Ice surface lamplight interaction device
By installing a sensing array on the ice surface, including lenses, to correct the signal angle, the problem of ice surface lighting systems being unable to interact with tourists and high signal delay in low temperature environments is solved, achieving higher signal accuracy and system reliability.
Patent Information
- Application Number
- CN202422082219.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-26
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-08-26
AI Technical Summary
The existing ice-surface lighting system cannot interact with tourists, and when installed and used in low temperature environments, signal delivery delays and failure rates are high.
An ice-side lighting interactive device is designed, including a lighting dot matrix and a sensing array. The sensing array includes a sensing part and a correction part. The sensing part is fixed in the ice surface. The correction part includes a lens to correct the angle of the signal and reduce the influence of the ice on the signal.
The installation of the sensor array below the ice surface reduces the impact of low temperature on the sensor, improves signal accuracy and system reliability, and reduces the failure rate.
Smart Images

Figure CN222963896U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the improvement of ice surface light belts, and particularly relates to an ice surface lamp tube interaction device. Background Art
[0002] Ice sculpture landscapes generally need to be used in combination with lights. The existing lighting systems generally have pre-set programs, and the control devices are placed in relatively warm places as a whole to reduce the influence of low temperature on the control devices, thereby reducing the probability of ice sculpture light belt failures. Although such light belts can play the role of brightening and beautifying ice sculptures, their control programs are pre-set and cannot interact with tourists. Although there are such lighting interaction devices in the related art, their installations do not consider installation and use in low temperature environments. Once installed naked on the ice surface, their sensitivity will be affected by the low temperature. Although installing under the ice surface can play a certain heat preservation role, the ice surface will block the signal transmission, thereby increasing the delay. Therefore, the lighting interaction devices in the related art are not suitable for use on the ice surface. Content of the Utility Model
[0003] In order to overcome the deficiencies of the prior art, the utility model provides an ice surface lighting interaction device.
[0004] The utility model is realized by adopting the following technical scheme: an ice surface lighting interaction device, including a lighting dot matrix and a sensing array, the lighting dot matrix is used to be fixed in an ice sculpture, and the sensing array is arranged on the ice surface and used to control the opening and closing of the lighting dot matrix;
[0005] The sensing array includes a sensing part and a correction part, the sensing part is fixed in the ice surface, the correction part is fixed in the ice surface and placed above the sensing part, the sensing part includes several groups of sensors, the correction part includes several groups of lenses, and a group of lenses is correspondingly arranged above each group of sensors.
[0006] The sensor includes a transmitting part and a receiving part, the transmitting part and the receiving part are respectively arranged in the ice surface and the receiving part is arranged on one side of the transmitting part, and the lens is arranged above the receiving part.
[0007] A first installation hole is opened on the ice surface for installing the receiving part, the lens is arranged in the first installation hole and placed above the receiving part, the lens includes a refraction part and an adjustment part, the adjustment part is arranged in the refraction part, the refraction part is arranged in the first installation hole and the refraction part is rotatably connected to the inner wall of the first installation hole, and the adjustment part drives the refraction part to flip in the first installation hole.
[0008] The refraction member includes a mirror surface and a mirror frame. The mirror surface is fitted into the mirror frame. The end of the mirror frame is inserted into the inner wall of the first mounting hole. The interior of the mirror frame is hollow to form a mounting cavity, and the adjusting member is installed in the mounting cavity to drive the mirror frame to rotate.
[0009] The adjusting member includes a torsion spring and a counterweight. A limiting sliding groove is formed at the bottom of the mounting cavity. The counterweight is engaged in the limiting sliding groove and slides therein. When the counterweight slides to one end of the limiting sliding groove, the mirror frame rotates towards the direction of the counterweight.
[0010] The torsion spring is sleeved on the end of the mirror frame, and one end of the torsion spring is fixed on the mirror frame, and the other end of the torsion spring is fixedly connected to the first mounting hole.
[0011] A jack is provided on the side wall of the mounting hole for the end of the mirror frame to be inserted. The torsion spring is sleeved on the end of the mirror frame, and the other end of the torsion spring is fixed on the inner wall of the jack.
[0012] A second mounting hole is formed on the ice surface. The second mounting hole is on one side of the first mounting hole, and the emitting part is placed in the second mounting hole.
[0013] Compared with the prior art, when the user makes different gestures, the signals of the emitting parts at different positions are blocked, and thus the user's gestures can be calculated. The signals after reflection can be refracted by the lens to offset the influence of the ice surface on the reflected signals, making the signals more accurate. At the same time, since the sensor array is below the ice surface, it plays a certain heat preservation role, enabling the sensor to work normally. That is, while taking into account the working temperature environment of the sensor, the influence of the ice surface on the signals is reduced, and the failure rate is low. Description of the Drawings
[0014] Figure 1 is a schematic structural diagram of the lighting interaction device in the present utility model;
[0015] Figure 2 is Figure 1 the enlarged structural diagram at A in
[0016] Figure 3 is a schematic structural diagram of the mirror frame of the lighting interaction device in the present utility model;
[0017] In the figure: 1, ice surface; 11, first mounting hole; 12, second mounting hole; 2, sensing array; 21, sensing part; 211, emitting part; 212, receiving part; 22, correction part; 221, mirror surface; 222, mirror frame; 223, torsion spring; 224, counterweight; 225, limiting sliding groove; 226, jack. Detailed Embodiments
[0018] Next, in combination with the accompanying drawings and specific embodiments, the present utility model will be further described. It should be noted that on the premise of non-conflict, any combination of the following-described embodiments or technical features can form a new embodiment.
[0019] Referring to Figures 1-3 , an ice surface 1 lighting interaction device includes a lighting dot matrix and a sensing array 2. The lighting dot matrix is used to be fixed in an ice sculpture, and the sensing array 2 is arranged on the ice surface 1 and used to control the opening and closing of the lighting dot matrix. The sensing array 2 includes a sensing part 21 and a correction part 22. The sensing part 21 is fixed in the ice surface 1, and the correction part 22 is fixed in the ice surface 1 and placed above the sensing part 21. The sensing part 21 includes several groups of sensors, and the correction part 22 includes several groups of lenses. A group of lenses is correspondingly arranged above each group of sensors. The lenses correspond to each sensor, and thus the angle of the received signal can be corrected to minimize the influence of the refraction phenomenon of the ice surface 1 on the signal.
[0020] The sensors can be common infrared sensors. The sensors include a transmitting part 211 and a receiving part 212. The transmitting part 211 and the receiving part 212 are respectively arranged in the ice surface 1 and the receiving part 212 is arranged on one side of the transmitting part 211. The lens is arranged above the receiving part 212. The transmitting part 211 and the receiving part 212 can form an array, and one receiving part 212 corresponds to each transmitting part 211. When the user makes different gestures, the signals of the transmitting parts 211 at different positions are blocked, and thus the user's gestures can be calculated. The reflected signals can be refracted by the lenses to offset the influence of the ice surface 1 on the reflected signals, making the signals more accurate. At the same time, since the sensor array is below the ice surface 1, it plays a certain heat preservation role, enabling the sensors to work normally.
[0021] A first installation hole 11 is opened on the ice surface 1 for installing the receiving part 212. The lens is arranged in the first installation hole 11 and placed above the receiving part 212. The lens includes a refracting part and an adjusting part. The adjusting part is arranged in the refracting part. The refracting part is arranged in the first installation hole 11 and the refracting part is rotatably connected to the inner wall of the first installation hole 11. The adjusting part drives the refracting part to flip in the first installation hole 11. After the receiving part 212 is installed in the first installation hole 11, the first installation hole 11 can be closed, and an ice surface 1 is formed on the surface of the first installation hole 11 to facilitate the formation of an integral ice surface 1. At the same time, since the sensor array is below the ice surface 1, it plays a certain heat preservation role, enabling the sensors to work normally. The reflected signals can be refracted by the lenses to offset the influence of the ice surface 1 on the reflected signals, making the signals more accurate.
[0022] The refraction member includes a mirror surface 221 and a mirror frame 222. The mirror surface 221 is fitted inside the mirror frame 222. The end of the mirror frame 222 is inserted into the inner wall of the first mounting hole 11. The inside of the mirror frame 222 is hollow to form a mounting cavity, and an adjusting member is installed in the mounting cavity to drive the mirror frame 222 to rotate. The adjusting member includes a torsion spring 223 and a counterweight 224. A limiting sliding groove 225 is opened at the bottom of the mounting cavity. The counterweight 224 is engaged in the limiting sliding groove 225 and slides in the limiting sliding groove 225. When the counterweight 224 slides to one end of the limiting sliding groove 225, the mirror frame 222 rotates towards the direction of the counterweight 224. The torsion spring 223 is sleeved on the end of the mirror frame 222, and one end of the torsion spring 223 is fixed on the mirror frame 222, and the other end of the torsion spring 223 is fixedly connected to the first mounting hole 11. During adjustment, it is first necessary to measure the refractive index of the ice surface 1 and adjust the angle of the mirror frame 222 to the appropriate position before installation. By manually adjusting the rotation angle of the mirror frame 222, the counterweight 224 is placed in a suitable position, and the torsion force generated by the deformation of the torsion spring 223 and the gravity of the counterweight 224 are balanced, so that the mirror frame 222 maintains stability at a certain angle. Subsequently, the first mounting hole 11 is sealed, and the mirror frame 222 can be in a closed environment. After the ice sculpture landscape is demolished, it can be recycled and reused.
[0023] On the side wall of the mounting hole, there is a jack 226 for the end of the mirror frame 222 to be inserted. The torsion spring 223 is sleeved on the end of the mirror frame 222, and the other end of the torsion spring 223 is fixed on the inner wall of the jack 226. A second mounting hole 12 is opened on the ice surface 1. The second mounting hole 12 is on one side of the first mounting hole 11, and the transmitting part 211 is placed in the second mounting hole 12. The first mounting hole 11 and the second mounting hole 12 are adjacent. In actual use, the reflected signal is incident on the ice surface 1 at an angle close to perpendicular to the ice surface 1. The mirror frame 222 only needs to be adjusted by a small angle to eliminate the influence of the ice surface 1 on the refraction of the signal, so that the receiving part 212 can receive the strongest signal and reduce the signal loss.
[0024] Compared with the prior art, in the present utility model, when the user makes different gestures, the signals of the transmitting parts 211 at different positions are blocked, and thus the user's gestures can be calculated. The signals after reflection can be refracted by the lens to offset the influence of the ice surface 1 on the reflected signals, making the signals more accurate. At the same time, since the sensor array is below the ice surface 1, it plays a certain heat preservation role, enabling the sensor to work normally.
[0025] The above-mentioned embodiments are only the preferred embodiments of the present utility model and cannot be used to limit the scope of protection of the present utility model. Any non-substantial changes and substitutions made by those skilled in the art based on the present utility model fall within the scope of protection required by the present utility model.
Claims
1. An ice surface light interactive device, comprising a light matrix and a sensor array, characterized in that: The light matrix is used to be fixed in the ice sculpture, and the sensor array is arranged on the ice surface and is used to control the opening and closing of the light matrix; The sensing array includes a sensing part and a correction part. The sensing part is fixed in the ice surface. The correction part is fixed in the ice surface and placed above the sensing part. The sensing part includes a plurality of groups of sensors. The correction part includes a plurality of groups of lenses. A group of lenses is correspondingly arranged above each group of sensors.
2. The ice surface light interactive device according to claim 1, characterized in that: The sensor comprises a transmitting part and a receiving part, wherein the transmitting part and the receiving part are respectively arranged in the ice surface and the receiving part is arranged at one side of the transmitting part, and the lens is arranged above the receiving part.
3. The ice surface light interactive device according to claim 2, characterized in that: A first mounting hole is provided on the ice surface for mounting a receiving part, the lens is arranged in the first mounting hole and placed above the receiving part, the lens comprises a refractive member and an adjusting member, the adjusting member is arranged in the refractive member, the refractive member is arranged in the first mounting hole and the refractive member is rotatably connected to the inner wall of the first mounting hole, and the adjusting member drives the refractive member to flip in the first mounting hole.
4. The ice surface light interactive device according to claim 3, characterized in that: The refractive element comprises a mirror surface and a mirror frame, the mirror surface is embedded in the mirror frame, the end of the mirror frame is inserted into the inner wall of the first mounting hole, the mirror frame is hollow inside to form a mounting cavity, and the adjusting element is installed in the mounting cavity to drive the mirror frame to rotate.
5. The ice surface light interactive device according to claim 4, characterized in that: The adjusting member comprises a torsion spring and a counterweight block, a limiting slide groove is provided at the bottom of the mounting cavity, the counterweight block is engaged in the limiting slide groove and slides in the limiting slide groove, and when the counterweight block slides to one end of the limiting slide groove, the mirror frame rotates toward the direction of the counterweight block; The torsion spring is sleeved on the end of the lens frame, one end of the torsion spring is fixed on the lens frame, and the other end of the torsion spring is fixedly connected to the first mounting hole.
6. The ice surface light interactive device according to claim 5, characterized in that: A plug hole is arranged on the side wall of the mounting hole for inserting the end of the lens frame, the torsion spring is sleeved on the end of the lens frame and the other end of the torsion spring is fixed on the inner wall of the plug hole.
7. The ice surface light interactive device according to claim 3, characterized in that: A second mounting hole is provided on the ice surface, the second mounting hole is located at one side of the first mounting hole, and the transmitting part is disposed in the second mounting hole.