bottom side thereof in parallel to the first surface 12, a first bearing portion 14 smoothly curved from one lateral side, namely the right lateral side of the first surface 12 of the base 11 in direction toward an opposite lateral side, namely, the left lateral side of the first surface 12 of the base 11, a first pivot shaft chamber 15 defined between the first surface 12 of the base 11 and the first bearing portion 14, a second bearing portion 16 smoothly curved from one lateral side, namely, the left lateral side of the second surface 13 of the base 11 in direction toward an opposite lateral side, namely, the right lateral side of the second surface 13 of the base 11, and second pivot shaft chamber 17 defined between the second surface 13 of the base 11 and the second bearing portion 15. The first bearing portion 14 and the second bearing portion 16 extend in reversed directions.
The pivot shaft set 2 comprises a first pivot shaft 21 and a second pivot shaft 22. The first pivot shaft 21 comprises a first shaft body 211, a first connection bar 212 axially extended from one end of the first shaft body 211, a first positioning tip 213 axially extended from an opposite end of the first shaft body 211, a first position-limit flange 214 extended around the periphery of the first shaft body 211 adjacent to the first connection bar 212, and a first positioning plane 215 axially located on the periphery of the first shaft body 211. The second pivot shaft 22 comprises a second shaft body 221, a second connection bar 222 axially extended from one end of the second shaft body 221, a second positioning tip 223 axially extended from an opposite end of the second shaft body 221, a second position-limit flange 224 extended around the periphery of the second shaft body 221 adjacent to the second connection bar 222, and a second positioning plane 225 axially located on the periphery of the second shaft body 221. Further, the first shaft body 211 of the first pivot shaft 21 is pivotally coupled to the first pivot shaft chamber 15 of the axle housing 1; the first connection bar 212 is disposed outside the axle housing 1 and connected to a cover member 8 (of a mobile dual leaf electronic device); the second shaft body 221 of the second pivot shaft 22 is pivotally coupled to the second pivot shaft chamber 17 of the axle housing 1; the second connection bar 222 is disposed outside the axle housing 1 and connected to a base member 9 (of the mobile dual leaf electronic device).
The transmission mechanism 3 comprises a first transmission member 31 and a second transmission member 32. The first transmission member 31 comprises a first connection hole 311 cut through opposing front and back sides thereof at the center, and a first position-limit rod 312 located at the front side adjacent to the first connection hole 311. The second transmission member 32 comprises a second connection hole 321 cut through opposing front and back sides thereof at the center, and a second position-limit rod 322 located at the front side adjacent to the second connection hole 321. The first connection hole 311 of the first transmission member 31 is fixedly connected to the first positioning tip 213 of the pivot shaft set 2; the second connection hole 321 of the second transmission member 32 is fixedly connected to the second positioning tip 223 of the pivot shaft set 2.
The link 4 comprises a first position-limit hole 41 and a second position-limit hole 42. The first position-limit rod 312 and second position-limit rod 322 of the transmission mechanism 3 are respectively coupled to the first position-limit hole 41 and second position-limit hole 42 of the link 4. The first position-limit hole 41 defines a first abutment portion 411 at one side near the second position-limit hole 42, and a second abutment portion 412 at an opposite side remote from the second position-limit hole 42. Further, the distance between the first abutment portion 411 and the second abutment portion 412 is larger than the outer diameter of the first position-limit rod 312.
The positioning device set 5 comprises a first positioning member 51 and a second positioning member 52. The first positioning member 51 and the second positioning member 52 are respectively disposed at opposing front and back sides of the axle housing 1. Further, the second positioning member 52 is set between the axle housing 1 and the transmission mechanism 3. The first positioning member 51 comprises a first positioning hole 511 and a second positioning hole 512 respectively disposed near two distal ends thereof. The second positioning member 52 comprises a third positioning hole 521 and a fourth positioning hole 522 respectively disposed near two distal ends thereof. The first positioning hole 511 and the third positioning hole 521 are respectively pivotally connected to two opposite ends of the first shaft body 211 of the pivot shaft set 2. The second positioning hole 512 and the fourth positioning hole 522 are respectively pivotally connected to two opposite ends of the second shaft body 221 of the pivot shaft set 2. The first positioning member 51 further comprises a stop block 513 located at one side thereof between the first positioning hole 511 and the second positioning hole 512. The stop block 513 comprises a first abutment surface 514 and a second abutment surface 515 bilaterally disposed adjacent to the first positioning hole 511, and a third abutment surface 516 and a fourth abutment surface 517 bilaterally disposed adjacent to the second positioning hole 512. Further, the first position-limit flange 214 of the first pivot shaft 21 of the pivot shaft set 2 and the second position-limit flange 224 of the second pivot shaft 22 of the pivot shaft set 2 are respectively disposed at the opposing top and bottom sides of the stop block 513.
The operation of the present invention is outlined hereinafter with reference to
Number | Date | Country | Kind |
---|---|---|---|
103115252 | Apr 2014 | TW | national |