Pet toy
By combining the design of guide discs and optical components with magnetic and control components, the problems of complex structure and simple photoelectric trajectory in existing pet toys are solved, realizing variable light spot trajectory and stable connection, thus improving the fun and reliability of the toy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANCHANG YUELING TECH CO LTD
- Filing Date
- 2025-04-25
- Publication Date
- 2026-04-28
AI Technical Summary
Existing pet toys cannot simultaneously achieve both simple structure and varied photoelectric trajectories, and they also suffer from high manufacturing costs and easily damaged parts.
The design combines a guide plate and optical components. The guide plate has a guide surface, and the optical components slide against the guide plate through the guide components. The drive component drives the optical components to rotate around the rotation axis. Combined with magnetic and control components, a stable connection and flexible adjustment are achieved.
It achieves varied light spot trajectories, enhancing the fun and novelty of pet play, extending the toy's lifespan, reducing the possibility of malfunctions, and improving the toy's reliability and safety.
Smart Images

Figure CN224165432U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of pet equipment, and more specifically, to a pet toy. Background Technology
[0002] As people's living standards improve, the pet market offers a wider variety of products, including more and more pet toys. Common pet toys, such as cat wands, utilize pets' great interest in fast-moving objects to quickly attract their attention and excite them to pounce and bite. Furthermore, most pets instinctively chase after light-emitting and fast-moving objects.
[0003] Most pet toys currently on the market have several problems: Firstly, most pet toys use a single motor to drive a laser to generate a fixed motion trajectory, which pets can easily predict after playing for a long time, thus losing interest. Secondly, some toys use multiple motors to drive the laser to generate more complex motion trajectories, but these toys have complex structures and high manufacturing costs. Furthermore, existing pet toys use a magnetic assembly where the mutual attraction and separation between the first and second magnetic components makes the optical component's motion trajectory unstable, resulting in variable light spot trajectories. However, this design cannot simultaneously meet the requirements of simple structure and variable light spot trajectories. Utility Model Content
[0004] The purpose of this invention is to provide a pet toy that solves the technical problem that existing pet toys cannot simultaneously achieve both simple structure and variable photoelectric trajectory.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] Firstly, a pet toy is provided, including:
[0007] The housing has a receiving cavity and a light-emitting opening communicating with the receiving cavity;
[0008] A guide disk is disposed in the receiving cavity, the guide disk defines a rotation axis, and the guide disk has a guide surface around the rotation axis;
[0009] An optical component is used to emit or reflect light toward the light-emitting opening. The optical component is spaced apart from the guide disk, and the optical component is provided with a guide that slides against the guide surface.
[0010] A driving element is disposed in the accommodating cavity, and the driving element is used to drive the optical element to rotate about the rotation axis;
[0011] The height of the guide surface varies along the circumference of the guide disk, and the guide slides on the guide surface when the optical component rotates around the rotation axis, causing the optical component to oscillate relative to the rotation axis.
[0012] By adopting the above technical solution, all components are installed within the housing cavity, resulting in a compact and reasonable layout. The connections and cooperation between components such as the guide plate, optical components, and drive components are stable, reducing the risk of component damage or displacement due to vibration or collision, and extending the toy's service life. For example, the optical components slide against the guide plate via the guide, a connection method that not only achieves the intended movement but also buffers external impacts to a certain extent.
[0013] In one embodiment, the guide surface is a wavy surface along the circumference of the guide disk, and the surface height of the guide surface varies back and forth along the circumference of the guide disk; or, the surface height of the guide surface varies irregularly along the circumference of the guide disk.
[0014] In one embodiment, the optical element includes an optical emitting portion for emitting light, the optical emitting portion being spaced apart from the guide disk, the optical emitting portion being drively connected to the drive element, and the light emitted by the optical emitting portion being emitted toward the light-emitting opening.
[0015] In one embodiment, the optical component includes an optical emitting portion for emitting light and an optical reflecting portion for reflecting light. The optical reflecting portion is spaced apart from the guide disk and is connected to the driving component. The optical emitting portion emits light toward the optical reflecting portion, and the optical reflecting portion reflects light so that the light is emitted toward the light-emitting opening.
[0016] In one embodiment, the light emitted by the optical emitting part forms an angle greater than 0° and less than 90° with the reflecting surface of the optical reflecting part.
[0017] In one embodiment, the pet toy further includes a protective lens covering the light-emitting opening.
[0018] In one embodiment, the pet toy further includes a seat having a receiving groove for receiving the bottom of the housing, the housing being rotatable within the receiving groove.
[0019] In one embodiment, a sliding groove is formed on the wall of the receiving groove, and the housing is provided with a sliding member that slides in the sliding groove. The sliding member can slide along the length of the sliding groove, so that the housing can slide relative to the base.
[0020] In one embodiment, a first magnetic attractor is provided on the wall of the receiving groove, and a second magnetic attractor is provided on the housing, which is magnetically attracted to the first magnetic attractor. The housing is fixed relative to the base when the second magnetic attractor is magnetically attracted to the first magnetic attractor.
[0021] In one embodiment, the housing is provided with a control element, which is electrically connected to the drive element and the optical element. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 This is a three-dimensional structural diagram of the pet toy provided in this embodiment of the utility model.
[0024] Figure 2 This is an exploded view of a pet toy provided in an embodiment of this utility model.
[0025] Figure 3 This is an exploded view of an optical component provided in an embodiment of this utility model.
[0026] Figure 4 This is an exploded view of the optical component provided in an embodiment of the present invention.
[0027] Figure 5 This is an exploded view of the pet toy provided in this embodiment of the utility model.
[0028] The labels for the attached figures are as follows:
[0029] 100. Pet toys;
[0030] 1. Housing; 2. Guide plate; X. Rotation shaft; 3. Optical component; 4. Guide component; 5. Drive component; 6. Protective lens; 7. Base;
[0031] 11. Receiving cavity; 12. Light emission opening; 13. Sliding component; 14. Control component; 21. Guide surface; 32. Optical emitting part; 33. Optical reflecting part; 71. Receiving groove; 72. Sliding groove. Detailed Implementation
[0032] To make the technical problem to be solved, the technical solution, and the beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0033] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it can be located directly on or indirectly on the other component. When a component is referred to as "connected to" another component, it can be directly or indirectly connected to the other component.
[0034] It should be understood that the terms "length", "width", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and do not indicate that the device or element must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0035] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating relative importance or the number of technical features. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified. The specific implementation of this utility model is described in more detail below with reference to specific embodiments:
[0036] like Figures 1 to 3 As shown in the figure, a pet toy 100 provided in this embodiment of the present invention includes:
[0037] The housing 1 is provided with a receiving cavity 11 and a light-emitting opening 12 communicating with the receiving cavity 11;
[0038] Guide disk 2 is disposed in receiving cavity 11. Guide disk 2 defines a rotation axis X. Guide disk 2 has a guide surface 21 around rotation axis X.
[0039] Optical component 3 is used to emit or reflect light towards the light-emitting opening 12. Optical component 3 is spaced apart from guide disk 2. Optical component 3 is provided with guide component 4 that slides against guide curved surface 21.
[0040] The driving component 5 is disposed in the accommodating cavity 11. The driving component 5 is used to drive the optical component 3 to rotate around the rotation axis X.
[0041] The height of the guide surface 21 varies along the circumference of the guide disk 2. The guide member 4 slides on the guide surface 21 when the optical member 3 rotates around the rotation axis X, causing the optical member 3 to swing relative to the rotation axis X.
[0042] Specifically, the shell 1 serves as the external structure of the entire pet toy 100, and its accommodating cavity 11 is used to accommodate internal components such as the guide plate 2, optical components 3, and drive components 5, thus providing protection and support.
[0043] The light-emitting opening 12 is the channel through which light is emitted, ensuring that the light emitted or reflected by the optical component 3 can be projected to the outside world to attract the pet's attention.
[0044] The guide disk 2 is defined with a rotation axis X, which provides a central axis for the rotation of the optical component 3. The guide surface 21 set around the rotation axis X is a key structure. Its surface height varies along the circumference. This characteristic causes the guide component 4, which slides against the guide surface 21, to be subjected to forces of different directions and magnitudes when the optical component 3 rotates.
[0045] The optical component 3 functions to emit or reflect light and is the direct component that generates a light spot to attract pets. By providing a guide 4 that slides against the guide surface 21 of the guide disk 2, the optical component 3 can interact with the guide disk 2 during rotation.
[0046] The driving component 5 provides power for the optical component 3 to rotate around the rotation axis X, ensuring that the optical component 3 can rotate continuously, thereby continuously emitting or reflecting light to form a dynamic light spot effect.
[0047] The working principle of the pet toy 100 provided in this embodiment:
[0048] After the drive unit 5 is activated, it drives the optical component 3 to rotate around the rotation axis X. During the rotation, the guide component 4 on the optical component 3 maintains sliding contact with the guide surface 21 of the guide disk 2. Since the height of the guide surface 21 varies circumferentially, the guide component 4 is subjected to constantly changing forces as it slides on the surface. This changing force causes the optical component 3 to oscillate relative to the rotation axis X while rotating around it. The oscillation of the optical component 3 causes the direction of its emitted or reflected light to constantly change, ultimately forming a varied light spot trajectory in the outside world, increasing the fun and novelty for pets and preventing them from losing interest due to a fixed light spot trajectory.
[0049] By adopting the above technical solution, all components are installed within the housing 1's accommodating cavity 11, resulting in a compact and reasonable layout. The connections and cooperation between components such as the guide plate 2, optical components 3, and drive components 5 are stable, reducing the risk of component damage or displacement due to vibration or collision, and extending the toy's service life. For example, the optical component 3 slides against the guide plate 2 via the guide component 4; this connection method can achieve the expected movement while also buffering external impacts to a certain extent.
[0050] The simple and reliable mechanical structure design reduces the number of potential failure points caused by numerous components and complex wiring, compared to complex toys driven by multiple motors. The drive component 5 directly drives the optical component 3 to rotate, and the guide plate 2 guides the optical component 3 to swing. This simple working method reduces the possibility of failure and improves the reliability of the toy.
[0051] Please refer to the following: Figure 4 In one embodiment, the guide surface 21 is a wavy surface along the circumference of the guide disk 2, and the surface height of the guide surface 21 changes back and forth along the circumference of the guide disk 2; or, the surface height of the guide surface 21 changes irregularly along the circumference of the guide disk 2.
[0052] Specifically, when the guide surface 21 is a wavy surface along the circumference of the guide disk 2, and the height of the surface changes back and forth along the circumference, the guide component 4 on the optical component 3 will continuously change position with the undulation of the wavy surface as the optical component 3 rotates around the rotation axis X. At the crests and troughs, the direction and magnitude of the supporting force on the guide component 4 are different, causing the oscillation direction and amplitude of the optical component 3 relative to the rotation axis X to change periodically. This results in the periodic change of the direction of light emitted or reflected by the optical component 3, forming a periodically changing light spot trajectory in the outside world. This regular but constantly changing trajectory can attract the attention of pets.
[0053] When the height of the guide surface 21 changes irregularly along the circumference of the guide disk 2, the direction and amplitude of the oscillation of the optical component 3 relative to the rotation axis X may change at any time, and the direction of light emission or reflection will also change randomly, thus forming a completely unpredictable light spot trajectory in the outside world. This irregular light spot trajectory is more likely to stimulate the pet's curiosity and chasing instinct, because the pet cannot predict the movement trend of the light spot.
[0054] By adopting the above technical solutions, both wavy and irregularly shaped curved surfaces break away from the traditional pattern of fixed or simple repetitive light spot trajectories in pet toys. The varied light spot trajectories continuously stimulate the pet's visual nerves, satisfying their natural instinct to chase dynamic objects, keeping them highly excited and focused during play, and increasing the toy's fun.
[0055] In one embodiment, the optical element 3 includes an optical emitting part 32 for emitting light. The optical emitting part 32 is spaced apart from the guide disk 2 and is connected to the drive element 5. The light emitted by the optical emitting part 32 is emitted toward the light-emitting opening 12.
[0056] Specifically, the optical component 3 includes an optical emitter 32, which is the core component for generating light. This structural design concentrates the light emission function in the optical emitter 32, which helps to optimize the light emission effect. For example, it allows for more precise control of parameters such as light intensity, color, and emission angle to meet the preferences and play needs of different pets.
[0057] The optical emitting part 32 and the guide disk 2 are spaced apart and do not directly contact each other, but the guide surface 21 of the guide disk 2 will indirectly affect the movement of the optical emitting part 32. When the driving member 5 drives the optical emitting part 32 to rotate around the rotation axis X, the guide member 4 on the optical emitting part 32 will slide on the guide surface 21, thereby causing the optical emitting part 32 to swing relative to the rotation axis X and change the emission direction of the light.
[0058] The optical emitting part 32 is connected to the driving member 5, which provides power for the rotation of the optical emitting part 32. This connection method ensures that the driving member 5 can stably drive the optical emitting part 32 to rotate around the rotation axis X, so that light is continuously emitted towards the light-emitting opening 12, forming a stable light spot output.
[0059] By adopting the above technical solution, the light emitted by the optical emitting unit 32 is emitted towards the light-emitting opening 12, forming a light spot in the outside. Combined with the function of the guide disk 2 and the driving member 5, the direction of the emitted light from the optical emitting unit 32 changes continuously during rotation and oscillation, thereby generating a variable light spot trajectory in the outside.
[0060] In one embodiment, the optical component 3 includes an optical emitting part 32 for emitting light and an optical reflecting part 33 for reflecting light. The optical reflecting part 33 is spaced apart from the guide disk 2 and is connected to the driving component 5. The optical emitting part 32 emits light toward the optical reflecting part 33 and the optical reflecting part 33 reflects light so that the light is emitted toward the light outlet 12.
[0061] Specifically, the optical emitting unit 32 is responsible for actively emitting light and is the light source generation part of the entire optical system. Its existence provides the basis for subsequent light reflection and trajectory formation. By emitting light to the optical reflecting unit 33, the entire process of light propagation and trajectory formation is initiated.
[0062] The optical reflector 33 is responsible for receiving the light emitted by the optical emitter 32 and reflecting it toward the light-emitting opening 12. It is spaced apart from the guide disk 2 and connected to the drive unit 5. This allows it to not only change the direction of light propagation during rotation, but also to swing due to the action of the guide disk 2, thereby changing the angle of the reflected light and playing a key role in adjusting the final light spot trajectory.
[0063] The optical emitting part 32 and the optical reflecting part 33 work together closely. The light emitted by the optical emitting part 32 is precisely directed to the optical reflecting part 33, which then reflects the light back out. This cooperation ensures that the light can propagate along the designed path and finally exit from the light-emitting opening 12 to form a light spot.
[0064] The optical reflector 33, guide disk 2, and drive member 5: The drive member 5 drives the optical reflector 33 to rotate around the rotation axis X, enabling it to continuously receive and reflect light. Simultaneously, the guide member 4 on the optical reflector 33 slides on the guide surface 21 of the guide disk 2. Due to the change in the height of the guide surface 21, the optical reflector 33 oscillates relative to the rotation axis X during rotation. This oscillation changes the reflection angle of the light, thus making the trajectory of the light spot more complex and variable.
[0065] In one embodiment, the light emitted by the optical emitting part 32 forms an angle greater than 0° and less than 90° with the reflecting surface of the optical reflecting part 33.
[0066] Specifically, from the perspective of the basic principles of light propagation, this angle setting avoids the two extreme cases of perpendicular and grazing incident light. If light is incident perpendicularly to the reflective surface of the optical reflector 33 (angle of 0°), the reflected light will return along its original path, greatly limiting the change in the direction of light reflection and making it difficult to form varied light spot trajectories. Grazing incident light (angle close to 90°) is almost parallel to the reflective surface, resulting in poor reflection and potentially causing light scattering or difficulty in effectively reflecting it to the light exit opening 12. Controlling the angle to be greater than 0° and less than 90° ensures that the light strikes the reflective surface at a suitable angle, generating controllable and diverse reflected light directions according to the law of reflection, laying the foundation for the subsequent formation of complex light spot trajectories.
[0067] In one embodiment, the pet toy 100 also includes a protective lens 6 covering the light-emitting opening 12.
[0068] Specifically, the protective lens 6 is installed at the light-emitting opening 12, effectively preventing dust, hair, moisture, and other external debris from entering the pet toy 100. If these debris enters the receiving cavity 11, they may adhere to critical components such as the optical element 3 and the drive element 5, affecting their normal operation. For example, dust accumulation on the surface of the optical emitting part 32 or the optical reflecting part 33 will reduce the emission and reflection efficiency of light, resulting in weakened light spot brightness and blurred trajectory; hair entangled on the rotating parts of the drive element 5 may increase operating resistance and even damage the drive element 5. The presence of the protective lens 6 greatly reduces these risks and extends the service life of the pet toy 100.
[0069] The protective lens 6 is not merely a simple shielding component; it also optimizes light transmission. A high-quality protective lens 6 reduces light refraction and scattering at the light-emitting opening 12, allowing the light emitted or reflected from the optical element 3 to be projected more concentratedly and stably into the outside world. This results in clearer, brighter light spots with more stable and discernible light trails. This helps enhance the appeal of the pet toy 100 to pets and improves their play experience.
[0070] Enhancing Product Safety: From a safety perspective, the protective lens 6 prevents pets from directly contacting the internal optical components and drive mechanism 5 during play. These components may pose certain safety hazards during operation. For example, light emitted from the optical emitter 32 could damage a pet's vision if it shines directly into their eyes; the rotating drive mechanism 5 could also pinch a pet's paws or fur. The protective lens 6 isolates the pet from these potential dangers, ensuring their safety and allowing them to play with greater peace of mind.
[0071] In one embodiment, the pet toy 100 further includes a base 7 having a receiving groove 71 for accommodating the bottom of the housing 1, the housing 1 being rotatable within the receiving groove 71.
[0072] Specifically, the base 7 and the housing 1 are rotatably connected through the design of the receiving groove 71, greatly expanding the ways in which the pet toy 100 can be used. Users do not need to move the entire toy; they only need to rotate the housing 1 to easily change the direction of the light-emitting opening 12, allowing the light spot to be projected onto different areas. For example, when the pet is moving around in different locations in the room, the owner can rotate the housing 1 to make the light spot appear near the pet, continuously attracting the pet's attention and increasing the toy's convenience and flexibility.
[0073] Please refer to the following: Figure 5 In one embodiment, a sliding groove 72 is provided on the groove wall of the receiving groove 71, and the housing 1 is provided with a sliding member 13 that slides in the sliding groove 72. The sliding member 13 can slide along the groove length direction of the sliding groove 72, so that the housing 1 can slide relative to the seat 7.
[0074] Specifically, the design of the groove 72 and the slider 13 allows the housing 1 to not only rotate within the receiving groove 71 but also slide relative to the base 7. This design greatly expands the toy's spatial adjustment range. For example, in practical use, when it is necessary to project the light spot to a farther or more off-center position, simply rotating the housing 1 may not meet the requirements; in this case, sliding the housing 1 can achieve the desired effect. This flexible adjustment method can better adapt to different usage environments and the pet's activity range, improving the toy's applicability.
[0075] In one embodiment, the groove wall of the receiving groove 71 is provided with a first magnetic attractor, and the housing 1 is provided with a second magnetic attractor that is magnetically attracted to the first magnetic attractor. When the second magnetic attractor and the first magnetic attractor are magnetically attracted to each other, the housing 1 is fixed relative to the seat 7.
[0076] Specifically, when the first and second magnetic components attract each other, a certain attraction force is generated, firmly fixing the shell 1 within the receiving groove 71 of the base 7. During pet play, the toy inevitably experiences collisions, shaking, and other external forces. With the magnetic fixing structure, even if the pet bites or pushes the toy forcefully, the shell 1 remains relatively stable, reducing the risk of damage to internal components due to shaking or displacement, and extending the toy's lifespan. For example, if the pet accidentally knocks over the toy while chasing the light, the magnetic fixing structure prevents the shell 1 from falling off the base 7, protecting internal components such as the optical component 3 and the drive component 5 from damage.
[0077] When the direction of the light projection needs to be adjusted, the user only needs to overcome the magnetic attraction between the magnetic components, rotate or slide the housing 1, adjust it to the appropriate position, and then release it to allow the first and second magnetic components to re-engage and fix the housing 1 in place. This operation method is simple and convenient, requiring no additional fixing devices or complicated operating steps. Compared with traditional fixing methods, such as screw fixing or clip fixing, magnetic fixing makes it easier for users to adjust the position of the housing 1 at any time according to actual needs, improving the flexibility of toy use.
[0078] In one embodiment, the housing 1 is provided with a control element 14, which is electrically connected to the drive element 5 and the optical element 3.
[0079] Specifically, the control unit 14 is electrically connected to the drive unit 5 and the optical component 3, meaning that the core functions of the pet toy 100 can be directly controlled. Through the control unit 14, the operating speed and direction of the drive unit 5 can be adjusted, thereby changing the rotation or oscillation state of the optical component 3. For example, when the pet's interest in the toy decreases, the control unit 14 can increase the rotation speed of the drive unit 5, making the optical component 3 move faster and causing the trajectory of the projected light spot to change more rapidly, thus regaining the pet's attention. It can also control the intensity and color of the light emitted by the optical component 3 (if the optical component 3 has this function), meeting the pet's play needs in different environments and moods.
[0080] The control unit 14 is located on the housing 1, greatly simplifying user operation. Users can easily control the toy from its location without complicated procedures or additional tools. This integrated design allows users to adjust the toy's operating status based on their pet's real-time reactions, enhancing the interactive play experience between humans and pets. For example, if the owner notices that their pet tends to chase a light spot at a specific speed while playing, they can directly adjust this using the control unit 14 on the housing 1.
[0081] This electrical connection control scheme enables the expansion of functions and intelligent upgrades of the pet toy 100. With technological advancements, more functions can be added via the control component 14, such as timed switches and intelligent sensing. The control component 14 is well-compatible with the drive component 5 and the optical component 3, ensuring the realization of new functions. For example, with the addition of intelligent sensing, when a pet approaches the toy, the control component 14 can automatically control the drive component 5 and the optical component 3 to activate, enhancing the product's intelligence and user experience.
[0082] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A pet toy, characterized in that, include: The housing has a receiving cavity and a light-emitting opening communicating with the receiving cavity; A guide disk is disposed in the receiving cavity, the guide disk defines a rotation axis, and the guide disk has a guide surface around the rotation axis; An optical component is used to emit or reflect light toward the light-emitting opening. The optical component is spaced apart from the guide disk, and the optical component is provided with a guide that slides against the guide surface. A driving element is disposed in the accommodating cavity, and the driving element is used to drive the optical element to rotate about the rotation axis; The height of the guide surface varies along the circumference of the guide disk, and the guide slides on the guide surface when the optical component rotates around the rotation axis, causing the optical component to oscillate relative to the rotation axis.
2. The pet toy as described in claim 1, characterized in that, The guide surface is a wavy surface along the circumference of the guide disk, and the surface height of the guide surface varies back and forth along the circumference of the guide disk; or, the surface height of the guide surface varies irregularly along the circumference of the guide disk.
3. The pet toy as described in claim 1, characterized in that, The optical component includes an optical emitting part for emitting light. The optical emitting part is spaced apart from the guide disk and is connected to the driving component. The light emitted by the optical emitting part is emitted toward the light-emitting opening.
4. The pet toy as described in claim 1, characterized in that, The optical component includes an optical emitting part for emitting light and an optical reflecting part for reflecting light. The optical reflecting part is spaced apart from the guide disk and is connected to the driving component. The optical emitting part emits light toward the optical reflecting part, and the optical reflecting part reflects light so that the light is emitted toward the light-emitting opening.
5. The pet toy as described in claim 4, characterized in that, The light emitted by the optical emitting part forms an angle greater than 0° and less than 90° with the reflecting surface of the optical reflecting part.
6. The pet toy as described in claim 1, characterized in that, The pet toy also includes a protective lens covering the light-emitting opening.
7. The pet toy as described in any one of claims 1 to 6, characterized in that, The pet toy also includes a base with a receiving groove for accommodating the bottom of the housing, the housing being rotatable within the receiving groove.
8. The pet toy as described in claim 7, characterized in that, The receiving groove has a sliding groove on its wall, and the housing has a sliding member that slides in the sliding groove. The sliding member can slide along the length of the sliding groove, so that the housing can slide relative to the base.
9. The pet toy as described in claim 7, characterized in that, The receiving groove is provided with a first magnetic attractor on its groove wall, and the housing is provided with a second magnetic attractor that is magnetically attracted to the first magnetic attractor. The housing is fixed relative to the base when the second magnetic attractor and the first magnetic attractor are magnetically attracted to each other.
10. The pet toy as claimed in any one of claims 1 to 6, characterized in that, The housing is provided with a control component, which is electrically connected to the drive component and the optical component.