This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2009-149110, filed Jun. 23, 2009, the entire contents of which are incorporated herein by reference.
Embodiments described herein relate generally to an electronic device in which rigidity of the enclosure of the display section is enhanced.
Since a notebook computer is often carried, reducing the thickness and weight thereof are requested. When carried, the notebook computer may be inserted in a bag with small articles such as writing tools, documents, and the like in some cases. A display module assembled in the display section is fragile. Hence sufficient rigidity and toughness are required of the enclosure constituting the display section.
A notebook computer that comprises an upper housing partially provided with a honeycomb structure at the back of the display module in the display section is disclosed in Jpn. Pat. Appln. KOKAI Publication No. 2008-234100. The display section of this notebook computer is constituted of a cosmetic cover, upper housing, antenna, display module, and bezel.
The upper housing is formed into a box-like shape a periphery of which is bent. A part of the periphery and the other part of the periphery are connected to each other by four main bridges. The main bridges are joined together into one body at a center of the upper housing. Sub-bridges consisted of a honeycomb structure are formed in areas surrounded by the periphery and main bridges. The sub-bridge is constituted of ribs with a honeycomb structure forming opening cells, which look like a regular hexagon shaped frames. The opening cell is formed in such a manner that an open ratio in the area ratio of about 40 to 60% is obtained.
Incidentally, in order to realize reduction in thickness and weight of the notebook computer, it is desired to make the enclosure of the display side metallic. However, it is disclosed in Jpn. Pat. Appln. KOKAI Publication No. 2008-234100 that an opening part must be provided when the housing is made metallic, because the sensitivity of the antenna built in the housing of the display side is lowered. In this document, it is pointed out that the strength of protecting the display module is lowered by providing the opening. Further, the decorative function of the display side enclosure as the outer cover must be fulfilled. Hence, it is determined in the document that it is difficult to further reduce the thickness and weight by constituting the enclosure of the display side as a single body. As a result of this, the function as the structure and function as the outer cover are separated from each other in Jpn. Pat. Appln. KOKAI Publication No. 2008-234100 in the enclosure of the display side. The former is defined as an upper housing, and latter is defined as a cosmetic cover.
However, when the enclosure configured to protect the display unit is constituted by functionally separating the enclosure into the two components of the upper housing and cosmetic cover, the manufacturing processes and quality control processes are increased correspondingly, and hence the cost is also increased.
Further, when the notebook computer is used, the display section is rotated with respect to the main body around the hinges as the center. At this time, the display section may be operated to rotate by being gripped by one hand at a right or left sided position. When the display unit to be provided in the display section becomes large, the frictional resistance of the hinges to hold the display section at an arbitrary angle also becomes large. Therefore, it is necessary for the display section to be provided with sufficient rigidity to withstand the torsion to be applied thereto when the display section is rotated in addition to the pressing load to be applied thereto in the thickness direction from outside.
The notebook computer described in Jpn. Pat. Appln. KOKAI Publication No. 2008-234100 has a sub-bridge consisted of the honeycomb structure in the upper housing. However, in the upper housing, although the sub-bridge includes the honeycomb structure, the opening cells are provided inside the honeycomb. Therefore the original torsional rigidity of the honeycomb structure cannot be sufficiently exerted.
According to an embodiment, an electronic device comprises an outer cover, ribs, and reinforcement beads. The outer cover constitutes an enclosure of a display section, and covers the back of a display unit to be assembled in the display section. The display section is coupled to a main body by hinges, and is held at an angle of rotation by the rotation resistance of the hinges. The ribs are formed integral with an inner wall of the outer cover into a honeycomb structure arrangement constituted of a plurality of cells. The reinforcement beads are formed integral with the inner wall of the outer cover from the vicinity of each of both hinge side corners where the hinges are fastened on, to the vicinity of each of both rotation end corners located at positions on the outer cover diagonal with respect to the hinge side corners.
As described above, embodiments of the electronic device includes the enclosure with high rigidity against a pressing load and torsional stress without increasing the number of parts and weight of the enclosure of the display section.
Various embodiments will be described hereinafter with reference to the accompanying drawings. An electronic device 1 of a first embodiment will be described below with reference to
The main body 2 is provided with a keyboard 5 serving as an input means on a top surface 21 of a first enclosure 20 constituting an outer shell as shown in
The display section 3 is provided with an outer cover 31 and mask 32 constituting a second enclosure. The outer cover 31 covers the back surface 6a of the display unit 6 built in the display section 3. The mask 32 includes an opening 321 corresponding to a display area of the display unit 6, and covers the outer peripheral edge 61 of the display unit 6 from the front. The outer cover 31 includes supports 311 in order to retain the display unit 6 inside the right and left sidewalls 31A.
As shown in
As shown in
In this embodiment, a reinforcement bead 316 is further provided. The reinforcement bead 316 is arranged on the rotation end 31C in parallel with the rotational axis R. Each ends of the reinforcement bead 316 is connected to each of the reinforcement beads 315 arranged in the directions along the diagonal lines. The ribs 314 of the honeycomb structure are arranged to fill the outside areas of the reinforcement beads 315 provided in twos in parallel with each other. The ribs 314 of the honeycomb structure are arranged in the four areas in a pattern in which the ribs 314 have continuity between each other. An upper area A1 is surrounded by the reinforcement bead 316 on the rotation end 31C, and reinforcement beads 315 extending along the diagonal lines. A right area A2 and left area A3 are surrounded by right and left sidewalls 31A of the outer cover 31, and reinforcement beads 315 extending along the diagonal lines. A lower area A4 is surrounded by an edge 31G of the outer cover 31 closer to the main body 2, and the reinforcement beads 315 extending along the diagonal lines.
Each of the ribs 314 and reinforcement beads 315 and 316 is formed integral with the outer cover 31 as shown in
The main purpose of the reinforcement beads 315 formed in the diagonal directions is to receive a surface load applied to the outer cover 31 from outside when the electronic device 1 is in the closed posture. The main purpose of the rib 314 of the honeycomb structure is to enhance the torsional rigidity of the outer cover 31. Therefore, as shown in
Furthermore, details of the outer cover 31 of this embodiment will be described below. This outer cover 31 retains the display unit 6. The supports 311 for retaining the display unit 6 are formed integral with the outer cover 31. As shown in
In each of the ribs 314 arranged in the vicinity of the sidewall 31A of the outer cover 31, the height of the rib 314 is gradually decreased just front of the support 311 to the surface of the inner wall 31E of the outer cover 31 as shown in
In the electronic device 1 described above, the ribs 314 arranged to form the honeycomb structure, and reinforcement beads 315 extending from the hinge side corners 31B to the rotation end corners 31D located at positions diagonal with respect to the hinge side corners 31B are formed integral with the inner wall 31E of the outer cover 31. Further, of the loads applied to the outer cover 31, the surface load applied from outside is mainly received by the reinforcement beads 315 and 316, and torsional force applied when the display section 3 is rotated by opening or closing is mainly received by the ribs 314 arranged to form the honeycomb structure. The ribs 314 arranged to form the honeycomb structure are formed integral with the outer cover 31, and the inside of each cell H is closed by the inner wall 31E of the outer cover 31.
Therefore, it is possible to reduce the thickness of the outer cover 31 constituting the enclosure of the display section 3 of the electronic device 1 without increasing the number of components in the thickness direction of the display section 3, and improve the rigidity against the surface load and torsional force to be applied to the display section 3. Further, the ribs 314 which are in the outermost peripheral area, and are not connected to the reinforcement beads 315 and 316 are gradually joined to the surface of the inner wall 31E. Hence, the stress transmitted to the ribs 314 is not concentrated at the outermost periphery of the honeycomb structure.
The outer cover 31 is manufactured by die-casting an alloy mainly containing a light metal such as aluminum, magnesium, titanium or the like. The material to be formed is fed from the rotation end 31C of the outer cover 31. The flow of the material in the casting process is set in the direction along the longitudinal rib 314a. In each of the upper area A1, right area A2, left area A3, and lower area A4, the ribs 314 adjacent to the reinforcement beads 315 and 316 are connected to the slopes 315a and 316a. Each of all the ribs 314 which are not connected to the reinforcement beads 315 is formed in such a manner that the height thereof is gradually decreased with respect to the surface of the inner wall 31E of the outer cover 31. Therefore, the material easily flows along the reinforcement beads 315 and ribs 314 at the die-casting operation.
The outer cover 31 is formed into a curved surface slightly swelling out at the central area 31F thereof. The heights of the reinforcement beads 315 are provided in parallel with the display unit 6. Consequently, the strength of the reinforcement beads 315 in the thickness direction at the central area 31F is higher than the strength in the thickness direction at the peripheral part. When a pressing load is applied to the central area 31F of the outer cover 31 while the electronic device is in the closed posture, the central area 31F is not easily bent.
Although the outer cover 31 is made of a conductive alloy, the rotation end 31C thereof is opened. Hence, providing an antenna for wireless communication on the rotation end 31C is not restricted by using the conductive metallic material for the outer cover 31.
An electronic device 1 of a second embodiment will be described below with reference to
As shown in
In this embodiment, the ribs 314 formed on the on-diagonal line area A5 of the part at which the reinforcement beads 315 intersect each other, and ribs 314 formed on the upper area A1, right area A2, left area A3, and lower area A4 side are arranged in such a manner that each of four intersection portions of the reinforcement beads 315 is surrounded by one cell H, as shown in
The ribs 314 in the on-diagonal line area A5, and closer to the rotation end corner 31D are provided up to a position on an extension line from the reinforcement bead 316 provided along the rotation end 31C as shown in
In
It should be noted that in each of the embodiments, although some of the cells H constituted of the ribs 314 provided adjacent to the reinforcement beads 315 and 316 are less than a full regular hexagon, these incomplete cells also constitute part of the honeycomb structure.
It is possible to enhance the rigidity of the enclosure of the display section against a pressing load and torsional stress applied thereto without increasing the number of parts, and weight of the enclosure in the electronic device of embodiments described above.
While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel methods and systems described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the methods and systems described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.
Number | Date | Country | Kind |
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2009-149110 | Jun 2009 | JP | national |