SUPPORT STAND FOR FLAT-PANEL MONITOR AND ELEVATING SUPPORT FOR SUPPORT STAND
A support stand comprises an elevating support, a monitor bracket, and a support member; the elevating support comprising a first and a second chasses, a pluralities of supporting blocks, an elastic member, a first and a second pivot subassemblies, a shaft sleeve; a guiding shaft; the first chassis comprises a resisting wall on the first end opposite to the second pivot subassembly; the first pivot subassembly is fixed to the plurality of supporting blocks connected to first ends of the chasses, the second pivot subassembly is fixed to the plurality of supporting blocks connected to second ends of the chasses; the shaft sleeve is sleeved on the second pivot subassembly, two ends of the guiding shaft are fixed to the shaft sleeve and the resisting wall; the elastic member is sleeved on the guiding shaft, two ends of the elastic member resist against the resisting wall and the shaft sleeve.
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The present application is a divisional application of U.S. patent application Ser. No. 12/195,438, filed on Aug. 21, 2008, which claims all benefits accruing under 35 U.S.C. §119 from CN 200710203495.8, filed on Dec. 27, 2007, the contents of which are hereby incorporated by reference.
BACKGROUND OF THE INVENTION1. Field of the Invention
The present disclosure relates generally to support stands and, particularly, to a support stand for a flat-panel display body.
2. Discussion of the Related Art
Flat-panel display bodies, such as liquid crystal display (LCD) monitors, offer advantages, over cathode ray tubes (CRTs) such as a greatly reduced size, and better image quality. Furthermore, because of the light weight of the flat-panel display body, the viewing angle and the height of the flat-panel display body can be adjusted without moving a base of a support stand of the flat-panel display body.
A typical support stand generally includes a monitor bracket for attaching to the flat-panel display body, a rotatable bracket for fixing the monitor bracket, an elevating support, a support member, and a base member for mounting the support member. The rotatable bracket is rotatably hinged to an end of the elevating support by a first hinge assembly. The support member is hinged to another end of the elevating support by a second hinge assembly.
A viewing angle of the flat-panel display body mounted on the typical elevating support can be adjusted by rotating the rotatable bracket relative to the elevating support. A height of the flat-panel display body can be adjusted by rotating the elevating support relative to the support member. A frictional force between components of the elevating support balances a gravitational force of the flat-panel display body, thus the flat-panel display body may be retained at a desired position. However, the components of the elevating support may become loose when the elevating support is used for a long period of time. As a result, the flat-panel display body may not remain stable at the height selected by a user. Therefore, the typical elevating support may have a relatively short usage life.
Therefore, an improved support stand for a flat-panel display body is desired to overcome the above-described shortcomings.
SUMMARYIn one aspect, a support stand for a flat-panel display body includes an elevating support, a monitor bracket, and a support member. The elevating support includes a first chassis, a second chassis, a plurality of supporting blocks for connecting end portions of the first chassis and the second chassis, an elastic member, a first pivot subassembly, and a second pivot subassembly. The monitor bracket is rotatably connected to the first pivot subassembly. The support member is rotatably connected to the second pivot subassembly. The elastic member is capable of exerting a rebound force on two of the first chassis, the second chassis, and the supporting blocks. The first and second pivot subassembly are fixed to the supporting blocks. The monitor bracket and the support member are rotatably connected to the first and second pivot subassembly correspondingly.
In another aspect, an elevating support, used for a support stand of a flat-panel display body, includes a first chassis including end portions, a second chassis including end portions, a plurality of supporting blocks, an elastic member, a first pivot subassembly, a second pivot subassembly, two rotatable brackets, and a connecting base. The supporting blocks are configured for connecting end portions of the end portions of the first chassis and the second chassis. The elastic member is capable of exerting a rebound force on two of the first chassis, the second chassis, and the supporting blocks to make the first chassis and the second chassis tend to elevate. The first pivot subassembly is fixed to the supporting blocks connected to a first end portion of the first chassis and the second chassis. The second pivot subassembly is fixed to the supporting blocks connected to a second end portion of the first chassis and the second chassis opposite to the first end portions. The rotatable brackets are rotatably connected to the first pivot subassembly. The connecting base is rotatably connected to the second pivot subassembly.
Other advantages and novel features will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present support stand for a flat-panel display body. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Reference will now be made to the drawings to describe the embodiments of the present support stand and elevating support in detail. Referring to
Referring to
Referring also to
The bracket subassembly 302 includes a first chassis 321, a second chassis 322, and four supporting assemblies 323 (a first supporting assembly, a second supporting assembly, a third supporting assembly, and a fourth supporting assembly). The first chassis 321 includes a flat base 3211, two side walls 3212 extending perpendicularly from opposite sides of the flat base 3211, and a resisting wall 3213 defining a through hole 3214. The resisting wall 3213 extends perpendicularly from a top end of the flat base 3211 and perpendicularly relative to the side walls 3212. Each of the side walls 3212 defines a guiding slot 3215.
The second chassis 322 is similar to the first chassis 321 except that the second chassis 322 does not include a resisting wall, and side walls 3222 of the second chassis 322 does not define guiding slots.
Each of the supporting subassemblies 323 includes a pair of supporting blocks 3231, a pair of pivot shafts 3232, four tab washers 3233, a pair of resilient rings 3235.
Each of the supporting blocks 3231 defines two pivot holes (not labeled) adjacent to two end portions and a fixing hole (not labeled) in a middle portion. Each of the supporting subassemblies 323 is rotatably attached to ends of the first chassis 321 and the second chassis 322 via the two pivot holes of the supporting blocks 323 and the pair of pivot shafts 3232. Two supporting subassemblies 323 are fixed to the first pivot subassembly 305 via each of the fixing hole of the two supporting blocks 3231. Remaining two supporting subassemblies 323 are fixed to the second pivot subassembly 306 via each of the fixing hole of the remaining two supporting blocks 3231.
The connecting base 303 is substantially U-shaped. The connecting base 303 includes two parallel side walls (not labeled). Each side wall of the connecting base 303 defines a through hole (not shown).
The first pivot subassembly 305 includes a first pivot shaft 351, a sleeve 352 sleeved on the first pivot shaft 351, a torsion spring 353 sleeved on the sleeve 352, and two first hinge subassemblies (not labeled). The sleeve 352 is sleeved on a middle portion of the first pivot shaft 351. The torsion spring 353 is sleeved on the sleeve 352. The first hinge subassemblies are attached to opposite shaft portions of the first pivot shaft 351 correspondingly. Each of the first hinge subassemblies includes a limiting washer 354, a first pressing washer 355, a first protecting washer 356, a second protecting washer 357, two first resilient rings 358, a first washer 359, a adjustable nut 3050, a second resilient ring 3051, a second pressing washer 3052, a second washer 3053, and a nut 3055.
The first pivot shaft 351 is substantially cylindrical, and includes two shaft portions 3511 at opposite ends. Each of the two shaft portions 3511 defines a thread (not labeled) on a distal end portion. Each of the two shaft portions 3511 is non-circular. In this embodiment, a cross-section taken perpendicular to a central axis of each of the two shaft portions 3511 is double D-shaped, thereby forming two flat surfaces. Thus, the thread is discontinuous.
The torsion spring 353 includes two torsion portions (not labeled), an n-shaped connecting portion 3532 for connecting each of the two torsion portions. Each of the two torsion portions of the torsion spring 353 includes a latching end 3533.
The limiting washer 354 defines a deformed hole (not labeled) in a middle portion of the limiting washer 354. A shape and a size of the deformed hole correspond to a cross-section of each of the two shaft portions 3511. The limiting washer 354 defines a restricting groove 3541 and a latching groove 3542 on a periphery.
The second pivot subassembly 306 includes a second pivot shaft 361 and two second hinge subassemblies (not labeled). The resisting member 308 is sleeved on a middle portion of the second pivot shaft 361. The second hinge subassemblies are attached to opposite shaft portions of the second pivot shaft 361. Each of the second hinge subassembly includes a block 362, two resilient rings 363, 364, a resilient washer 365, a washer 366, and a nut 367.
Referring to
The resisting member 308 includes a cylindrical portion 3081 and a fixing portion (not labeled) extending from the cylindrical portion 3081. The resisting member 308 is fixed to a surface of the connecting base 303. The resisting member 308 is configured to resist the roller 307.
The elastic subassembly 309 includes a spring 391, a guiding shaft 392, and the pressing block 393. The spring 391 is sleeved on the guiding shaft 392. Two ends of the guiding shaft 392 are connected to the pressing block 393 and the resisting wall 3213 of the first chassis 321 correspondingly. The pressing block 393 is substantially U-shaped. Each end of the pressing block 393 defines the holding groove 3931. The holding grooves 3931 are configured to non-rotatably latch on to each of the two latching ends 3701 of the shaft 370.
Alternatively, the guiding slots 3215 of the first chassis 321 may be replaced by a pair of guiding rails. In such cases, the restricting pole 3702 of the shaft 370 is slidably connected to the guiding rails. The pressing block 393 may be other shapes, such as a cuboid defining a holding groove.
Referring to
The sleeve 352 is sleeved on the middle portion of the first pivot shaft 351. The torsion spring 353 is sleeved on the sleeve 352. Then, each opposite shaft portions of the first pivot shaft 351 is passed through the components of each first hinge subassembly such as the limiting washer 354, the first pressing washer 355, the first protecting washer 356, each of the pair of rotatable brackets 301, the second protecting washer 357, two first resilient rings 358, the first washer 359, the adjustable nut 3050, and each of the two supporting assemblies 323, in that order. The n-shaped connecting portion 3532 of the torsion spring 353 engages in the notch 3013 of each of the pair of rotatable brackets 301. The latching end 3533 of the torsion spring 353 is inserted into the latching groove 3542 of the limiting washer 354. Thus, the first pivot subassembly 305 is connected to the supporting subassemblies 323. After that, each opposite shaft portions of the first pivot shaft 351 is passed through the components of each first hinge subassembly such as the second resilient ring 3051, the second pressing washer 3052, and the second washer 3053, in that order. The nut 3055 then engages with each end of the first pivot shaft 351 correspondingly.
The resisting member 308 is sleeved on the middle portion of the second pivot shaft 361 of the second pivot subassembly 306. Then, each opposite portions of the second pivot shaft 361 is passed through the components of each second hinge subassembly such as the block 362, the side wall of the connecting base 303, a resilient ring 363, each of the two remaining supporting subassemblies 323, the resilient ring 364, the resilient washer 365, and the washer 366, in that order. The nut 367 engages with each of the distal ends of the second pivot shaft 361. As such, the other end of the bracket subassembly 302 is rotatably connected to the connecting base 303 via the second pivot subassembly 306. The resisting member 308 is fixed to the connecting base 303. The cylindrical portion 3081 of the resisting member 308 resists the roller 307.
When the stand support 102 is used for supporting a flat-panel display body, an end of the monitor bracket 50 of the stand support 102 is fixed to a display body 10 of the flat-panel display body 100, and an opposite end is fixed to the pair of rotatable brackets 301 of the elevating support 30. The connecting base 303 is fixed to the support member 20. In use, a force is applied on the display body 10 for rotating the display body 10 with the pair of rotatable brackets 301 relative to the bracket subassembly 302 along an axis of the first pivot shaft 351 of the first pivot subassembly 305, thereby adjusting the viewing angle of the flat-panel display body 100. A frictional force between the pair of rotatable brackets 301 and other components of the first pivot subassembly 305 enables the display body 10 to maintain at a desired position. An external force for rotating the pair of rotatable brackets 301 may be changed by adjusting the adjustable nuts 3050 of the first pivot subassembly 305. The restricting block 3012 of each of the rotatable brackets 301 and the restricting groove 3542 of the limiting washers 354 cooperatively restrict each of the rotatable brackets 301 in limited adjusting range. A torsion force of the torsion spring 353 either increases or decreases according to the rotation of each of the rotatable brackets 301, thereby preventing an excessive force from damaging the first pivot subassembly 305.
Referring to
Referring also to
When an external force is applied on the display 10 to make the rotatable brackets 301 rotate relative to the first pivot shaft 351 of the first pivot subassembly 305, the viewing angle of the display body 10 is adjusted. When the external force is released, frictional forces between the rotatable bracket 301 and components of the first pivot subassembly 305 enable the display body 10 to retain in a desired position.
In alternative embodiments, the elastic subassembly 309 may be omitted. In such cases, a torsion spring is disposed between the side wall 3212 of the first chassis 321 and the supporting subassembly 323. The torsion spring is sleeved on the second pivot shaft 361. Two ends of the torsion spring are fixed to the side wall 3212 of the first chassis 321 and the supporting subassembly 323 correspondingly, and the torsion spring is compressed between the first chassis 321 and the supporting subassembly 323 connected to the connecting base 303. The torsion spring is capable of exerting a rebound force on the side wall 3212 of the first chassis 321 and the supporting subassembly 323. The angle between the side walls 3212 of the first chassis 321 and the supporting subassemblies 323 has a tendency of becoming larger. Therefore, the distance between the first chassis 321 and the second chassis 322 has a tendency of becoming smaller. The rebound force of the torsion spring partially balances the gravitational force acting on the display body 10. Alternatively, the torsion spring may be replaced by a compression spring with two rings formed at distal ends. The two rings of the compression spring are fixed to the side wall 3222 of the second chassis 322 and the supporting subassembly 323 correspondingly.
Referring to
A torsion force of the tension spring 353 either increases or decreases according to the motion of the elevating support 30, thereby further preventing an excessive force from damaging the elevating support 30. Therefore, the usage life of the elevating support 30 is prolonged. Further, the first and second utmost positions are restricted by the restricting poles 3702 abutting against the restricting grooves 3215 and the restricting blocks 3012 abutting against the restricting groove 3541, thus the elevating support 30 is effectively restricting between the first utmost position to the second utmost position. In other words, the display body can be adjusted between the minimum height and the maximum height.
Referring to
Referring to
It is believed that the present embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the invention or sacrificing all of its material advantages, the examples hereinbefore described merely being preferred or exemplary embodiments of the invention.
Claims
1. A support stand for a flat-panel display body, comprising:
- an elevating support, comprising a first chassis, a second chassis, a first plurality of supporting blocks and a second plurality of supporting blocks, an elastic member, a first pivot subassembly, and a second pivot subassembly; wherein the elastic member is capable of exerting a rebound force on at least two of the first chassis, the second chassis, the first and the second pluralities of supporting blocks to make the first chassis and the second chassis tend to elevate, the first pivot subassembly is fixed to the first plurality of supporting blocks which are connected to a first end portion of the first chassis and a first end portion of the second chassis, and the second pivot subassembly is fixed to the second plurality of supporting blocks which are connected to a second end portion of the first chassis and a second end portion of the second chassis;
- a monitor bracket rotatably connected to the first pivot subassembly; and
- a support member rotatably connected to the second pivot subassembly, wherein
- the first chassis comprises a resisting wall formed on the first end portion thereof opposite to the second pivot subassembly, and wherein
- the elevating support further comprises a shaft sleeve; and a guiding shaft; the shaft sleeve is sleeved on the second pivot subassembly, two ends of the guiding shaft are respectively fixed to the shaft sleeve and the resisting wall, the elastic member is sleeved on the guiding shaft, two ends of the elastic member resist against the resisting wall and the shaft sleeve respectively.
2. The support stand as claimed in claim 1, the elevating support further comprises a connecting base, the connecting base is rotatably connected to the second plurality of supporting blocks; the shaft sleeve is received within the connecting base.
3. The support stand as claimed in claim 2, the resisting wall of the first chassis defines a through hole, the top end of the guiding shaft is inserted into the through hole, and the bottom end of the guiding shaft is fixed to the shaft sleeve.
4. The support stand as claimed in claim 3, the first chassis further comprises a flat base, and two side walls extending from opposite sides of the flat base; wherein the resisting wall extends from a top end of the flat base away from the connecting base, and perpendicularly relative to the side walls.
5. The support stand as claimed in claim 1, the support stand further comprises a pair of rotatable brackets; each of the pair of rotatable brackets is rotatably connected to the first end portion first chassis via the first pivot subassembly.
6. The support stand as claimed in claim 4, the first pivot subassembly comprises a first pivot shaft, a sleeve sleeved on the first pivot shaft, a torsion spring sleeved on the sleeve, and two first hinge subassemblies attached to opposite shaft portions of the first pivot shaft; a plurality of rotatable brackets are rotatably mounted to the first pivot shaft and engage with torsion spring.
7. The support stand as claimed in claim 6, wherein the shaft portion is non-circular, a cross-section taken perpendicular to a central axis of the shaft portion is double D-shaped, thereby forming two flat surfaces.
8. The support stand as claimed in claim 6, the first pivot subassembly further comprises two limiting washers sleeved on opposite ends of the shaft portions of the first pivot shaft and positioned adjacent to two ends of the torsion spring; each of the two limiting washer defines a restricting groove and a latching groove on a periphery; each of the plurality of rotatable brackets forms a restricting block and a notch, the torsion spring comprises two torsion portions, an n-shaped connecting portion connected to the torsion portions, each of the two torsion portions comprises a latching end; the n-shaped connecting portion is engaged in the notch of each of the plurality of rotatable brackets, each latching end of the torsion spring is inserted into the latching groove of each of the two limiting washers.
9. The support stand as claimed in claim 8, the second pivot subassembly comprises a second pivot shaft, and two second hinge subassemblies; a shaft sleeve is sleeved on a middle portion of the second pivot shaft; each of the second hinge subassemblies is attached to each shaft portion of the second pivot shaft.
10. An elevating support for a support stand of a flat-panel display body, the elevating support comprising:
- a first chassis including end portions;
- a second chassis including end portions;
- a plurality of supporting blocks for connecting the end portions of the first chassis and the second chassis;
- an elastic member, the elastic member being capable of exerting a rebound force on at least two of the first chassis, the second chassis, and the supporting blocks to make the first chassis and the second chassis tend to elevate;
- a first pivot subassembly fixed to the plurality of supporting blocks which are connected to a first end portion of the first chassis and a first end portion of the second chassis;
- a second pivot subassembly fixed to the plurality of supporting blocks which are connected to a second end portion of the first chassis and second end portion of the second chassis;
- at least one rotatable bracket rotatably connected to the first pivot subassembly; and
- a connecting base rotatably connected to the second pivot subassembly, wherein
- the first chassis comprises a resisting wall formed on the first end portion thereof opposite to the second pivot subassembly, and wherein
- the elevating support further comprises a shaft sleeve; and a guiding shaft, the shaft sleeve is sleeved on the second pivot subassembly, two ends of the guiding shaft are respectively fixed to the shaft sleeve and the resisting wall of the first chassis, the elastic member is sleeved on the guiding shaft, two ends of the elastic member resist against the resisting wall of the first chassis and the shaft sleeve respectively.
11. The elevating support as claimed in claim 10, wherein the resisting wall of the first chassis defines a through hole, the top end of the guiding shaft is inserted into the through hole, the bottom end of the guiding shaft is fixed to the shaft sleeve; the shaft sleeve is received within the connecting base, the elastic member is disposed between the resisting wall of the first chassis and the shaft sleeve.
12. The elevating support as claimed in claim 11, the first chassis further comprises a flat base; and two side walls extending from opposite sides of the flat base, the resisting wall extends from a top end of the flat base away from the connecting base, and perpendicularly to each of the two side walls.
13. The elevating support as claimed in claim 12, the first chassis comprise a flat base; and two side walls perpendicularly extending from opposite sides of the flat base, each of the two side walls defines a guiding slot, and two ends of a shaft are slidably received in the guiding slot correspondingly.
14. The elevating support as claimed in claim 13, the first pivot subassembly comprises a first pivot shaft, a sleeve sleeved on the first pivot shaft, a torsion spring sleeved on the sleeve, and two first hinge subassemblies attached to opposite shaft portions of the first pivot shaft; the at least one rotatable bracket is rotatably mounted to the first pivot shaft and engaged with torsion spring.
15. The elevating support as claimed in claim 13, the first pivot subassembly further comprises two limiting washers, each of the two limiting washers defines a restricting groove, the at least one rotatable bracket comprises two rotatable brackets, each of the two rotatable bracket is sleeved on the pivot shaft, each of the two rotatable brackets forms a restricting block, and the restricting block and the restricting groove cooperatively restrict each of the two rotatable brackets in limited adjusting range.
16. The elevating support as claimed in claim 15, the torsion spring comprises two torsion portions and an n-shaped connecting portion connected to each of the two torsion portions, each of the two torsion portions comprises a latching end for abutting against each of the two limiting washers, and the n-shaped connecting portion is fixed to each of the two rotatable brackets.
17. The elevating support as claimed in claim 13, the first pivot subassembly comprise a first pivot shaft, a sleeve sleeved on the first pivot shaft, a torsion spring sleeved on the sleeve, two first hinge subassemblies attached to opposite shaft portions of the first pivot shaft, and the torsion spring is configured to change length in response to a rotation of the at least one rotatable bracket, thereby preventing an excessive force from damaging the first pivot subassembly.
Type: Application
Filed: Nov 9, 2011
Publication Date: Mar 1, 2012
Applicants: HON HAI PRECISION INDUSTRY CO., LTD. (Tu-Cheng), HONG FU JIN PRECISION INDUSTRY (ShenZhen) CO., LTD. (Shenzhen City)
Inventors: JIN-XIN WANG (Shenzhen City), JIAN LI (Shenzhen City), ZHI-GUO SUN (Shenzhen City)
Application Number: 13/292,195
International Classification: H05K 7/00 (20060101);