Sliding segmented wall-controlled intelligent dimming device circuit

By using a sliding segment wall-controlled intelligent dimming device circuit, which combines a sliding switch K1 and a resistor, the problems of complexity and slow response speed of existing fan light wall-controlled dimming circuits are solved, and the brightness adjustment of the load light is made simple and efficient.

CN223885353UActive Publication Date: 2026-02-06SATELLITE ELECTRONIC (ZHONGSHAN) CO LTD
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Patent Information

Application Number
CN202520170520.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-25
Publication Date
2026-02-06
Estimated Expiration
2035-01-25

AI Technical Summary

Technical Problem

Existing wall-mounted dimming circuits for fans and lights suffer from complex circuit structures and slow response times.

Method used

The sliding segment wall-controlled intelligent dimming device circuit adopts different pin connection methods of the sliding switch K1, combined with resistors and TRIAC, to realize the brightness adjustment of the load lamp, simplifying the circuit structure and improving the response speed.

Benefits of technology

It realizes the brightness adjustment function of the load lamp, with a simple circuit structure, fast response speed, and reliable brightness adjustment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a sliding segmented wall-controlled intelligent dimming device circuit, which comprises a dimming circuit and a sliding switch K1, an output end of the dimming circuit is connected with a load lamp and is used for adjusting light brightness, a first pin and a second pin of the sliding switch K1 are in idle connection, a third pin of the sliding switch K1 is connected with one end of a resistor R4, and the other end of the resistor R4 is connected with a power supply. A fourth pin and an eighth pin of the slide switch K1 are respectively connected with a fuse F1 and a live wire, a fifth pin of the slide switch K1 is respectively connected with a first input end of the dimming circuit, a sixth pin of the slide switch K1, a tenth pin of the slide switch K1 and one end of a resistor R5, and a seventh pin of the slide switch K1 is connected with one end of a resistor R6. A ninth pin of the slide switch K1 is connected with the other end of the resistor R5, the other end of the resistor R4 and the other end of the resistor R6 are respectively connected with a second input end of the dimming circuit, different pins of the slide switch K1 are switched on by sliding and pushing the switch key KA to realize the brightness conversion function of the load lamp, and the whole circuit is simple in structure, simple, convenient and practical.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a kind of sliding subsection wall control intelligent light adjusting device circuit. BACKGROUND

[0002] In the wall control light adjusting circuit of existing fan lamp, there are the defects of complex circuit structure and slow gear shifting response speed of wall control light adjusting circuit. SUMMARY

[0003] The utility model overcomes the insufficient of prior art, provide a kind of sliding subsection wall control intelligent light adjusting device circuit.

[0004] To achieve the above object, the utility model adopts the following technical scheme:

[0005] A kind of sliding subsection wall control intelligent light adjusting device circuit, characterized by: including the light adjusting circuit of output end and load lamp connection for adjusting light brightness and sliding switch K1, sliding switch K1 It is equipped with ten pins and push key KA, push key KA can be in sliding switch K1 Pushing and sliding to make first pin, second pin respectively with third pin, fourth pin connection, or make third pin, fourth pin respectively with fifth pin, sixth pin connection, or make fifth pin, sixth pin respectively with seventh pin, eighth pin connection, or make seventh pin, eighth pin respectively with ninth pin, tenth pin connection;The first pin and the second pin of sliding switch K1 are empty, the third pin of sliding switch K1 is connected with the one end of resistance R4, the fourth pin and the eighth pin of sliding switch K1 are respectively connected with fuse F1 and live wire, the fifth pin of sliding switch K1 is respectively connected with the first input end of light adjusting circuit, the sixth pin of sliding switch K1, the tenth pin of sliding switch K1, the one end of resistance R5, the seventh pin of sliding switch K1 is connected with the one end of resistance R6, the ninth pin of sliding switch K1 is connected with the other end of resistance R5, the other end of resistance R4, the other end of resistance R6 is respectively connected with the second input end of light adjusting circuit.

[0006] As described above, a kind of sliding subsection wall control intelligent light adjusting device circuit, characterized by: light adjusting circuit includes bidirectional thyristor TRIAC, the T2 pole of bidirectional thyristor TRIAC is connected with the one end of capacitor C3, the T1 pole of bidirectional thyristor TRIAC is respectively connected with the other end of capacitor C3, the one end of capacitor C4, the G pole of bidirectional thyristor TRIAC is connected with the other end of capacitor C4 by trigger tube DB3, the T2 pole of bidirectional thyristor TRIAC is connected with the fifth pin of sliding switch K1 as the first input end of light adjusting circuit, the connection end of trigger tube DB3 and capacitor C4 is respectively connected with the other end of resistance R6, the other end of resistance R4 as the second input end of light adjusting circuit, the T1 pole of bidirectional thyristor TRIAC is connected with load lamp as output.

[0007] The sliding segmented wall control intelligent light adjusting device circuit as claimed in claim 1, characterized in that the resistance value of the resistor R4 is smaller than the resistance value of the resistor R6.

[0008] The sliding segmented wall control intelligent light adjusting device circuit as claimed in claim 1, characterized in that the first pin, the third pin, the fifth pin, the seventh pin and the ninth pin are sequentially arranged on one side of the sliding switch K1, and the second pin, the fourth pin, the sixth pin, the eighth pin and the tenth pin are sequentially arranged on the other side of the sliding switch K1.

[0009] The sliding segmented wall control intelligent light adjusting device circuit as claimed in claim 1, characterized in that the first pin, the third pin, the fifth pin, the seventh pin and the ninth pin are sequentially arranged on one side of the sliding switch K1, and the second pin, the fourth pin, the sixth pin, the eighth pin and the tenth pin are sequentially arranged on the other side of the sliding switch K1.

[0010] The sliding segmented wall control intelligent light adjusting device circuit as claimed in claim 1, characterized in that the first pin, the third pin, the fifth pin, the seventh pin and the ninth pin are sequentially arranged on one side of the sliding switch K1, and the second pin, the fourth pin, the sixth pin, the eighth pin and the tenth pin are sequentially arranged on the other side of the sliding switch K1. BRIEF DESCRIPTION OF DRAWINGS

[0011] Figure 1 The sliding segmented wall control intelligent light adjusting device circuit as claimed in claim 1, characterized in that the first pin, the third pin, the fifth pin, the seventh pin and the ninth pin are sequentially arranged on one side of the sliding switch K1, and the second pin, the fourth pin, the sixth pin, the eighth pin and the tenth pin are sequentially arranged on the other side of the sliding switch K1. DETAILED DESCRIPTION

[0012] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings.

[0013] It should be noted that all the directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the utility model are only used to explain the relative position relationship, movement condition, etc. between the components in a certain specific posture (as shown in the drawings), and if the specific posture changes, the directional indications will also change accordingly. In addition, the descriptions of "preferred", "suboptimal" and the like in the utility model are only for the purpose of description, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features with "preferred" and "suboptimal" can explicitly or implicitly include at least one of the features.

[0014] As Figure 1As shown, a sliding segmented wall control intelligent light adjusting device circuit includes a light adjusting circuit 1 and a sliding switch K1, the light adjusting circuit 1 is connected with a load lamp for adjusting the brightness of the lamp, the sliding switch K1 is provided with ten pins and a push switch key KA, the push switch key KA can push and move the sliding switch K1 to connect the first pin and the third pin, the second pin and the fourth pin, or the third pin and the fifth pin, the fourth pin and the sixth pin, or the fifth pin and the seventh pin, the sixth pin and the eighth pin, or the seventh pin and the ninth pin, the ninth pin and the tenth pin; the first pin and the second pin of the sliding switch K1 are empty, the third pin of the sliding switch K1 is connected with one end of a resistor R4, the fourth pin and the eighth pin of the sliding switch K1 are connected with a live wire respectively, the fifth pin of the sliding switch K1 is connected with the first input end of the light adjusting circuit 1, the sixth pin of the sliding switch K1, the tenth pin of the sliding switch K1 and one end of a resistor R5 respectively, the seventh pin of the sliding switch K1 is connected with one end of a resistor R6, the ninth pin of the sliding switch K1 is connected with the other end of the resistor R5, the other end of the resistor R4 and the other end of the resistor R6 are connected with the second input end of the light adjusting circuit 1 respectively. Among them, the resistance value of the resistor R4 is less than the resistance value of the resistor R6.

[0015] In the case, the light adjusting circuit 1 includes a TRIAC, the T2 pole of the TRIAC is connected with one end of a capacitor C3, the T1 pole of the TRIAC is connected with the other end of the capacitor C3 and one end of a capacitor C4 respectively, the G pole of the TRIAC is connected with the other end of the capacitor C4 through a trigger tube DB3, the T2 pole of the TRIAC is connected with the fifth pin of the sliding switch K1 as the first input end of the light adjusting circuit 1, the connection end of the trigger tube DB3 and the capacitor C4 is connected with the other end of the resistor R6 and the other end of the resistor R4 as the second input end of the light adjusting circuit 1, the T1 pole of the TRIAC is connected with the load lamp as the output.

[0016] As shown, Figure 1 When the push switch key KA of the sliding switch K1 connects the first pin and the third pin, and the second pin and the fourth pin, the sliding switch K1 is in the off gear, at this time, the circuit is not conducted, and the load lamp is in the OFF closed state.

[0017] As shown, Figure 1As shown, when the sliding switch KA connects the third and fifth pins of the sliding switch K1, and the fourth and sixth pins are connected, the sliding switch K1 is in the high-brightness position. At this time, the live AC power flows sequentially through the fourth, sixth, fifth, and third pins of the sliding switch K1, and is connected to the T2 terminal of the bidirectional thyristor TRIAC in the dimming circuit 1, one end of capacitor C3, and one end of the high-level resistor R4, respectively. By adjusting the charging and discharging time of capacitor C4, the conduction angle of the bidirectional thyristor TRIAC is controlled. R4 is set to the lowest resistance value in the high-level position, thus the charging and discharging of capacitor C4 is fastest, resulting in a smaller conduction phase angle of the bidirectional thyristor TRIAC and a maximum AC power overload, thereby achieving the high-brightness dimming state of the load lamp.

[0018] like Figure 1 As shown, when the sliding switch KA connects the fifth and seventh pins of the sliding switch K1, and the sixth and eighth pins are connected, the sliding switch K1 is in the medium brightness position. At this time, the AC current flows sequentially through the eighth, sixth, fifth, and seventh pins of the sliding switch K1, and is connected to the T2 terminal of the bidirectional thyristor TRIAC in the dimming circuit 1, one end of capacitor C3, and one end of the medium brightness resistor R6, respectively. By adjusting the charging and discharging time of capacitor C4, the conduction angle of the bidirectional thyristor TRIAC is controlled. R6 is set to be a medium brightness resistor with a larger resistance value than R4, so the charging and discharging time of capacitor C4 is slightly slower than in the high brightness position, resulting in a larger conduction phase angle of the bidirectional thyristor TRIAC and slightly less AC current, thus achieving the medium brightness dimming state of the load lamp.

[0019] like Figure 1 As shown, when the sliding switch KA connects the seventh and ninth pins of the sliding switch K1, and the eighth and tenth pins are connected, the sliding switch K1 is in the medium brightness position. At this time, the live AC power flows sequentially through the eighth, tenth, fifth, and sixth pins of the sliding switch K1, and is connected to the T2 terminal of the bidirectional thyristor TRIAC in the dimming circuit 1, one end of capacitor C3, and one end of the low-brightness resistor R5. The other end of resistor R5 is connected in series with one end of the medium-brightness resistor R6, thus increasing the resistance. By adjusting the charging and discharging time of capacitor C4, the phase angle of the bidirectional thyristor TRIAC is controlled. The sum of the resistances of resistors R5 and R6 belongs to the low-brightness resistor, and its resistance is larger than that of resistor R6. Therefore, the charging and discharging time of capacitor C4 is slightly slower than in the medium brightness position, maximizing the phase angle of the bidirectional thyristor TRIAC and minimizing the AC power excess, thereby achieving the low-brightness dimming state of the load lamp.

[0020] In the case, the capacitance of the capacitor C4 is adjustable, and is matched with the adjustable resistor R4, the resistor R5 and the resistor R6, after the capacitance of the capacitor C4 is adjusted, the capacitance is relatively fixed, and then the resistance of the resistor R4, the resistor R5 and the resistor R6 is further adjusted, so that the effect of the light gear position dimming change is achieved, meanwhile, the resistance of the resistor R4, the resistor R5 and the resistor R6 is distributed in sequence, for example, the resistance of the resistor R4 must be smaller than the resistance of the resistor R6.

[0021] As shown in Figure 1 The first pin, the third pin, the fifth pin, the seventh pin and the ninth pin are sequentially arranged on the same side of the slide switch K1, and the second pin, the fourth pin, the sixth pin, the eighth pin and the tenth pin are sequentially arranged on the other side of the slide switch K1, so that the pins of the slide switch K1 are connected with the electronic components, and the slide key KA is slid to connect different pins, and the circuit structure is simplified.

[0022] The fourth pin and the eighth pin of the slide switch K1 are connected with one end of the fuse F1, and the other end of the fuse F1 is connected with the live wire, so as to play a leakage protection role.

[0023] The above is only the preferred embodiment of the utility model, and does not limit the patent range of the utility model, and any equivalent structural transformation, direct or indirect application in other related technical fields under the utility model concept of the utility model is included in the patent protection range of the utility model.

Claims

1. A sliding segmented wall control smart dimming device circuit, characterized by: The dimmer circuit (1) and the slide switch K1 are connected with the load lamp for adjusting the brightness of the lamp, the slide switch K1 is provided with ten pins and a push switch KA, the push switch KA can push the slide switch K1 to make the first pin and the second pin connected with the third pin and the fourth pin respectively, or make the third pin and the fourth pin connected with the fifth pin and the sixth pin respectively, or make the fifth pin and the sixth pin connected with the seventh pin and the eighth pin respectively, or make the seventh pin and the eighth pin connected with the ninth pin and the tenth pin respectively, the first pin and the second pin of the slide switch K1 are connected with the third pin of the slide switch K1 and one end of the resistor R4, the fourth pin and the eighth pin of the slide switch K1 are connected with the firewire respectively, the fifth pin of the slide switch K1 is connected with the first input end of the dimmer circuit (1), the sixth pin of the slide switch K1, the tenth pin of the slide switch K1 and one end of the resistor R5 respectively, the seventh pin of the slide switch K1 is connected with one end of the resistor R6, the ninth pin of the slide switch K1 is connected with the other end of the resistor R5, the other end of the resistor R4 and the other end of the resistor R6 are connected with the second input end of the dimmer circuit (1) respectively.

2. A smart dimmer circuit for a sliding segmented wall control according to claim 1, wherein: The dimmer circuit (1) comprises a TRIAC, one end of the T2 pole of the TRIAC is connected with the capacitor C3, the T1 pole of the TRIAC is connected with the other end of the capacitor C3 and one end of the capacitor C4 respectively, the G pole of the TRIAC is connected with the other end of the capacitor C4 through the trigger tube DB3, the T2 pole of the TRIAC is connected with the fifth pin of the slide switch K1 as the first input end of the dimmer circuit (1), the connection end of the trigger tube DB3 and the capacitor C4 is connected with the other end of the resistor R6 and the other end of the resistor R4 as the second input end of the dimmer circuit (1) respectively, the T1 pole of the TRIAC is connected with the load lamp as the output.

3. The smart dimmer circuit for a sliding segmented wall control according to claim 1, wherein: The resistance value of the resistor R4 is less than the resistance value of the resistor R6.

4. The smart dimmer circuit for a sliding panel wall control according to claim 1, wherein: The first pin, the third pin, the fifth pin, the seventh pin and the ninth pin are arranged on the same side of the slide switch K1 in sequence, and the second pin, the fourth pin, the sixth pin, the eighth pin and the tenth pin are arranged on the other side of the slide switch K1 in sequence.

5. The smart dimmer circuit for a sliding segmented wall control according to claim 1, wherein: The fourth pin and the eighth pin of the slide switch K1 are connected with one end of the fuse F1, and the other end of the fuse F1 is connected with the firewire.