Honeycomb blind control device

By using a roller assembly that rotates and connects to the inner wall of the window frame in the honeycomb blind control device, and by having the pull cord wrapped around the edge of the window frame and connected to the handle, the problem of frictional resistance caused by sharp bends in the pull cord is solved, achieving smooth operation and reducing maintenance costs.

CN121451827APending Publication Date: 2026-02-03FUJIAN GUOHUA TECH HLDG CO LTD
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Patent Information

Application Number
CN202511830977.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-06
Publication Date
2026-02-03

AI Technical Summary

Technical Problem

In existing honeycomb blind control devices, the pull rope makes a sharp bend at the narrow movable hole of the sliding part, generating huge frictional resistance, resulting in a heavy and unsmooth operating feel.

Method used

The roller assembly is rotatably connected to the inner wall of the window frame, and the pull rope is wound around the edge of the window frame and connected to the pull rope handle. This avoids the pull rope from passing through narrow holes and making sharp turns. Combined with the movable cavity design, it ensures that the pull rope slides on the predetermined path.

Benefits of technology

It reduces frictional resistance when pulling the rope handle, improves operational smoothness and user experience, lowers maintenance costs, and increases repair efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of curtain control, and provides a honeycomb curtain control device which is installed on a window frame and comprises two sets of sliding components, a folding part, a fixing part and a pull rope handle, and the two sliding components are installed on the inner side walls of the two opposite sides of the window frame correspondingly; the two sliding components are arranged to be the left sliding component and the right sliding component respectively, the left sliding component is provided with a first pull rope and a second pull rope, and the first pull rope is wound around the edge of the window frame and connected with the right side of the pull rope handle. The second pull rope is wound around the edge of the window frame and connected with the left side of the pull rope handle. The right sliding part is provided with a third pull rope and a fourth pull rope, and the third pull rope and the fourth pull rope are connected with the pull rope handle according to the symmetrical path of the first pull rope and the second pull rope of the left sliding part. According to the honeycomb blind control device, the frictional resistance for pulling the pull rope handle is reduced.
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Description

Technical Field

[0001] This application relates to the field of curtain control, and in particular to a honeycomb curtain control device. Background Technology

[0002] In the field of architectural decoration, window shading devices have always been an important component. They not only regulate indoor light intensity but also provide insulation and heat preservation to a certain extent, enhancing living comfort. As people's demands for quality of life continue to rise, honeycomb blinds, with their unique honeycomb structure and excellent heat insulation, sound insulation, and light-blocking properties, have gradually become a popular window shading product on the market.

[0003] In existing manual honeycomb blind control devices, the following structure is typically used to realize the unfolding and retraction of the folding part: including a pull cord handle, a folding part, a fixing part, and a sliding part; the pull cord handle is slidably installed on one side of the window frame, the fixing part is fixed to one end of the window frame near the pull cord handle, the folding part is connected between the fixing part and the sliding part, and the sliding part is slidably installed on the window frame.

[0004] To achieve bidirectional control, a first pull rope and a second pull rope are provided on the left side of the sliding part. The first pull rope must first pass through the movable hole in the middle of the sliding part, and after being wound in the opposite direction, it is connected to the left side of the pull rope handle; the second pull rope is directly wound in the opposite direction and then connected to the right side of the pull rope handle; on the right side of the sliding part, the pull ropes are connected in a symmetrical path.

[0005] However, because the first pull cord must pass through the narrow movable hole in the middle of the sliding part and complete the reverse winding, the pull cord makes a sharp bend at the opening, generating huge frictional resistance. This makes the operation feel heavy and unsmooth, affecting the user experience. Therefore, a honeycomb blind that reduces the resistance when pulling the pull cord handle is needed. Summary of the Invention

[0006] To reduce resistance when pulling the pull cord handle, this application provides a honeycomb curtain control device.

[0007] The honeycomb curtain control device provided in this application adopts the following technical solution: A honeycomb blind control device, installed on a window frame, includes a sliding assembly, a folding part, a fixing part, and a pull cord handle. The pull cord handle and the fixing part are both located on the same side of the window frame, and the pull cord handle is slidably connected to the window frame. The sliding assembly includes a connecting part, a connecting portion, and sliding components. The two ends of the folding part are respectively connected to the connecting portion and the fixing part. Two sets of sliding components are provided, and the connecting part is used to connect the two sets of sliding components to the two ends of the connecting portion respectively. The two sliding components are respectively installed on the inner sidewalls of opposite sides of the window frame. The sliding component is equipped with a roller assembly for rotatably connecting with the inner wall of the window frame. The two sliding components are respectively configured as a left sliding component and a right sliding component. The left sliding component is equipped with a first pull rope and a second pull rope. The first pull rope is wrapped around the edge of the window frame and connected to the right side of the pull rope handle. The second pull rope is wrapped around the edge of the window frame and connected to the left side of the pull rope handle. The right sliding component is equipped with a third pull rope and a fourth pull rope. The third pull rope and the fourth pull rope are connected to the pull rope handle along a symmetrical path to the first pull rope and the second pull rope of the left sliding component.

[0008] By adopting the above technical solution, the roller assembly is rotatably connected to the inner wall of the window frame, which can reduce the frictional resistance between the sliding part and the window frame; the first pull rope is wrapped around the edge of the window frame and connected to the right side of the pull rope handle, and the second pull rope is wrapped around the edge of the window frame and connected to the left side of the pull rope handle, which can realize the unfolding and folding of the folding part by pulling the pull rope handle; it avoids the huge frictional resistance generated by the pull rope passing through the narrow movement hole and sharp bend, increases the smoothness of pulling the pull rope handle, and improves the operating experience.

[0009] Optionally, the left sliding component is rotatably mounted with two connecting rollers, and there is a gap between the two connecting rollers and the sliding part to form a movable cavity; one end of the first pull rope and the second pull rope are respectively connected to the two connecting rollers.

[0010] By adopting the above technical solution, the pull rope passes through the movable cavity as it wraps around the edge of the window frame, ensuring that the pull rope is on the predetermined path, thereby avoiding direct contact and interference friction with the edge of the window frame, and further reducing the frictional resistance of pulling the pull rope handle.

[0011] Optionally, the roller assembly includes a plurality of first rollers and a plurality of second rollers, all of which are rotatably mounted on the sliding part. The outer peripheral surfaces of the first rollers and the second rollers abut against the inner wall of the window frame, and the outer peripheral surfaces of the first rollers are perpendicular to the outer peripheral surfaces of the second rollers.

[0012] By adopting the above technical solution, one set of rollers rolls close to the inner plane of the window frame to prevent the sliding component from wobbling back and forth; while the other set of rollers facilitates the vertical movement of the sliding component, reducing the frictional resistance of the vertical movement of the sliding component, thereby reducing the frictional resistance of the user pulling the rope handle.

[0013] Optionally, the connecting component includes a connecting rod, the connecting part has a movable hole, and the connecting rod passes through the movable hole; both the left sliding component and the right sliding component have mounting grooves for inserting the connecting rod.

[0014] By adopting the above technical solution, before one side of the window frame is assembled, the connecting rod is inserted into the movable hole of the sliding part, and the mounting slots of the left and right sliding parts are plugged into the connecting rod. Then, the openings on one side of the left and right sliding parts are inserted into the two inner sidewalls opposite to the window frame, thereby realizing the connection between the connecting part and the / right sliding part. This installation method is relatively simple and has the effect of reducing costs.

[0015] Optionally, the connecting component includes two plug rods and two first springs. Both ends of the connecting part are provided with movable slots. The plug rods are movably installed in the movable slots. The left / right sliding component is provided with a first plug slot for the plug rods to be inserted into. The first springs are installed in the connecting part, and the elastic force of the first springs is used to drive the plug rods to move toward the side away from the mounting slots.

[0016] By adopting the above technical solution, the left and right sliding parts can be pre-assembled in the two inner sidewalls of the window frame. Then, the two movable slots of the connecting part are aligned with the first insertion slots of the left and right sliding parts, respectively. Then, the position of the sliding insertion rod drives the end of the insertion rod to engage with the first spring. This installation method allows the connecting part to be disassembled and assembled with the left and right sliding parts while the window frame is intact, so as to facilitate the maintenance of the connecting part and the folding part.

[0017] Optionally, the left sliding component includes a mounting part and a disassembly part mounted on both sides of the mounting part, and the first pull rope and the second pull rope are both mounted on the mounting part; the roller assembly is provided in two sets, and the two sets of roller assemblies are respectively mounted on the two disassembly parts; a slider is provided on one side of the disassembly part, and the mounting part has a groove for the slider to be inserted; the sliding part is provided with a fixing component, which is used to fix the disassembly part and the sliding part.

[0018] By adopting the above technical solution, the left sliding component is installed separately and then disassembled into two parts, allowing the sliding component to be removed for inspection while the window frame is intact; this improves inspection efficiency and reduces maintenance costs.

[0019] Optionally, the fixing component includes a driving component, a rotating disk, and two connecting rods. The mounting part has a first rotating groove, and the rotating disk is rotatably mounted in the first rotating groove. The inner wall of the first rotating groove has a first connecting groove communicating with a sliding groove, and the connecting rod is movably mounted in the first connecting groove. The disassembly part has a second connecting groove for the connecting rod to be inserted. A sliding groove is provided on one side of the rotating disk, and the end of the sliding groove away from the axis of the rotating disk is arc-shaped. A sliding block is slidably mounted in the sliding groove, and one end of the insertion rod is rotatably connected to the sliding block. When the plug rod is engaged with the first plug slot, the driving component is used to drive the plug rod to engage with the second connecting slot; when the plug rod is disengaged from the first plug slot, the driving component is used to drive the plug rod to disengage from the second connecting slot.

[0020] By adopting the above technical solution, the arc-shaped sliding groove on the rotating disk is used to push the sliding block to generate radial displacement when rotating, thereby driving the two connecting rods to smoothly and synchronously insert or withdraw from the second connecting groove of the disassembly part.

[0021] Optionally, the driving component includes a rotating sleeve and a second spring. The rotating disk has a second insertion groove that engages with the first insertion groove. The rotating sleeve is movably installed in the first and second insertion grooves. A rotating block is provided on the outer wall of the rotating sleeve. A second rotating groove is provided on the inner wall of the second insertion groove for the rotating block to slide. The second rotating groove extends around the inner peripheral wall of the second insertion groove. One end of the insertion rod engages with the rotating sleeve. The second spring is installed in the mounting part, and the elastic force of the second spring is used to drive the rotating sleeve to move toward the side away from the second insertion groove.

[0022] By adopting the above technical solution, when the end of the plug rod enters the rotating sleeve and is plugged into it, the rotating sleeve can overcome the elastic force of the second spring and move towards one side of the second rotating groove. At this time, the rotating block and the second rotating groove cooperate to make the rotating disk rotate, thereby causing the connecting rod to extend and be plugged into the second connecting groove.

[0023] When the connecting rod disengages from the insertion slot, the rotating sleeve moves towards the side of the first insertion slot under the force of the second spring; simultaneously, the rotating block, engaged with the second rotating slot, drives the rotating disk to rotate in the opposite direction, causing the connecting rod to disengage from the second connecting slot. Optionally, one end of the disassembly part is provided with a pull ring, and when the first connecting groove and the second connecting groove are aligned, the pull ring abuts against one side of the mounting part.

[0024] By adopting the above technical solution, it is easy for workers to pull the disassembly part to disengage it from the slot.

[0025] Optionally, a first magnetic sheet is provided on the inner wall of the slide groove, and a second magnetic sheet is provided on the disassembly part; when the first connecting groove and the second connecting groove are arranged opposite each other, the first magnetic sheet and the second magnetic sheet cooperate.

[0026] By adopting the above technical solution, the disassembly part and the installation part are temporarily fixed, which facilitates the misalignment of the first connecting groove and the second connecting groove when the plug rod is not plugged into the first plug groove.

[0027] Optionally, a guide groove communicating with the slide groove is provided on one side of the mounting part, and the inner diameter of the guide groove on the side away from the slide groove is larger than the inner diameter of the guide groove on the side closer to the slide groove.

[0028] By adopting the above technical solution, the slider and the groove can be inserted and matched, thereby improving the installation efficiency.

[0029] In summary, this application includes at least one of the following beneficial technical effects: 1. The first pull cord is wrapped around the edge of the window frame and connected to the right side of the pull cord handle. The second pull cord is wrapped around the edge of the window frame and connected to the left side of the pull cord handle. The folding part can be unfolded and folded by pulling the pull cord handle. The pull cord passes through the movable cavity as it wraps around the edge of the window frame, ensuring that the pull cord is on the predetermined path. This avoids the huge frictional resistance caused by the pull cord passing through the narrow movable hole and making sharp turns, and increases the smoothness of pulling the pull cord handle. 2. The left sliding component is divided into an installation part and two disassembly parts, which allows the sliding component to be disassembled and inspected while the window frame is intact, improving inspection efficiency and reducing maintenance costs. Attached Figure Description

[0030] Figure 1 This is a partial cross-sectional view of Embodiment 1; Figure 2 This is a structural schematic diagram of the window frame in Example 1; Figure 3 yes Figure 1 A magnified view of a portion at point A; Figure 4 This is a partial cross-sectional view of the connecting part in Embodiment 1; Figure 5 This is a schematic diagram of the sliding component; Figure 6 This is a partial cross-sectional view of the connection portion in Embodiment 2; Figure 7 This is a schematic diagram of the sliding component in Example 3; Figure 8 This is a schematic diagram of the fixing component in Embodiment 3; Figure 9 This is a partial sectional view of the mounting section in Embodiment 3.

[0031] Explanation of reference numerals in the attached drawings: 1. Window frame; 11. Curved part; 12. Straight part; 13. Reversing roller; 2. Folding part; 3. Fixing part; 4. Pull rope handle; 5. Left sliding assembly; 51. Connecting roller; 6. Connecting component; 61. Insertion rod; 62. First spring; 7. Connecting part; 71. Movable hole; 72. Movable groove; 73. Unlocking groove; 74. Unlocking piece; 8. Sliding component; 81. Mounting groove; 82. Roller assembly; 821. First roller; 822. Second roller; 83. First pull rope; 84. Second pull rope; 8 5. Third pull rope; 86. Fourth pull rope; 87. First insertion groove; 88. Mounting part; 881. Slide groove; 882. Guide groove; 883. First rotating groove; 884. First connecting groove; 89. Disassembly part; 891. Slider; 892. Second connecting groove; 893. Pull ring; 9. Fixing assembly; 91. Driving component; 911. Rotating sleeve; 912. Second spring; 92. Rotating disk; 921. Sliding groove; 922. Sliding block; 923. Second insertion groove; 924. Second rotating groove; 93. Connecting rod. Detailed Implementation

[0032] The following is in conjunction with the appendix Figure 1-9 This application will be described in further detail.

[0033] Example 1: This application discloses a honeycomb curtain control device.

[0034] Reference Figure 1 and Figure 2 A honeycomb blind control device is installed on a window frame 1, including a sliding assembly, a folding part 2, a fixing part 3, and a pull rope handle 4. In this embodiment, the window frame 1 is set as an arc-shaped window frame 1, that is, the window frame 1 includes two arc-shaped parts 11 and two straight parts 12, and the two straight parts 12 are used to connect the ends of the two arc-shaped parts 11. The window frame 1 has four corners, and a reversing roller 13 is provided at the corners. In this embodiment, the two straight parts 12 are located on the upper and lower sides of the window frame 1, and the two arc-shaped parts 11 are located on the left and right sides of the window frame 1.

[0035] Among them, reference Figure 1 The fixing part 3 and the pull rope handle 4 are installed on one of the straight parts 12. The fixing part 3 is connected to the straight part 12 by bolts. The pull rope handle 4 is slidably connected to the sliding part, so that the pull rope handle 4 can slide along the window frame 1, which facilitates the opening and closing of the honeycomb curtain.

[0036] Reference Figure 2 and Figure 3The sliding assembly includes a connecting part 6, a connecting part 7, and a sliding part 8. The two ends of the folding part 2 are connected to the connecting part 7 and the fixing part 3 respectively, so that the folding part 2 can be unfolded and folded between the connecting part 7 and the fixing part 3. Two sets of sliding parts 8 are provided. The connecting part 6 is used to connect the two sets of sliding parts to the two ends of the connecting part 7 respectively. The two sets of sliding parts 8 are respectively set as left sliding part 8 and right sliding part 8. The two sliding parts 8 are respectively installed on the inner sidewalls of the two arc-shaped parts 11, realizing the stable sliding of the two ends of the connecting part 7 in the two arc-shaped parts 11.

[0037] Reference Figure 4 In this embodiment, the connecting component 6 includes a connecting rod 93, and the connecting part 7 has a movable hole 71 through which the connecting rod 93 passes. Both the left sliding component 8 and the right sliding component 8 have mounting slots 81 for the connecting rod 93 to be inserted. The connecting part 7 is connected to the left and right sliding components 8 via the connecting rod 93, allowing for installation even when one side of the window frame 1 is not assembled. The insertion and engagement of the connecting rod 93 with the mounting slots 81 enables rapid installation. This connection method has a simple structure, reduces the number of components, lowers costs, and is suitable for scenarios with high requirements for ease of installation and low requirements for subsequent maintenance.

[0038] Reference Figure 3 The left sliding component 8 is provided with two sets of roller groups 82, which are respectively arranged on opposite sides of the left sliding component 8. The roller group 82 includes multiple first rollers 821 and multiple second rollers 822. All first rollers 821 and second rollers 822 are rotatably mounted on the sliding part. The outer peripheral surfaces of the first rollers 821 and second rollers 822 abut against the inner wall of the window frame 1, and the outer peripheral surfaces of the first rollers 821 are perpendicular to the outer peripheral surfaces of the second rollers 822.

[0039] The first roller 821 is mounted on the sliding part by a bearing. The first roller 821 is made of stainless steel and its outer circumference is smooth, which can reduce the friction between the first roller 821 and the inner wall of the arc-shaped part 11. The second roller 822 is also made of stainless steel and is also mounted by a bearing.

[0040] The first roller 821 rolls close to the inner plane of the window frame 1 to prevent the sliding component 8 from wobbling back and forth, while the second roller 822 facilitates the vertical movement of the sliding component 8, reducing the frictional resistance of the vertical movement of the sliding component 8, thereby reducing the frictional resistance of the user pulling the pull rope handle 4.

[0041] Reference Figure 2 , Figure 3 and Figure 5The left sliding component 8 is provided with a first pull rope 83 and a second pull rope 84. Two connecting rollers 51 are rotatably mounted on the left sliding component 8. There is a gap between the two connecting rollers 51 and the sliding part, forming a movable cavity. One end of the first pull rope 83 and the second pull rope 84 are respectively connected to the two connecting rollers 51. The pull rope is generally made of high-strength nylon rope, which has the characteristics of high strength and good flexibility. The first pull rope 83 is wrapped around the edge of the window frame 1 and connected to the right side of the pull rope handle 4. The second pull rope 84 is wrapped around the edge of the window frame 1 and connected to the left side of the pull rope handle 4. When the first pull rope 83 and the second pull rope 84 pass through the corner, they will abut against the outer wall of the reversing roller 13, which can reduce the friction of the pull rope moving inside the window frame 1.

[0042] Taking the left sliding component 8 as an example, the structure of the right sliding component 8 is the same as that of the right sliding component 8, so it will not be described in detail here; the right sliding component 8 is provided with a third pull rope 85 and a fourth pull rope 86, and the third pull rope 85 and the fourth pull rope 86 are connected to the pull rope handle 4 via a symmetrical path of the first pull rope 83 and the second pull rope 84 of the left sliding part.

[0043] The implementation principle of Embodiment 1 of this application is as follows: The first pull cord 83 is wrapped around the edge of the window frame 1 and connected to the right side of the pull cord handle 4. The second pull cord 84 is wrapped around the edge of the window frame 1 and connected to the left side of the pull cord handle 4. The folding part 2 can be unfolded and folded by pulling the pull cord handle 4. This avoids the huge frictional resistance caused by the pull cord passing through the narrow movable hole 71 and making sharp turns, increases the smoothness of pulling the pull cord handle 4, and improves the operating experience.

[0044] Example 2: This application discloses a honeycomb curtain control device.

[0045] Reference Figure 6 The difference between Embodiment 2 and Embodiment 1 is that the connecting component 6 includes two plug rods 61 and two first springs 62. Both ends of the connecting part 7 are provided with movable grooves 72. The plug rods 61 are movably installed in the movable grooves 72. The left / right sliding component 8 is provided with a first plug groove 87 for the plug rods 61 to be inserted.

[0046] The connecting part 7 has an unlocking groove 73 that communicates with the movable groove 72. The outer wall of the connecting part 7 abuts against the unlocking piece 74. An unlocking rod is slidably installed in the unlocking groove 73. The two ends of the unlocking rod are connected to the unlocking piece 74 and the plug rod 61, respectively. The first spring 62 is installed on the inner wall of the movable groove 72 and the plug rod 61. The elastic force of the first spring 62 is used to drive the plug rod 61 to move toward the side away from the mounting groove 81.

[0047] Example 3: This application discloses a honeycomb curtain control device.

[0048] Reference Figure 7 The difference between Embodiment 3 and Embodiment 3 is that: the left sliding component 8 includes a mounting part 88 and a disassembly part 89 mounted on both sides of the mounting part 88; the first pull rope 83 and the second pull rope 84 are both mounted on the mounting part 88; two sets of roller groups 82 are respectively mounted on the two sets of disassembly parts 89; a slider 891 is provided on one side of the disassembly part 89; the mounting part 88 is provided with a groove 881 for the slider 891 to be inserted; the sliding part is provided with a fixing component 9, which is used to fix the disassembly part 89 to the sliding part.

[0049] Reference Figure 7 The mounting section 88 has a guide groove 882 on one side that communicates with the slide groove 881. The inner diameter of the guide groove 882 on the side away from the slide groove 881 is larger than the inner diameter of the guide groove 882 on the side closer to the slide groove 881. The design of the guide groove 882 can guide the slider 891 to engage with the slide groove 881, thereby improving installation efficiency.

[0050] Reference Figure 8 and Figure 9 The fixed component 9 includes a drive component 91, a rotating disk 92, and two connecting rods 93. The mounting part 88 has a first rotating groove 883, and the rotating disk 92 is rotatably installed in the first rotating groove 883. The rotating disk 92 is generally made of aluminum alloy, which is lightweight and easy to process. A sliding groove 921 is provided on one side of the rotating disk 92. The end of the sliding groove 921 away from the axis of the rotating disk 92 is arc-shaped, and a sliding block 922 is slidably installed in the sliding groove 921.

[0051] Reference Figure 8 The inner wall of the first rotating groove 883 is provided with a first connecting groove 884 that communicates with the sliding groove 881. The connecting rod 93 is movably installed in the first connecting groove 884, and one end of the connecting rod 93 is rotatably connected to the sliding block 922. The disassembly part 89 is provided with a second connecting groove 892, and the other end of the connecting rod 93 is inserted into the second connecting groove 892.

[0052] Reference Figure 9 The driving component 91 includes a rotating sleeve 911 and a second spring 912. The rotating disk 92 has a second insertion groove 923 that engages with the first insertion groove 87. The rotating sleeve 911 is movably installed in the first insertion groove 87 and the second insertion groove 923. A rotating block is provided on the outer wall of the rotating sleeve 911. A second rotating groove 924 is provided on the inner wall of the second insertion groove 923 for the rotating block to slide. The second rotating groove 924 extends around the inner peripheral wall of the second insertion groove 923. The second spring 912 is installed in the mounting part 88. The elastic force of the second spring 912 is used to drive the rotating sleeve 911 to move toward the side away from the second insertion groove 923.

[0053] When the end of the insertion rod 61 enters the rotating sleeve 911, the rotating sleeve 911 is driven to move toward one side of the second rotating groove 924. At this time, the rotating block cooperates with the second rotating groove 924 to drive the rotating disk 92 to rotate, thereby causing the connecting rod 93 to extend and engage with the second connecting groove 892. When the insertion rod 61 disengages from the insertion groove, the rotating sleeve 911 moves toward one side of the first insertion groove 87 under the elastic force of the second spring 912; at the same time, under the engagement of the rotating block and the second rotating groove 924, the rotating disk 92 is driven to rotate in the opposite direction, causing the connecting rod 93 to disengage from the second connecting groove 892.

[0054] A pull ring 893 is provided at one end of the disassembly part 89. When the first connecting groove 884 and the second connecting groove 892 are aligned, the pull ring 893 abuts against one side of the mounting part 88. The pull ring 893 facilitates the operator to pull the disassembly part 89, disengaging it from the slide groove 881. When the disassembly part 89 is connected to the mounting part 88, the pull ring 893, in abutting state with the mounting part 88, restricts the slider 891 from continuing to move within the slide groove 881 and drives the first connecting groove 884 and the second connecting groove 892 to be aligned.

[0055] A first magnetic plate is provided on the inner wall of the slide groove 881, and a second magnetic plate is provided on the disassembly part 89. When the first connecting groove 884 and the second connecting groove 892 are aligned, the first and second magnetic plates engage. The first and second magnetic plates are generally made of neodymium iron boron permanent magnets, which have strong magnetism and good stability; ferrite magnets can also be used, which are relatively inexpensive. This magnetic plate engagement provides temporary fixation between the disassembly part 89 and the mounting part 88, preventing misalignment between the first connecting groove 884 and the second connecting groove 892 when the insertion rod 61 is not engaged with the first insertion groove 87.

[0056] The structure of the left sliding component 5 is the same as that of the right sliding component, so it will not be described in detail here.

[0057] The implementation principle of Embodiment 3 of this application is as follows: When the sliding component 8 needs to be inspected, the first spring 62 drives the plug rod 61 to disengage from the first plug slot 87; at this time, the fixing assembly 9 releases the fixing of the disassembly part 89 and the mounting part 88, and then the disassembly part 89 is removed from the window frame 1 by the pull ring 893, so that the mounting part 88 can be removed from the window frame 1; this structure allows the sliding component 8 to be replaced and repaired while the window frame 1 is intact, improving the convenience of disassembly and assembly.

[0058] The above are preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made to the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A honeycomb curtain control device, installed on a window frame (1), characterized in that: The window frame (1) includes a sliding assembly, a folding part (2), a fixing part (3), and a pull rope handle (4). The pull rope handle (4) and the fixing part (3) are both located on the same side of the window frame (1), and the pull rope handle (4) is slidably connected to the window frame (1). The sliding assembly includes a connecting part (6), a connecting part (7), and a sliding part (8). The two ends of the folding part (2) are respectively connected to the connecting part (7) and the fixing part (3). The sliding part (8) is provided in two sets. The connecting part (6) is used to connect the two sets of sliding parts to the two ends of the connecting part (7). The two sliding parts (8) are respectively installed on the inner sidewalls of opposite sides of the window frame (1). The sliding component (8) is provided with a roller assembly (82), which is used to rotate and connect with the inner wall of the window frame (1); the two sliding components (8) are respectively set as a left sliding component (8) and a right sliding component (8). The left sliding component (8) is provided with a first pull rope (83) and a second pull rope (84). The first pull rope (83) is wrapped around the edge of the window frame (1) and connected to the right side of the pull rope handle (4); the second pull rope (84) is wrapped around the edge of the window frame (1) and connected to the left side of the pull rope handle (4); the right sliding component (8) is provided with a third pull rope (85) and a fourth pull rope (86). The third pull rope (85) and the fourth pull rope (86) are connected to the pull rope handle (4) along a symmetrical path of the first pull rope (83) and the second pull rope (84) of the left sliding component.

2. The honeycomb curtain control device according to claim 1, characterized in that: The left sliding component (8) is rotatably mounted with two connecting rollers (51), and there is a gap between the two connecting rollers (51) and the sliding part to form a movable cavity; one end of the first pull rope (83) and the second pull rope (84) are respectively connected to the two connecting rollers (51).

3. The honeycomb curtain control device according to claim 1, characterized in that: The roller assembly (82) includes a plurality of first rollers (821) and a plurality of second rollers (822). All first rollers (821) and second rollers (822) are rotatably mounted on the left sliding component (8). The outer peripheral surfaces of the first rollers (821) and second rollers (822) abut against the inner wall of the window frame (1), and the outer peripheral surface of the first rollers (821) is perpendicular to the outer peripheral surface of the second rollers (822).

4. The honeycomb curtain control device according to claim 1, characterized in that: The connecting component (6) includes a connecting rod (93), the connecting part (7) has a movable hole (71), and the connecting rod (93) passes through the movable hole (71); the left sliding component (8) and the right sliding component (8) both have mounting grooves (81) for the connecting rod (93) to be inserted.

5. A honeycomb curtain control device according to claim 1, characterized in that: The connecting component (6) includes two plug rods (61) and two first springs (62). Both ends of the connecting part (7) are provided with movable slots (72). The plug rods (61) are movably installed in the movable slots (72). The left / right sliding component is provided with a first plug slot (87) for the plug rods (61) to be inserted. The first springs (62) are installed on the connecting part (7). The elastic force of the first springs (62) is used to drive the plug rods (61) to move toward the side away from the mounting slots (81).

6. A honeycomb curtain control device according to claim 5, characterized in that: The left sliding component (8) includes a mounting part (88) and a disassembly part (89) mounted on both sides of the mounting part (88). The first pull rope (83) and the second pull rope (84) are both mounted on the mounting part (88). The roller assembly (82) is provided in two sets, and the two sets of roller assemblies (82) are respectively mounted on the two disassembly parts (89). A slider (891) is provided on one side of the disassembly part (89), and the mounting part (88) has a groove (881) for the slider (891) to be inserted. The mounting part (88) is provided with a fixing component (9), which is used to fix the disassembly part (89) and the mounting part (88).

7. A honeycomb curtain control device according to claim 6, characterized in that: The fixing component (9) includes a driving component (91), a rotating disk (92), and two connecting rods (93). The mounting part (88) has a first rotating groove (883), and the rotating disk (92) is rotatably installed in the first rotating groove (883). The inner wall of the first rotating groove (883) has a first connecting groove (884) that communicates with the sliding groove (881). The connecting rod (93) is movably installed in the first connecting groove (884). The disassembly part (89) has a second connecting groove (892) for the connecting rod (93) to be inserted. A sliding groove (921) is provided on one side of the rotating disk (92). The end of the sliding groove (921) away from the axis of the rotating disk (92) is arc-shaped. A sliding block (922) is slidably installed in the sliding groove (921). One end of the insertion rod (61) is rotatably connected to the sliding block (922). When the plug rod (61) is plugged into the first plug slot (87), the driving component (91) is used to drive the plug rod (61) to plug into the second connecting slot (892); when the plug rod (61) is disengaged from the first plug slot (87), the driving component (91) is used to drive the plug rod (61) to disengage from the second connecting slot (892).

8. A honeycomb curtain control device according to claim 7, characterized in that: The driving component (91) includes a rotating sleeve (911) and a second spring (912). The rotating disk (92) has a second insertion groove (923) that is inserted into and cooperates with the first insertion groove (87). The rotating sleeve (911) is movably installed in the first insertion groove (87) and the second insertion groove (923). A rotating block is provided on the outer wall of the rotating sleeve (911). A second rotating groove (924) is provided on the inner wall of the second insertion groove (923) for the rotating block to slide. The second rotating groove (924) extends around the inner peripheral wall of the second insertion groove (923). One end of the insertion rod (61) is inserted into and cooperates with the rotating sleeve (911). The second spring (912) is installed on the mounting part (88). The elastic force of the second spring (912) is used to drive the rotating sleeve (911) to move toward the side away from the second insertion groove (923).

9. A honeycomb curtain control device according to claim 7, characterized in that: One end of the disassembly part (89) is provided with a pull ring (893). When the first connecting groove (884) and the second connecting groove (892) are positioned opposite each other, the pull ring (893) abuts against one side of the mounting part (88).

10. A honeycomb curtain control device according to claim 7, characterized in that: The inner wall of the slide groove (881) is provided with a first magnetic sheet, and the disassembly part (89) is provided with a second magnetic sheet; when the first connecting groove (884) and the second connecting groove (892) are arranged opposite each other, the first magnetic sheet and the second magnetic sheet cooperate.