Central control screen structure capable of rotating manually

By designing a manually rotatable central control screen structure, using the combination of rotating pins and dampers, the existing central control screen is solved with the complex and cost-effective structure of the unadjustable and electric adjustment type, and flexible rotation adjustment and stable installation are achieved, reducing operational risks.

CN222859223UActive Publication Date: 2025-05-13IAT AUTOMOBILE TECH
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Patent Information

Application Number
CN202421969562.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-05-13
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

The existing central control screen cannot be adjusted after installation, resulting in limited viewing angle of the driver and increasing the risk of accidents during operation; while the electric-adjusted central control screen is complex in structure, high in cost, and low reliability of electronic components.

Method used

A manually rotatable central control screen structure is designed, and the central control screen is fixed on the instrument panel tube beam bracket by rotating pins, so that it can rotate left and right, and provide force limiting through the damper, so that the screen remains in a fixed position when it is lower than a certain force.

Benefits of technology

The manual rotation of the central control screen is realized, adapting to the observation needs of different drivers, reducing the risk of accidents during operation, and avoiding the high cost and low reliability problems of complex electronic control structures.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a central control screen structure capable of rotating manually, and relates to the technical field of automobile design and manufacturing. The central control screen structure capable of rotating manually comprises a central control screen, a screen support, a damper, a swing rod, a first tubular beam metal plate support, an instrument board body, a screen rear shell, a second tubular beam metal plate support and an auxiliary telescopic rod. According to the utility model, the central control screen is fixed on the instrument panel tubular beam bracket through the rotating pin shaft, so that the central control screen can rotate leftwards and rightwards, and the screen is kept fixed under the condition that the acting force value is lower than a certain value through the force limiting effect of the damper.
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Description

Technical Field

[0001] The utility model relates to the technical field of automobile design and manufacture, and more specifically, to a central control screen structure that can be rotated manually. Background Art

[0002] In the prior art, there are two types of central control screens. One type is usually fixed on the dashboard and cannot be adjusted after installation. The other type can slide or rotate through an electrically controlled mechanical structure. The fixed central control screen cannot be moved after installation, and the driver's viewing angle is limited. During driving, operating the central control screen will increase the possibility of causing traffic accidents. The electrically adjustable type has a complex structure, high cost, and the reliability of electronic components is lower than that of pure mechanical structures. Utility Model Content

[0003] In order to solve the above-mentioned technical problems existing in the prior art, the purpose of the utility model is to provide a central control screen structure that can be rotated manually.

[0004] The manually rotatable central control screen structure of the utility model comprises a central control screen, a screen bracket, a damper, a swing rod, a first tube beam sheet metal bracket, an instrument panel body, a screen rear shell, a second tube beam sheet metal bracket and an auxiliary telescopic rod;

[0005] The central control screen is fixed on the screen bracket, one side of the screen bracket is connected to the second tube beam sheet metal bracket through a first pin shaft, the other side of the screen bracket is connected to the auxiliary telescopic rod through the swing rod, the screen bracket is connected to the swing rod through a fourth shaft pin, and the swing rod is connected to the auxiliary telescopic rod through a third shaft pin;

[0006] The first tube beam sheet metal bracket and the second tube beam sheet metal bracket are fixed on the instrument panel tube beam, the auxiliary telescopic rod is arranged in the telescopic rod bracket, and the auxiliary telescopic rod can slide forward and backward along the telescopic rod bracket, and the telescopic rod bracket is fixed on the first tube beam sheet metal bracket;

[0007] One end of the damper is connected to the auxiliary telescopic rod through a second pin shaft, and the other end of the damper is fixedly connected to the first tube beam sheet metal bracket;

[0008] The telescopic rod bracket is fixed on the first tube beam sheet metal bracket; the screen rear shell is clamped on the instrument panel body.

[0009] Among them, it also includes an upper front shell and a lower front shell. The lower front shell is fixed on the screen bracket. The upper front shell and the lower front shell constitute the front shell. The front shell is gap-matched with the rear shell.

[0010] Wherein, the auxiliary telescopic rod is inserted into the connecting hole of the telescopic rod bracket, and the auxiliary telescopic rod can slide back and forth in the connecting hole along the axis of the connecting hole.

[0011] Among them, the auxiliary telescopic rod is provided with a limiting slide groove along its length direction, and a positioning pin is installed at a position of the telescopic rod bracket corresponding to the limiting slide groove. The positioning pin penetrates into the limiting slide groove, and the relative displacement stroke of the auxiliary telescopic rod is limited by the length of the limiting slide groove.

[0012] Wherein, the telescopic rod bracket is fixed to the positioning pin by means of bolts.

[0013] Wherein, the central control screen is fixed to the screen bracket by bolts.

[0014] Wherein, the telescopic rod bracket is fixed to the first tube beam sheet metal bracket by bolts.

[0015] Wherein, the first tube beam sheet metal bracket and the second tube beam sheet metal bracket are welded to the instrument panel tube beam.

[0016] Wherein, the other end of the damper is fixedly connected to the first tube beam sheet metal bracket by bolts.

[0017] Wherein, the damper is a bidirectional damper.

[0018] Compared with the prior art, the manually rotatable central control screen structure of the utility model has the following beneficial effects:

[0019] The utility model fixes the central control screen on the instrument panel tube beam bracket through a rotating pin shaft, so that the central control screen can be rotated left and right, and through the force limiting effect of the damper, the screen can keep a fixed position under a force value below a certain value. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is an exploded structural diagram of the manually rotatable central control screen structure of Example 1;

[0021] Figure 2 This is an assembly structure diagram of the manually rotatable central control screen structure of Example 1;

[0022] Figure 3 for Figure 2 A schematic diagram of the enlarged structure of the circled portion A;

[0023] Figure 4 A top view of the manually rotatable central control screen structure of Example 1;

[0024] Figure 5 for Figure 4 Schematic diagram of the structure along the BB direction;

[0025] Figure 6 A top view of the manually rotatable central control screen structure of Example 1;

[0026] Figure 7 for Figure 6 Cross-sectional structural diagram along CC direction;

[0027] Figure 8 for Figure 6 Cross-sectional structural diagram along DD direction;

[0028] Fig. 9 for Figure 6 Cross-sectional structural diagram along the EE direction. DETAILED DESCRIPTION

[0029] The manually rotatable central control screen structure of the utility model will be further explained below in combination with specific embodiments to help technicians in this field have a more complete, accurate and in-depth understanding of the technical solution of the utility model.

[0030] Example 1

[0031] like Figure 1-9As shown, the manually rotatable central control screen structure of this embodiment includes a central control screen 2, a screen bracket 3, a front lower housing 4 of the screen, a damper 5, a swing rod 6, a first tube beam sheet metal bracket 7, an instrument panel body 9, a screen rear housing 12, a second tube beam sheet metal bracket 13 and an auxiliary telescopic rod 8. The central control screen 2 is fixed to the screen bracket 3 by bolts, one side of the screen bracket 3 is connected to the second tube beam sheet metal bracket 13 by a first pin 34, and the screen bracket 3 can rotate around the axis of the first pin 34. The other side of the screen bracket 3 is connected to the auxiliary telescopic rod 8 by the swing rod 6. The screen bracket 3 is connected to the swing rod 6 by a fourth shaft pin 31. The swing rod 6 is connected to the auxiliary telescopic rod 8 by a third shaft pin 32. The first tube beam sheet metal bracket 7 and the second tube beam sheet metal bracket 13 are welded to the instrument panel tube beam 10. The auxiliary telescopic rod 8 is arranged in the telescopic rod bracket 11, and the auxiliary telescopic rod 8 can slide forward and backward along the telescopic rod bracket 11, and the telescopic rod bracket 11 is fixed on the first tube beam sheet metal bracket 7. Specifically, the auxiliary telescopic rod 8 is inserted into the connection hole 111 of the telescopic rod bracket 11, and the auxiliary telescopic rod 8 can slide back and forth along the axis of the connection hole 111 in the connection hole 111. The auxiliary telescopic rod 8 can play a role in reinforcing the stability of screen installation and limiting the rotation angle of the screen. One end of the damper 5 is connected to the auxiliary telescopic rod 8 through the second pin 33, and the other end of the damper 5 is fixedly connected to the first tube beam sheet metal bracket 7 through the first bolt 24. The damper 5 is a bidirectional damper, and a hydraulic damper or an air damper can be used. When the force value exceeds the initial force limit value of the damper, the damper can reciprocate forward and backward. When it is necessary to push the screen 2 to rotate around the first pin 34, the screen 2 can only move when the force on the screen exceeds the initial force limit of the damper 5. The damper can provide a certain damping force to make the screen rotate more smoothly. The auxiliary telescopic rod 8 is provided with a limited slide groove 83 along its length direction, and the position of the telescopic rod bracket 11 corresponding to the limited slide groove 83 is installed with a positioning pin 14, and the positioning pin 14 is deeply inserted into the limited slide groove 83, and the relative displacement stroke of the auxiliary telescopic rod 8 is limited by the length of the limited slide groove 83. The telescopic rod bracket 11 fixes the positioning pin 14 through the third bolt 22. The telescopic rod bracket 11 is fixed to the first tube beam sheet metal bracket 7 through two second bolts 23. The screen rear shell 12 is clamped on the instrument panel body 9. The screen front lower shell 4 is fixed to the screen bracket 3 by screws 41. The screen front upper shell 1 and the screen front lower shell 4 constitute the screen front shell, and the screen front shell and the screen rear shell 12 are gap-matched. The screen front shell and the screen rear shell 12 together wrap the internal structure, which plays a role in shielding the internal structure and beautifying the appearance.

[0032] When the edge of the central control screen 2 is manually pressed to adjust the central control screen 2 left and right along the width direction of the vehicle, the screen 2 rotates left and right around the axis of the first pin shaft 34. At the same time, the screen bracket 3 drags the rocker bar 6, and the rocker bar 6 pulls the auxiliary telescopic rod 8 to move forward and backward in the connecting hole 111 of the telescopic rod bracket 11 along the length direction of the vehicle. The auxiliary telescopic rod 8 serves to limit the rotation angle of the central control screen 2 and improve the stability of the screen installation. The damper 5 connected to the auxiliary telescopic rod 8 is pulled forward and backward at the same time. The damper 5 will only be pulled and retracted when the pressing force when adjusting the screen 2 exceeds the initial limit force of the damper 5. When it is lower than the limit force of the damper 5, the damping force of the damper 5 will prevent the screen 2 from moving.

[0033] When the driver needs to adjust the screen angle according to his needs, he can manually press the edge of the screen to rotate the screen to the required angle. When the force on the screen is removed, the screen remains in the current position under the damping force of the damper. At the same time, the screen has only one direction of movement, that is, it rotates along the rotation axis in the up and down direction of the vehicle body, which prevents the screen from turning upside down due to gravity inertia when the vehicle passes through potholes.

[0034] For ordinary technicians in this field, the specific embodiments are only illustrative descriptions of the utility model. It is obvious that the specific implementation of the utility model is not limited to the above-mentioned methods. As long as various non-substantial improvements are made using the method concept and technical solution of the utility model, they are all within the protection scope of the utility model.

Claims

1. A manually rotatable central control screen structure, characterized in that: It includes the central control screen, screen bracket, damper, sway bar, first tube beam sheet metal bracket, instrument panel body, screen rear shell, second tube beam sheet metal bracket and auxiliary telescopic rod; The central control screen is fixed on the screen bracket, one side of the screen bracket is connected to the second tube beam sheet metal bracket through a first pin shaft, the other side of the screen bracket is connected to the auxiliary telescopic rod through the swing rod, the screen bracket is connected to the swing rod through a fourth shaft pin, and the swing rod is connected to the auxiliary telescopic rod through a third shaft pin; The first tube beam sheet metal bracket and the second tube beam sheet metal bracket are fixed on the instrument panel tube beam, the auxiliary telescopic rod is arranged in the telescopic rod bracket, and the auxiliary telescopic rod can slide forward and backward along the telescopic rod bracket, and the telescopic rod bracket is fixed on the first tube beam sheet metal bracket; One end of the damper is connected to the auxiliary telescopic rod through a second pin shaft, and the other end of the damper is fixedly connected to the first tube beam sheet metal bracket; The telescopic rod bracket is fixed on the first tube beam sheet metal bracket; the screen rear shell is clamped on the instrument panel body.

2. The manually rotatable central control screen structure according to claim 1, characterized in that: It also includes an upper front shell and a lower front shell. The lower front shell is fixed on the screen bracket. The upper front shell and the lower front shell form a front shell. The front shell is gap-matched with the rear shell.

3. The manually rotatable central control screen structure according to claim 1 or 2, characterized in that: The auxiliary telescopic rod is inserted into the connecting hole of the telescopic rod bracket, and the auxiliary telescopic rod can slide back and forth in the connecting hole along the axis of the connecting hole.

4. The manually rotatable central control screen structure according to claim 3 is characterized in that: The auxiliary telescopic rod is provided with a limiting slide groove along its length direction, and a positioning pin is installed at a position of the telescopic rod bracket corresponding to the limiting slide groove. The positioning pin penetrates into the limiting slide groove, and the relative displacement stroke of the auxiliary telescopic rod is limited by the length of the limiting slide groove.

5. The manually rotatable central control screen structure according to claim 4, characterized in that: The telescopic rod bracket is fixed to the positioning pin by means of bolts.

6. The manually rotatable central control screen structure according to claim 1, characterized in that: The central control screen is fixed to the screen bracket by bolts.

7. The manually rotatable central control screen structure according to claim 1, characterized in that: The telescopic rod bracket is fixed to the first tube beam sheet metal bracket by bolts.

8. The manually rotatable central control screen structure according to claim 1, characterized in that: The first tube beam sheet metal bracket and the second tube beam sheet metal bracket are welded to the instrument panel tube beam.

9. The manually rotatable central control screen structure according to claim 1, characterized in that: The other end of the damper is fixedly connected to the first tube beam sheet metal bracket by bolts.

10. The manually rotatable central control screen structure according to claim 1, characterized in that: The damper is a bidirectional damper.

Citation Information

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