Height-adjustable monitor stand

The mechanical spring type monitor stand addresses the limitations of gas and mechanical spring stands by using a quadrangular structure and threaded slider mechanism for easy height adjustment and stopping, offering convenience, low cost, and environmental friendliness.

JP7721546B2Active Publication Date: 2025-08-12NINGBO TUOTUO RIVER DESIGN CO
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Patent Information

Application Number
JP2022549981
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-28
Filing Date
2021-04-19
Publication Date
2025-08-12
Estimated Expiration
2041-04-19

AI Technical Summary

Technical Problem

Existing height-adjustable monitor stands face challenges with gas spring structures having high costs, short lifespan, safety issues, and environmental unfriendliness, while mechanical spring stands lack convenience in height adjustment due to reliance on friction.

Method used

A mechanical spring type monitor stand with a quadrangular structure and a threaded slider mechanism that adjusts height by balancing gravitational and elastic moments, allowing for easy stopping at desired heights using a threaded rod and mechanical spring system.

Benefits of technology

The mechanical spring stand provides superior convenience in height adjustment with easy stopping, a simple structure, low cost, and environmental friendliness, accommodating a range of monitor weights and heights.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The height-adjustable monitor stand includes a base (1) and a connector (4) for mounting a monitor, and an upper connecting arm (2) and a lower connecting arm (3) that are parallel to each other are provided between the base (1) and the connector (4). The monitor stand further includes a mechanical spring (6), one end of which is hingedly connected to the connector (4) or the lower connecting arm (3), and the other end of which is hingedly connected to a threaded slider (7). The threaded rod (8) is fitted onto the outside of the connector (4), and the threaded rod (8) is installed in the base (1), and when the end of the threaded rod (8) is operated to drive and rotate the threaded rod (8), the threaded slider (7) moves along the threaded rod (8), and by adjusting the position of the threaded slider (7) on the threaded rod (8) according to the weight of the monitor on the connector (4), the connector (4) stops at different heights relative to the base (1) when moving up or down. This height-adjustable monitor stand can achieve a better height-adjustable stop than a gas spring type stand.
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Description

[Technical Field]

[0001] This application claims priority to a Chinese patent application filed with the China Patent Office on June 28, 2020, bearing application number 202010599396.1, entitled "Height-Adjustable Monitor Stand," and a Chinese utility model application filed with the China Patent Office on April 20, 2020, bearing application number 202020590439.5, entitled "Height-Adjustable Monitor Stand," the entire contents of which are incorporated herein by reference.

[0002] The present disclosure relates to the technical field of monitor stands, and more particularly to height-adjustable monitor stands. [Background technology]

[0003] In the related art, height-adjustable monitor stands mainly use gas spring structures or mechanical spring structures to achieve height adjustment. Gas spring monitor stands have drawbacks such as high cost, short lifespan, oil leakage issues, safety issues, and environmental unfriendliness (due to the difficulty in handling when discarded), but the stable elastic force of the gas spring makes them convenient for achieving height adjustment. Currently, gas spring monitor stands still account for the majority of the market share.

[0004] Although mechanical spring monitor stands have advantages such as low cost, long life, safety and environmental friendliness, conventional mechanical spring monitor stands are less convenient because they rely too much on friction to balance the height adjustment.

[0005] Therefore, there is a need for a mechanical spring monitor stand that offers comparable or even superior height adjustment convenience to gas spring stands. Summary of the Invention

[0006] In response to the above-mentioned problems, the main objective of the present disclosure is to provide a mechanical spring type monitor stand that is easy to install and can be stopped after height adjustment.

[0007] According to one aspect of an embodiment of the present disclosure, a height-adjustable monitor stand includes a base and a connector for mounting a monitor, and an upper connection arm and a lower connection arm are provided between the base and the connector, the upper connection arm and the connector being parallel to each other, and the hinge point between the upper connection arm and the connector, the connector, the hinge point between the lower connection arm and the connector, the lower connection arm, the hinge point between the lower connection arm and the base, the base, the hinge point between the upper connection arm and the base, and the upper connection arm form a quadrangular structure, The monitor stand further includes a mechanical spring, one end of which is hingedly connected to the connector or the lower connecting arm, and the other end of which is hingedly connected to a threaded slider, the threaded slider being fitted onto the threaded rod, which is provided within the base, and when the end of the threaded rod is operated to drive and rotate the threaded rod, the threaded slider moves along the threaded rod, and by adjusting the position of the threaded slider on the threaded rod in accordance with the weight of the monitor on the connector, the connector stops at different heights relative to the base when the connector is moved up and down, thereby providing a height-adjustable monitor stand.

[0008] The height adjustable monitor stand of the disclosed embodiments uses a mechanical spring to provide a superior height adjustable stop over gas spring stands.

[0009] In some embodiments, the monitor stand holds the connector at any height within a predetermined height range to accommodate a monitor of any weight within a predetermined weight range, and drives and rotates the threaded rod to move and displace the threaded slider, satisfying a first balance condition in which the gravity moment M1 and the elastic moment M2 are equal; and holds the position of the threaded slider on the threaded rod corresponding to the weight of the monitor according to the first balance condition to enable the connector to stop at different heights relative to the base, and satisfies a second balance condition in which the gravity moment M1 and the elastic moment M2 are equal when the height of the connector is arbitrarily changed within the predetermined height range.

[0010] In some embodiments, the threaded rod is arranged to match the movement trajectory of the threaded slider, and the movement trajectory of the threaded slider is located on the line segment connecting points e0 and f0 within the range of rectangle e1f1f2e2, and the range of rectangle e1f1f2e2 is formed by translating line segment ef 5 mm up and down along a direction perpendicular to line segment ef to obtain line segments e1f1 and e2f2, respectively, and points e and f are the intersections of circle C and lines La and Lb, respectively, and circle C is a circle with its center at the connection point between the mechanical spring and the connector or the lower connection arm and its radius being the length L1 of the mechanical spring when the connector is at a predetermined maximum height, and lines La and Lb are the lines on which the mechanical spring is located when the included angle b between the mechanical spring and the upper connection arm or the lower connection arm is at its maximum and minimum values, respectively.

[0011] In some embodiments, the angle between the threaded rod and the horizontal direction away from the connector is between 0 and 80 degrees.

[0012] In some embodiments, when the connector is at a predetermined maximum height, the length L1 of the mechanical spring is Lx, where L is the distance from the connection point of the mechanical spring with the connector or lower connecting arm to the hinge point between the lower connecting arm and the base, and x is between -10 and 30 mm.

[0013] In some embodiments, when the connector is held at any level within a predetermined height range, the maximum and minimum values of the included angle b between the mechanical spring and the upper or lower connecting arm are obtained based on the maximum and minimum values of the predetermined weight range of the monitor.

[0014] In some embodiments, the elastic modulus K of the mechanical spring is Kmin to Kmax, where Kmax-Kmin≦15, and Kmin, Kmax are given by the following formula:

[0015]

number

[0016] where G is the weight of the monitor, a1 and a2 are the angles between the upper connecting arm and the horizontal plane when the connector is at any two heights within a predetermined height range, respectively; b1 and b2 are the angles between the mechanical spring and the upper or lower connecting arm, respectively, corresponding to a1 and a2; L1 and L1' are the lengths of the mechanical springs corresponding to a1 and a2, respectively.

[0017] In some embodiments, one end of the threaded rod is provided as an operating end, and the other end of the threaded rod is rotatably mounted within the mounting seat such that applying a force to the operating end of the threaded rod drives the threaded rod to rotate.

[0018] In some embodiments, the monitor stand further includes an adjustment rod, one end of which is hingedly connected to the connector or the lower connecting arm, and the other end of which is threadedly connected to one end of a mechanical spring, and when the end of the adjustment rod is operated to drive and rotate the adjustment rod, the mechanical spring is moved to expand and contract so as to adjust the elastic force of the mechanical spring to accommodate a monitor of a predetermined weight range.

[0019] According to another aspect of an embodiment of the present disclosure, there is provided a height-adjustable monitor stand that includes a base and a connector for attaching a monitor, wherein an upper connection arm and a lower connection arm that are parallel to each other are provided between the base and the connector, and the hinge point between the upper connection arm and the connector, the connector, the hinge point between the lower connection arm and the connector, the lower connection arm, the hinge point between the lower connection arm and the base, the base, the hinge point between the upper connection arm and the base, and the upper connection arm form a parallelepiped structure, and further includes an elastic force balancing mechanism, one end of which is hingedly connected to the upper connection arm and the other end of which is hingedly connected to the connector, and the elastic force of the elastic force balancing mechanism can be adjusted in accordance with the monitor on the connector, so that the connector stops at different heights relative to the base when the connector is moved up or down.

[0020] In some embodiments, the elastic force balancing mechanism includes an elastic member and an adjustment rod, one end of the adjustment rod is hingedly connected to the upper connecting arm, the other end of the adjustment rod is threadedly connected to one end of the elastic member, and the other end of the elastic member is connected to the connector, and the end of the adjustment rod is operated to drive and rotate the adjustment rod so that the elastic force of the elastic member matches the weight of the monitor on the connector, thereby moving and expanding the elastic member.

[0021] In some embodiments, an operating hole is provided at the end of the upper connecting arm, and the end of the adjustment rod is attached to the operating hole, and the end of the adjustment rod is operated through the operating hole.

[0022] In some embodiments, the upper and lower connecting arms are both hingedly connected to the base and connector by a connecting shaft and a shaft hole corresponding to the connecting shaft.

[0023] By adopting the height-adjustable monitor stand of the present disclosure, it is possible to realize free stopping during height adjustment based on the installation position of the elastic force balance mechanism relative to the parallelepiped structure, and it has few parts, a simple structure, low cost, and a beautiful appearance. [Brief explanation of the drawings]

[0024] In the following, in order to more clearly explain the technical aspects of the embodiments of the present disclosure and the prior art, drawings necessary for the embodiments and the prior art will be briefly introduced. However, it is clear that the drawings described below are only some embodiments of the present disclosure, and those skilled in the art can obtain other embodiments from these drawings without any creative effort.

[0025] [Figure 1] 1 is an exploded schematic view of an adjustable height monitor stand according to some embodiments of the present disclosure. FIG. [Figure 2] 1 is a cross-sectional view of a first state of an adjustable height monitor stand according to some embodiments of the present disclosure. FIG. [Figure 3] 1 is a cross-sectional view of a second state of an adjustable height monitor stand according to some embodiments of the present disclosure. FIG. [Figure 4] 1 is a first simplified diagram of an adjustable height monitor stand according to some embodiments of the present disclosure. [Figure 5] FIG. 1 is a second simplified diagram of an adjustable height monitor stand according to some embodiments of the present disclosure. [Figure 6] FIG. 1 is another schematic diagram of a height-adjustable monitor stand according to some embodiments of the present disclosure. [Figure 7] FIG. 10 is a third schematic diagram of a height-adjustable monitor stand according to some embodiments of the present disclosure. [Figure 8] FIG. 1 is another exploded schematic view of an adjustable height monitor stand according to some embodiments of the present disclosure. [Figure 9] 1 is a cross-sectional view of an adjustable height monitor stand in a first position according to some embodiments of the present disclosure. FIG. [Figure 10]FIG. 10 is a simplified diagram of the height-adjustable monitor stand shown in FIG. 9. [Figure 11a] 1 is a cross-sectional view of an adjustable height monitor stand in a second position according to some embodiments of the present disclosure. FIG. [Figure 11b] FIG. 11b is a simplified diagram of the height adjustable monitor stand shown in FIG. 11a. [Figure 12a] FIG. 10 is a cross-sectional view of an adjustable height monitor stand in a third position according to some embodiments of the present disclosure. [Figure 12b] FIG. 12b is a simplified diagram of the height adjustable monitor stand shown in FIG. 12a. DETAILED DESCRIPTION OF THE INVENTION

[0026] In order to clarify the objectives, technical aspects, and advantages of the present disclosure, the present disclosure will be described in more detail below with reference to the drawings and examples. It is clear that the described examples are only some of the examples of the present disclosure, and do not represent all of the examples. Based on the examples in the present disclosure, all other examples that can be obtained by a person skilled in the art without creative efforts fall within the scope of protection of the present disclosure.

[0027] As shown in Figures 1 to 6, one aspect of an embodiment of the present disclosure provides a height-adjustable monitor stand, which includes a base 1 and a connector 4 for mounting a monitor, the monitor being fixed to the connector 4 by a mounting plate 5, and an upper connecting arm 2 and a lower connecting arm 3 that are parallel to each other and are provided between the base 1 and the connector 4, and as shown in Figure 4, a hinge point C between the upper connecting arm 2 and the connector 4, the connector 4, a hinge point D between the lower connecting arm 3 and the connector 4, the lower connecting arm 3, a hinge point B between the lower connecting arm 3 and the base 1, the base 1, a hinge point A between the upper connecting arm 2 and the base 1, and the upper connecting arm 2 form a rectangular structure ABDC.

[0028] As shown in FIGS. 1 to 3 , the monitor stand further includes a mechanical spring 6, one end of which is hingedly connected to the connector 4, and the other end of which is hingedly connected to a threaded slider 7, which is fitted onto a threaded rod 8, which is mounted within the base 1. One end of the threaded rod 8 is provided as an operating end 9, and the other end of the threaded rod 8 is rotatably mounted within the base 1. By applying a force to the operating end 9 of the threaded rod 8, the threaded rod 8 can be driven to rotate. When the end of the threaded rod 8 is operated to drive and rotate the threaded rod 8, the threaded slider 7 moves along the threaded rod 8. In this case, as shown in FIG. 2 , the threaded slider 7 is located at the top end of the threaded rod 8, and as shown in FIG. 3 , the threaded slider 7 is located at the bottom end of the threaded rod 8. By operating the threaded rod 8, the threaded slider 7 can be moved between the top and bottom ends of the threaded rod 8.

[0029] Depending on the weight of the monitor on the connector 4, the position of the threaded slider 7 on the threaded rod 8 can be adjusted to stop the connector 4 at different heights relative to the base 1 when the connector 4 is moved up or down.

[0030] In some embodiments of the present disclosure, one end of the mechanical spring 6 is hingedly connected to the connector 4. In other embodiments of the present disclosure, the end of the mechanical spring 6 may be hingedly connected to the lower connecting arm 3.

[0031] In the embodiment provided by the present disclosure, one end of the mechanical spring 6 is hingedly connected to the connector 4, the other end is hingedly connected to the threaded slider 7, and the threaded slider 7 is threadedly connected to the threaded rod 8. The mechanical spring 6, the threaded slider 7, and the threaded rod 8 are all attached to the base 1, and as shown in FIGS. 2 and 3, the mechanical spring 6 is in an extended state. By rotating the threaded rod 8 with a hex wrench, the threaded slider 7 can be moved up and down on the threaded rod 8, changing the angle between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3, thereby achieving flexible stopping at different loads and heights. Here, the sliding range of the threaded slider 7 and the corresponding mounting position of the threaded rod 8 can be designed to achieve flexible stopping of the monitor within the required load range.

[0032] Therefore, in order to achieve free suspension of the monitor within the required load range, the monitor stand provided by the present disclosure simultaneously meets the following balance conditions: First balance condition: The connector 4 is held at any height within a predetermined height range, and the threaded slider 7 is moved by driving and rotating the threaded rod 8, so that the gravity moment M1 is equal to the elastic moment M2, thereby adapting to a monitor of any weight within a predetermined weight range. Second balance condition: In accordance with the first balance condition, the position of the threaded slider 7 on the threaded rod 8 is maintained to correspond to the weight of the monitor, and when the height of the connector 4 is changed arbitrarily within a predetermined height range, the gravitational moment M1 is made equal to the elastic moment M2, thereby realizing the connector 4 being stopped at different heights relative to the base 1.

[0033] Regarding the first balance condition, as shown in FIG. 4, the connector 4 is held at any height within a predetermined height range, i.e., the angle a between the upper connecting arm 2 or the lower connecting arm 3 and the horizontal plane is not changed. In this case, to accommodate a monitor of any weight within a predetermined weight range, the threaded slider 7 is moved up and down on the special threaded rod 8 by rotating the threaded rod 8 with a hexagonal wrench, i.e., the threaded slider 7 is moved on the threaded rod 8 along the length of the threaded rod 8, thereby changing the position of the threaded slider 7 on the threaded rod 8, i.e., the angle b between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3.

[0034] The gravitational moment M1 = GL * cos(a), and the elastic moment M2 = F * L * sin(b), and the gravitational moment is the same as the elastic moment. Here, if L is the length of the upper connecting arm 2 or the lower connecting arm 3, G is gravity, and F is the elastic force, then G = F sin(b) / cos(a). Since the angle a is constant and the elastic force F is also constant, as b decreases, that is, when the threaded slider 7 slides downward, G decreases, and the weight of the monitor decreases. Therefore, for monitors within a given weight range, the weight decreases. The smaller b is, the closer to the bottom the position of the threaded slider 7 on the threaded rod 8 is. As shown in FIG. 4, point E is the highest point of the threaded slider 7, where the angle b between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3 is maximum, and point F is the lowest point of the threaded slider 7, where the angle b between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3 is minimum.

[0035] Regarding the second balance condition, if the weight of the monitor is constant, the position of the threaded slider 7 on the threaded rod 8 is constant, and the position of the monitor is adjusted along the vertical direction, i.e., if the angle a can be changed arbitrarily within a predetermined angle range, then in this process the gravitational moment M1 will also be equal to the elastic moment M2.

[0036] If the specified range of angle a is (33°, -33°) and angle a changes from 33° to -33°, the mechanical spring 6 will always be stretched and the elastic force F will continue to increase. Therefore, in order to make M1 = M2, it is necessary to continue to reduce the angle b between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3 so that the moment M2 provided by the elastic force does not basically change.

[0037] Therefore, the installation position of the corresponding threaded rod 8 / movement trajectory of the threaded slider 7 can be calculated and obtained according to a predetermined weight range and a predetermined height range / predetermined angle range.

[0038] As shown in FIG. 5, based on the first and second balance conditions, the basic movement trajectory of the threaded slider 7 can be determined. That is, a circle C is drawn with its center at the connection point G of the mechanical spring 6 on the connector 4 and its radius equal to the length L1 of the mechanical spring 6 when the connector 4 is at a predetermined maximum height. When the included angle b between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3 is at its maximum or minimum value, straight lines La and Lb passing through point G are formed, respectively. The intersections of the circle C with the lines La and Lb form points e and f, respectively. The line segment ef is translated 5 mm up and down along a direction perpendicular to the line segment ef, to obtain line segments e1f1 and e2f2, which define the range of the movement trajectory of the threaded slider 7, i.e., the rectangle e1f1f2e2.

[0039] When the connector 4 is held at any level within a predetermined height range, the maximum and minimum values of the included angle b between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3 are obtained based on the maximum and minimum values within the predetermined weight range of the monitor, i.e., the maximum value of the included angle b between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3 is obtained based on the maximum value within the predetermined weight range of the monitor, and the minimum value of the included angle b between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3 is obtained based on the minimum value within the predetermined weight range of the monitor.

[0040] That is, the movement locus of the threaded slider 7 is on the line segment e0f0 connecting two points e0 and f0 on the quadrangle e1f1f2e2, and the threaded rod 8 is arranged to coincide with the movement locus of the threaded slider 7. As shown in Fig. 4, in some embodiments of the present disclosure, the included angle α between the threaded rod 8 and the horizontal direction away from the connector 4 is 0 to 80°.

[0041] By determining the elastic modulus of the mechanical spring 6, the movement trajectory of the threaded slider 7 can be further determined. For the same spring, the spring stiffness K (elastic modulus) must be a constant value or not change significantly in magnitude. Since K = increase in elastic force ΔF / deformation amount ΔX of the mechanical spring 6 is a constant value or does not change significantly in magnitude, the elastic modulus of the mechanical spring 6 can be determined by verifying the movement trajectory of the threaded slider 7 using the following formula.

[0042]

number

[0043] where G is the weight of the monitor, a1 and a2 are the angles between the upper connecting arm 2 or the lower connecting arm 3 and the horizontal plane when the connector 4 is at any two heights within a predetermined height range, respectively; b1 and b2 are the angles between the mechanical spring 6 and the upper connecting arm 2 or the lower connecting arm 3, which correspond to a1 and a2, respectively; L1 and L1' are the lengths of the mechanical spring 6 corresponding to a1 and a2, respectively, and are obtained by actual measurement.

[0044] According to the above formula, multiple K values can be obtained, and the elastic modulus K of the mechanical spring 6 is selected from Kmin to Kmax, where Kmax-Kmin≦15. Any point on the line segment e0f0 can be verified to see if it meets the requirements. If not, the position can be slightly adjusted and verified again. The actual point obtained may fluctuate up or down, and the finally drawn straight line is the movement trajectory of the threaded slider 7.

[0045] When the connector 4 is at a predetermined maximum height, the length L1 of the mechanical spring 6 is Lx, where L is the distance from the connection point between the connector 4 or the lower connecting arm 3 and the hinge point between the lower connecting arm 3 and the base 1, and x is between -10 and 30 mm. To satisfy the second balance condition, when changing within a predetermined angle / height range, theoretically, when angle a is at its maximum, if the length L1 of the mechanical spring 6 is greater than or equal to L, angle b will continue to decrease as the connector 4 rotates downward. However, in reality, the moment of gravity is M1 = GL * cos(a), and gravity G does not change. In the initial stage, the moment of gravity M1 increases as angle a changes from 33° to 0°. However, the change in the moment of gravity is not significant, especially in the latter stage. Therefore, the change in the elastic force is significant. Therefore, the change in the moment of gravity can be ignored, i.e., considered a fixed value. Therefore, the length L1 of the mechanical spring 6 is Lx, where x is between -10 and 30 mm.

[0046] In some examples, taking a monitor load of 2 to 9 kg as an example, the angle a is changed from 33° to -33°, and the weight of the monitor itself is taken into account, and G is calculated as 30 to 100 N. If the elastic force F is assumed to be 700 N, the minimum value bmin is approximately 2°, the maximum value bmax is approximately 7.5°, L = 240 mm, x = 5 mm, and L1 = 235 mm.

[0047] As shown in FIG. 6, the monitor stand includes an adjustment rod 10, one end of which is hingedly connected to the connector 4 or the lower connecting arm 3, and the other end of which is threadedly connected to one end of the mechanical spring 6. By manipulating the end of the adjustment rod 10, the adjustment rod 10 is driven and rotated, which moves the mechanical spring 6 to expand and contract, thereby adjusting the elastic force of the mechanical spring 6 and adapting it to a monitor of a predetermined weight range.

[0048] If only the mechanical spring 6 were provided, the amount of deformation of the mechanical spring 6 would already be determined when the monitor stand was attached, and the tension of the mechanical spring 6 would be fixed during use, making adjustment difficult. However, after the adjustment rod 10 is attached, the tension of the mechanical spring 6 can be adjusted. Specifically, the extension of the mechanical spring 6 can be controlled by rotating the adjustment rod 10, changing the magnitude of the elastic force. Adjusting the magnitude of the elastic force allows for more flexible setting of the monitor weight range. For example, if the elastic force is 700N, the monitor weight range is 2 to 9 kg, and if the elastic force is adjusted to 800N, the monitor weight range can be 3 to 11 kg.

[0049] The height-adjustable monitor stand of the disclosed embodiment employs a mechanical spring 6 to achieve a better height-adjustable stop than a gas-spring type stand. The monitor stand has a parallelepiped structure, allowing the height of the monitor attached to the connector 4 to be adjusted by adjusting the angle between the upper connecting arm 2 or the lower connecting arm 3 and the horizontal plane. The monitor stand also includes a mechanical spring 6, a threaded slider 7, and a threaded rod 8. The threaded rod 8 can be rotated to drive the threaded slider 7 to move along the threaded rod 8. The mechanical spring 6 is hingedly connected to the threaded slider 7, so that as the threaded slider 7 moves along the threaded rod 8, the length of the mechanical spring 6 changes, and the elastic force generated by the mechanical spring 6 also changes. A monitor fixed to the connector 4 can generate a clockwise gravitational moment relative to the connector 4, and furthermore, the mechanical spring 6 can generate a counterclockwise elastic moment relative to the connector 4. Therefore, by determining the magnitude of the elastic force based on the weight of the monitor, and by determining the amount of deformation of the mechanical spring 6 and the position of the threaded slider 7 on the threaded rod 8, the magnitudes of the gravitational moment and the elastic moment become the same, thereby allowing the two moments acting on the monitor to cancel each other out, and the monitor can be fixed in position after being adjusted.

[0050] As shown in Figures 7 to 12b, another aspect of an embodiment of the present disclosure provides an embodiment of a height-adjustable monitor stand that includes a base 1 and a connector 4, where the base 1 can be attached to a support arm and the connector 4 is provided with a connection plate 25 for attaching a monitor.

[0051] As shown in Figure 8, an upper connecting arm 2 and a lower connecting arm 3 are provided between the base 1 and the connector 4, and are parallel to each other. The ends of the upper connecting arm 2 and the lower connecting arm 3 are hingedly connected to the base 1 and the connector 4, respectively.

[0052] FIG. 10 is a simplified diagram of the monitor stand shown in FIG. 9. As shown in FIG. 10, the ends of the upper connecting arm 2 and the lower connecting arm 3 are hingedly connected to the base 1 and the connector 4, respectively, to form four hinge points a, b, c, and d. Hinge point a is formed between the upper connecting arm 2 and the connector 4, hinge point b is formed between the lower connecting arm 3 and the connector 4, hinge point d is formed between the lower connecting arm 3 and the base 1, hinge point c is formed between the upper connecting arm 2 and the base 1, the connector 4 is between hinge points a and b, and the base 1 is between hinge points c and d. The upper connecting arm 2, the lower connecting arm 3, the base 1, the connector 4, and the four hinge points a, b, c, and d form a parallelepiped structure, and the hinge points a, b, c, and d are the four vertices of this parallelepiped structure.

[0053] The upper connecting arm 2 and the lower connecting arm 3 are both hingedly connected to the base 1 and the connector 4 by connecting shafts and shaft holes corresponding to the connecting shafts. Here, as shown in Fig. 8, the upper connecting arm 2 is hingedly connected to the base 1 and the connector 4 by shaft holes 30 and 16 and corresponding connecting shafts 29, 13 and 11, and the lower connecting arm 3 is hingedly connected to the base 1 and the connector 4 by connecting shafts 12 and 14 and corresponding shaft holes, respectively. Therefore, the connector 4 can rotate around the base 1, thereby changing the position of the connector 4.

[0054] 7 to 10, the monitor stand further includes an elastic force balancing mechanism, which includes an elastic member 27 and an adjustment rod 10, one end of which is hingedly connected to the upper connection arm 2, the other end of which is screw-connected to one end of the elastic member 27, and the other end of which is hingedly connected to the connector 4. As shown in FIG. 10, the elastic member 27 and the connector 4 form a connection point e.

[0055] Based on the parallelepiped structure and the elastic force balancing mechanism, the elastic force of the elastic force balancing mechanism can be adjusted according to the weight of the monitor attached, so that the connector 4 can be stopped at different heights relative to the base 1 when moving the connector 4 up and down. Here, by operating the end of the adjusting rod 10 to drive and rotate the adjusting rod 10, the elastic member 27 is moved to expand and contract, and the elastic force of the elastic member 27 matches the weight of the monitor on the connector 4.

[0056] Specifically, a monitor fixed to connector 4 can generate a clockwise gravitational moment relative to connector 4, and furthermore, the elastic force balancing mechanism can generate a counterclockwise elastic moment relative to connector 4. Therefore, by specifying the magnitude of the elastic force of the elastic force balancing mechanism according to the weight of the monitor, the magnitudes of the gravitational moment and the elastic moment become the same, thereby allowing the two moments received by the monitor to cancel each other out, and the monitor is fixed in its position after being adjusted.

[0057] Therefore, when using the product according to the embodiment of the present disclosure, the elastic force of the elastic member 27 can be adjusted to accommodate loads of different weights, such as monitors. For example, if the load is 1 kg, a tool such as a wrench can be used to rotate the adjustment rod 10 to stretch the elastic member 27 until a certain amount of deformation occurs so that the elastic force of the elastic member 27 and the load are balanced. After achieving this balance, the monitor can move up and down to any position without falling or rising, i.e., it can stop at any height. If the load is 10 kg, the adjustment rod 10 must be rotated to stretch the elastic member 27 until a certain amount of deformation occurs so that the elastic force of the elastic member 27 and the load are newly balanced.

[0058] Specifically, as shown in Figures 7 and 10, an operating hole 26 is provided at the end of the upper connecting arm 2, the end of the adjustment rod 10 is attached to the operating hole 26, and the end of the adjustment rod 10 is operated through the operating hole 26.

[0059] As shown in FIG. 8 , the elastic member 27 is attached to the mounting shaft 15 of the connector 4 by a mounting ring 17 at its end. As for the specific positions of the ends of the elastic member 27 on the connector 4 and the upper connecting arm 2, as shown in the embodiment shown in FIG. 10 , hinge points a and b are located on the same vertical plane, hinge points c and d are located on the same plane, connection point e formed by the elastic member 27 and the connector 4 is located outside the vertical plane on which hinge points a and b are located, and the connection point between the adjustment rod 10 and the upper connecting arm 2 is located outside the vertical plane on which hinge points c and d are located. Here, connection point e formed by the elastic member 27 and the connector 4 is located diagonally below hinge point b between the lower connecting arm 3 and the connector 4. Furthermore, connection point e formed by the elastic member 27 and the connector 4 may be located at any other position on the connector 4, such as at hinge point b between the lower connecting arm 3 and the connector 4 or diagonally above hinge point b.

[0060] As shown in Figure 10, let L be the length of the upper connecting arm 2, β be the angle between the elastic force balance mechanism and the upper connecting arm 2, α be the angle between the upper connecting arm 2 and the horizontal plane, G be gravity, F be the elastic force, and the arc be the trajectory of movement of point a. Because gravity is downward, the direction of the moment provided by the gravity of the weight on the weight is clockwise, and the direction of the moment provided by the elastic member 27 to the weight is counterclockwise; these two directions are opposite. The moment provided by the gravity of the weight itself is M1 = GL * cos(α), and the moment of tension provided by the elastic member 27 is M2 = F * L * sin(β). Therefore, if M1 = M2, the magnitudes of the moments in the clockwise and counterclockwise directions are equal and cancel each other out, making it possible to stop the weight at any height.

[0061] Based on the installation position of the elastic force balancing mechanism relative to the parallelepiped structure of the embodiment of the present disclosure, as shown in Figures 11a to 12b, after the monitor and the elastic force balancing mechanism are adjusted and balanced, the monitor can rotate up and down at will and stop. As the monitor rotates up and down, the elastic member 27 continues to stretch, the elastic force increases, and the included angle β between the elastic force balancing mechanism and the upper connecting arm 2 decreases, changing from 6° to 5° and then to 3°, keeping the moment constant. Therefore, the moment provided by the elastic member 27 is the same at any position during the up and down rotation, and the monitor can be stopped freely at any position.

[0062] By adopting the height-adjustable monitor stand of the embodiment of the present disclosure, it is possible to realize free stopping during height adjustment based on the installation position of the elastic force balance mechanism relative to the parallelepiped structure, and it has fewer parts, a simple structure, low cost, and a beautiful appearance.

[0063] It should be noted that, in this context, relational terms such as "first" and "second," etc., are merely used to distinguish one entity or operation from another and do not necessarily require or imply any actual relationship or ordering between those entities or operations. Furthermore, the term "comprises" or any other variation thereof is intended to encompass a non-exclusive inclusion of a process, method, article, or apparatus that includes a set of elements, such that it includes not only those elements but also other elements not expressly listed or elements inherent in such process, method, article, or apparatus. Absent further qualification, an element qualified by the phrase "comprises" does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes such element.

[0064] The above are only preferred embodiments of the present disclosure and are not intended to limit the present disclosure, and any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present disclosure should all be included within the protection scope of the present disclosure.

Claims

1. A height-adjustable monitor stand, The monitor stand includes a base and a connector for mounting a monitor; an upper connection arm and a lower connection arm that are parallel to each other are provided between the base and the connector; the hinge point between the upper connecting arm and the connector, the connector, the hinge point between the lower connecting arm and the connector, the lower connecting arm, the hinge point between the lower connecting arm and the base, the base, the hinge point between the upper connecting arm and the base, and the upper connecting arm form a quadrilateral structure; the monitor stand further includes a mechanical spring, one end of the mechanical spring being hingedly connected to the lower connecting arm and the other end of the mechanical spring being hingedly connected to the threaded slider; the threaded slider is fitted onto a threaded rod, the threaded rod being disposed within the base; the threaded slider is movable along the threaded rod when the end of the threaded rod is manipulated to drive and rotate the threaded rod; A moment provided by gravity that tends to rotate the upper connection arm or the lower connection arm downward relative to the connector is defined as a gravity moment M1; When the moment provided by the tension of the mechanical spring, which tends to rotate the upper connection arm or the lower connection arm in an upward direction opposite to the downward direction relative to the connector, is defined as an elastic moment M2, The monitor stand is a first balance condition in which the connector is held at any height within a predetermined height range to accommodate a monitor of any weight within a predetermined weight range, and the threaded slider is moved by driving and rotating the threaded rod, so that the gravity moment M1 and the elastic moment M2 are equal; a second balance condition in which the position of the threaded slider on the threaded rod corresponding to the weight of a monitor is maintained according to the first balance condition so as to realize that the connector can be stopped at different heights relative to the base, and the gravity moment M1 and the elastic moment M2 are equal when the height of the connector is arbitrarily changed within the predetermined height range; whereby, when the position of the threaded slider on the threaded rod is adjusted to move the connector up or down depending on the weight of the monitor on the connector, the connector can be stopped at different heights relative to the base; When the end of the threaded rod is operated to move the threaded slider along the threaded rod, the mechanical spring expands and contracts to adjust the tension of the mechanical spring, and the angle between the mechanical spring and the lower connecting arm is changed, so that the monitor stand satisfies the first balance condition. A monitor stand with adjustable height.

2. The upper connecting arm and the lower connecting arm have the same length and are parallel to each other; Let L be the length of the upper connection arm and the lower connection arm, G be gravity, F be the tension of the mechanical spring, a be the angle between the upper connection arm or the lower connection arm and the horizontal plane, and b be the angle between the mechanical spring and the upper connection arm or the lower connection arm.

2. The height-adjustable monitor stand of claim 1, wherein the gravitational moment M1 is GL*cos(a), and the elastic moment M2 is F*L*sin(b).

3. the threaded rod is provided to coincide with the movement trajectory of the threaded slider; The movement locus of the threaded slider is located on a line segment connecting points e and f within the range of a quadrangle e, f, f, e, and the range of the quadrangle e, f, f, e is formed by translating the line segment ef by 5 mm up and down along a direction perpendicular to the line segment ef to obtain line segments e, f and e, f, respectively. Points e and f are the intersections of the circle C with the lines La and Lb, respectively. a circle C has a center at the connection point between the mechanical spring and the lower connection arm and a radius equal to the length L1 of the mechanical spring when the connector is at a predetermined maximum height; 2. The height-adjustable monitor stand of claim 1, wherein the straight lines La and Lb are the straight lines on which the mechanical spring is located when the included angle b between the mechanical spring and the lower connecting arm is at its maximum and minimum values, respectively.

4. 4. The height-adjustable monitor stand according to claim 1, wherein the angle between the threaded rod and a horizontal line extending away from the connector is 0 to 80 degrees.

5. When the connector is at a predetermined maximum height, the length L of the mechanical spring is L-x; 4. A height-adjustable monitor stand according to claim 1, wherein L is the distance from the connection point between the mechanical spring and the lower connecting arm to the hinge point between the lower connecting arm and the base, and x is -10 to 30 mm.

6. 4. A height-adjustable monitor stand according to claim 1, wherein when the connector is held at any level within a predetermined height range, the maximum and minimum values of the included angle b between the mechanical spring and the lower connecting arm are obtained based on the maximum and minimum values of a predetermined weight range of the monitor.

7. 4. The height-adjustable monitor stand according to claim 1, wherein the elastic modulus K of the mechanical spring is Kmin to Kmax, where Kmax-Kmin≦15, and Kmin and Kmax are calculated by the following formula: [Equation 1] where G is the weight of the monitor, a1 and a2 are angles between the lower connecting arm and a horizontal plane when the connector is at any two heights within a predetermined height range, respectively; b1 and b2 are the angles between the mechanical spring and the lower connecting arm, corresponding to a1 and a2, respectively; L1, L1' are the lengths of the mechanical springs corresponding to a1 and a2, respectively.

8. 4. A height-adjustable monitor stand as described in any one of claims 1 to 3, wherein one end of the threaded rod is provided as an operating end, and the other end of the threaded rod is rotatably provided within the base so that the threaded rod is driven and rotated by applying force to the operating end of the threaded rod.

9. the monitor stand further includes an adjustment rod, one end of the adjustment rod is hingedly connected to the lower connection arm, the other end of the adjustment rod is threadedly connected to one end of the mechanical spring, the one end of the mechanical spring being hingedly connected to the lower connection arm via the adjustment rod; 4. A height-adjustable monitor stand as claimed in any one of claims 1 to 3, wherein the tension of the mechanical spring is adjusted to accommodate a monitor within a predetermined weight range by operating the end of the adjustment rod to drive and rotate the adjustment rod, thereby causing the mechanical spring to expand and contract.

Citation Information

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