Assembled robot toy
By designing detachable head parts, assembly components and transmission gear sets, combined with assembled robot toys with solar panel drive motors, the limitations of existing electric toys are solved, and diversified assembly and creativity excitement are achieved.
Patent Information
- Application Number
- CN202421562832.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-03
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-07-03
AI Technical Summary
The power output of the existing drive mechanism that can be assembled electric toys is output from both ends, resulting in limitations in assembly and cannot stimulate children's creativity.
Design a assembly robot toy, which uses detachable head parts, assembly components and transmission gear sets, drives the motor through solar panels, and adjusts the power output position, combining rods and gear boxes to achieve diversified assembly.
It improves the diversity of assembly, stimulates children's creativity and fun, has adjustable power output position, and uses solar panels to provide electrical power drive, increasing the fun of toys.
Smart Images

Figure CN223275876U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of assembled toys, in particular to an assembled robot toy. Background Art
[0002] As we all know, building blocks are toys that are assembled from various parts to create a specific shape. However, currently available building blocks can only be assembled and driven into a single shape, which is extremely limited and fails to stimulate children's creativity. Furthermore, the power output of existing drive mechanisms is generally through one or more rotating rods, which means that power transmission in building blocks must be initiated from both sides, thus limiting assembly. Utility Model Content
[0003] The main purpose of the utility model is to provide an assembled robot toy, which is used to solve the problem that the power output of the driving mechanism of the existing assembled electric toys is output from both ends, resulting in limitations in the assembled electric toys.
[0004] In order to solve the above technical problems, the technical solutions provided by the present invention are as follows:
[0005] An assembled robot toy comprises a power supply module, a gear box, a rod, a head component detachably arranged on the gear box, and an assembly component;
[0006] The gear box includes a motor, a first gear and a transmission gear set, wherein the first gear is disposed on a rotating shaft of the motor, the transmission gear set includes a second gear meshing with the first gear, the number of teeth of the first gear is smaller than the number of teeth of the second gear, the rod is connected to the second gear, and the assembly component is connected to the transmission gear set and / or the rod;
[0007] The rod is configured to rotate through the transmission of the first gear and the transmission gear set when driven by the motor, and at least part of the assembly component is configured to move when the transmission gear set and / or the rod rotates and drive the gear box and the head component to move;
[0008] The power supply module includes a solar panel for converting light energy into electrical energy, and the solar panel is electrically connected to the motor.
[0009] In one embodiment, the solar panel is arranged in one of the head component, the assembly component, and the gear box. The solar panel is used to convert light energy into electrical energy and transmit the electrical energy to the motor. The motor receives the electrical energy transmitted by the solar panel and drives.
[0010] In one embodiment, the assembly robot toy also includes a control module and a battery. The battery is arranged on the head component or the gear box. The solar panel, motor, and battery are all electrically connected to the control module. The solar panel is used to convert light energy into electrical energy and transmit the electrical energy to the control module; the control module is used to receive electrical energy, and after processing the electrical energy, directly drive the motor and / or store it in the battery.
[0011] In one embodiment, the assembly robot toy further includes a control switch electrically connected to the control module, and the control module is further configured to drive the motor when the control switch is operated.
[0012] In one embodiment, the assembly robot toy further includes a wireless module electrically connected to the control module, the wireless module is used to receive wireless signals from an external device and transmit them to the control module, and the control module is used to receive the wireless signals and drive the motor to work.
[0013] In one embodiment, the assembly robot toy further includes an audio player electrically connected to the control module; the control module drives the audio player to play audio when the control switch is operated or a wireless signal is received.
[0014] In one embodiment, a voice module electrically connected to the control module is further included, wherein the voice module is used to store audio data, and the control module drives the audio player to play the audio in the audio data when the control switch is operated or a wireless signal is received.
[0015] In one embodiment, the device further includes a display electrically connected to the control module, wherein the display is used to display display data transmitted by the control module, and the display data at least includes the battery power level.
[0016] In one embodiment, the rod comprises a first rotating rod and a second rotating rod, and the second gear is disposed on the first rotating rod;
[0017] The transmission gear set includes: a third gear provided on the first rotating rod, a fourth gear and a fifth gear provided on the second rotating rod, and a sixth gear meshed with the fifth gear; the sixth gear is provided on the first rotating rod, the fifth gear is connected to the fourth gear, the third gear is meshed with the fourth gear, the fifth gear is meshed with the sixth gear, and the sixth gear is meshed with the fifth gear, the number of teeth of the third gear is smaller than the number of teeth of the fourth gear, the number of teeth of the fifth gear is smaller than the number of teeth of the sixth gear, and the first rotating rod is connected to the assembly component;
[0018] The first rotating rod is rotated by the transmission of the first gear and the second gear when driven by the motor. The third gear is driven to rotate when the first rotating rod rotates. The fourth gear is driven to rotate when the third gear rotates. The fifth gear is driven to rotate when the fourth gear rotates. The sixth gear is driven to rotate when the fifth gear rotates. The first rotating rod is driven to rotate when the fifth gear rotates. The assembly component is configured to move when the first rotating rod or the sixth gear rotates.
[0019] In one embodiment, the transmission gear set further includes a seventh gear and an eighth gear, the seventh gear and the eighth gear being disposed on the first rotating rod, the seventh gear being a spur gear, and the eighth gear being a spur gear. The gear box is provided with a first avoidance hole at positions corresponding to the seventh gear and the eighth gear. The seventh gear and the eighth gear are both driven to rotate when the first rotating rod rotates. The diameter of the seventh gear is smaller than the diameter of the eighth gear. The assembly component is connected to one or more of the first rotating rod, the seventh gear, and the eighth gear.
[0020] The rod member also includes multiple transmission rods connected to the assembly component, at least two of the transmission rods are arranged at both ends of the first rotating rod, the transmission rod connected to the first rotating rod at least partially extends into the gear box, and the gear box is provided with a second avoidance hole at the position corresponding to the transmission rod.
[0021] The present invention has the following beneficial effects: Compared to the prior art, the present invention configures a detachable head component and assembly assembly on the gear box, wherein the head component serves as the head of the robot, the assembly assembly is a component with a toy appearance, and the rod and transmission gear set serve as the power output. In this way, the user can assemble the assembly assembly according to the position of the desired power output, breaking the problem that conventional assembled electric toys generally have two-end or symmetrical power outputs and have limited assembly diversity. The present invention improves the assembly diversity of the assembled robot toy of this embodiment, stimulates children's imagination and creativity in assembly, and increases the fun of the toy. In addition, by utilizing a solar panel, when the user places the assembled robot toy of this embodiment under sunlight, the solar panel can be used to convert light energy into electrical energy and transmit it to the motor. The motor is driven by the current, thereby, in conjunction with the assembly assembly, the gear box and the head component can be driven to move. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.
[0023] Figure 1 It is a three-dimensional diagram of the utility model;
[0024] Figure 2 This is a schematic diagram of the head component of the utility model being located on top of the gear box;
[0025] Figure 3 This is a schematic diagram of the head component of the utility model located at the front end of the gear box;
[0026] Figure 4 This is a partially exploded view of the present invention with the assembly components removed;
[0027] Figure 5 This is an exploded view of the head component of the utility model;
[0028] Figure 6 This is a structural diagram of the face shell of the utility model;
[0029] Figure 7 This is a partial exploded view of the head component of the present invention;
[0030] Figure 8 This is an assembly diagram of the gear set, motor, and transmission rod of the utility model installed on the second housing;
[0031] Figure 9 This is an exploded view of the gear box of the utility model with the reinforcement cover removed;
[0032] Figure 10 This is an assembly diagram of the motor and part of the gear set of the utility model installed on the second housing;
[0033] Figure 11 This is an assembly drawing of the gear box of the utility model without the first housing and the second housing;
[0034] Figure 12 This is a schematic diagram of the gear box of the present utility model;
[0035] Figure 13 This is a partial exploded view of the gear box of the present invention;
[0036] Figure 14 This is the circuit principle block diagram of this utility model. DETAILED DESCRIPTION
[0037] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0038] Refer to the attached Figure 1-14 , an assembled robot toy in an embodiment of the utility model.
[0039] Refer to the attached Figure 1 and attached Figure 9 The assembled robot toy includes a power supply module 11, a gear box 2, a rod 202, a head component 1 detachably mounted on the gear box 2, and an assembly component 3. The gear box 2 includes a motor 26, a first gear 25, and a transmission gear set 200. The power supply module 11 is electrically connected to the motor 26 and is used to supply power to the motor 26. The first gear 25 is disposed on the rotating shaft of the motor 26. The transmission gear set 200 includes a second gear 24 meshing with the first gear 25. The number of teeth on the first gear 25 is smaller than that on the second gear 24. The rod 202 is connected to the second gear 24. The assembly component 3 is connected to the transmission gear set 200 and / or the rod 202. The rod 202 is configured to rotate when driven by the motor 26 through the first gear 25 and the transmission gear set 200. At least a portion of the assembly component 3 is configured to move when the transmission gear set 202 and / or the rod 202 rotate, thereby driving the transmission gear box 2 and the head component 1 to move. The power supply module 11 includes a solar panel for converting light energy into electrical energy. The solar panel is electrically connected to the motor 26 .
[0040] This embodiment configures a detachable head component 1 and assembly assembly 3 on a gear box 2. The head component 1 serves as the robot's head, the assembly assembly 3 is a toy-shaped component, and the rod 202 and transmission gear set 200 serve as power outputs. This allows users to assemble the assembly assembly 3 according to the desired power output location. This overcomes the limitations of conventional assembled electric toys, which typically have two-end or symmetrical power outputs, resulting in assembly diversity. This embodiment enhances the assembly diversity of the assembled robot toy, stimulates children's imagination and creativity, and increases the toy's fun. Furthermore, utilizing a solar panel, when a user places the assembled robot toy in this embodiment under sunlight, the solar panel can be used to convert light energy into electrical energy and transmit it to the motor 26. The motor 26 is driven by this current, thereby, in conjunction with the assembly assembly 3, driving the gear box 2 and head component 1 to move.
[0041] The power supply module 11 can be externally mounted on the outside of the assembled robot toy in this embodiment, or the solar panel can be disposed on one of the head component 1 , the assembly component 3 , and the gear box 2 .
[0042] In one embodiment, the solar panel is used to convert light energy into electrical energy and transmit the electrical energy to the motor 26. The motor 26 receives the electrical energy transmitted by the solar panel and drives itself. That is, when the toy of this embodiment is not placed under the sun, there is no electrical energy to drive the motor 26 to work, that is, the motor 26 does not work.
[0043] In one embodiment, referring to the attached Figure 8-11Specifically, the number of teeth of the first gear 25 is smaller than the number of gears of the second gear 24 , so that the rotation speed of the rod 202 is smaller than the rotation speed of the motor 26 , thereby controlling the movement speed of the assembly component 3 .
[0044] Refer to the attached Figure 8-11 In one embodiment, the rod 202 includes a first rotating rod 28 and a second rotating rod 274, with the second gear 24 disposed on the first rotating rod 28. The transmission gear set 200 includes a third gear 237 disposed on the first rotating rod 28, a fourth gear 236 and a fifth gear 235 disposed on the second rotating rod 274, and a sixth gear 234 meshing with the fifth gear 235. The sixth gear 234 is disposed on the first rotating rod 28, the fifth gear 235 is connected to the fourth gear 236, the third gear 237 meshes with the fourth gear 236, the fifth gear 235 meshes with the sixth gear 234, and the sixth gear 234 meshes with the fifth gear 235. The number of teeth on the third gear 237 is smaller than that on the fourth gear 236. When driven by the motor 26, the first rotating rod 28 rotates through the transmission of the first gear 25 and the second gear 24. The third gear 237 is driven to rotate when the first rotating rod 28 rotates. The fourth gear 236 is driven to rotate when the third gear 237 rotates. The fifth gear 235 is driven to rotate when the fourth gear 236 rotates. The sixth gear 234 is driven to rotate when the fifth gear 235 rotates. The first rotating rod 28 is driven to rotate when the fifth gear 235 rotates. The assembly 3 is configured to move when the first rotating rod 28 or the sixth gear 234 rotates, so that the power output by the motor 26 is transmitted from the first rotating rod 28 or the sixth gear 234 to the assembly 3. The number of teeth on the fifth gear 235 is smaller than that on the sixth gear 234. The first rotating rod 28 is connected to the assembly 3 to further reduce the speed output by the motor 26.
[0045] In one embodiment, the transmission gear set 200 further includes a seventh gear 233 and an eighth gear 232, which are mounted on the first rotating rod 28. The seventh gear 233 is a spur gear, and the eighth gear 232 is a spur gear. The gear box 2 has a first clearance hole 217 at positions corresponding to the seventh gear 233 and the eighth gear 232. The seventh gear 233 and the eighth gear 232 are driven to rotate when the first rotating rod 28 rotates. The assembly 3 is connected to one or more of the first rotating rod 28, the seventh gear 233, and the eighth gear 232. The first clearance hole 217 facilitates the connection of the seventh gear 233 and the eighth gear 232 to the assembly 3, thereby outputting power from the motor 26. The diameter of the seventh gear 233 is smaller than that of the eighth gear 232, allowing users to assemble the assembly 3 in different shapes.
[0046] In one embodiment, the rod member 202 further includes multiple transmission rods 21 connected to the assembly 3. At least two transmission rods 21 are disposed at either end of the first rotating rod 28. The transmission rods 21 connected to the first rotating rod 28 at least partially extend into the gear box 2. The gear box 2 has second escape holes 222 defined at locations corresponding to the transmission rods 21. The transmission rods 21 located at either end of the first rotating rod 28 allow the motor's power to be output from both sides of the gear box 2. Specifically, in this embodiment, the second escape hole 222 and the first escape hole 217 are located on two different sides of the gear box 2.
[0047] In other embodiments, the first rotating rod 28 can also be divided into two unconnected rods, that is, the second gear 24 and the third gear 237 are located on the same rod, and the fourth gear 236 and the fifth gear 235 are located on another rod. Whether the second gear 24, the third gear 237, the fourth gear 236, and the fifth gear 235 are located on the same rod is not specified herein. However, in this embodiment, to facilitate product assembly and production, the first rotating rod 28 is a continuous rod, and the second gear 24, the third gear 237, the fourth gear 236, and the fifth gear 235 are all located on the first rotating rod 28.
[0048] In one embodiment, the gear box 2 includes a first housing 22 and a second housing 27 detachably connected to the first housing 22 to form a first mounting cavity 273, a second mounting cavity 272, and a second avoidance hole 277. The motor 26 is mounted in the first mounting cavity 273, and the gear assembly 200 is mounted in the second mounting cavity 272. The first housing 22 and / or the second housing 27 are provided with a wiring hole 276 that is electrically connected to the first mounting cavity 273. The detachability of the first and second housings 22 and 27 facilitates the user's installation of the gear assembly 200, motor 26, and transmission rod 21 within the first and second housings 22 and 27, completing the assembly of the gear box 2. This allows the user to understand the mechanical principles of how the motor 26 drives the gear assembly 200 and transmission rod 21, thereby expanding their understanding. Furthermore, the wiring hole 276 facilitates the routing of wires electrically connecting the power supply module 11 in the head component 1 to the motor 26, thereby electrically connecting the motor 26 and the power supply module 11.
[0049] In the above embodiment, a rotating hole 2741 is provided on the second mounting cavity 272. The gear set 200 also includes: a second rotating rod 274 with one end passing through the fourth gear 236 and the fifth gear 235 and then placed in the rotating hole 2741, and a limiting cap 29 provided at the other end of the second rotating rod 274. The seventh gear 233 is located between the fourth gear 236 and the limiting cap 29. Therefore, when assembling the robot toy in this embodiment, one end of the second rotating rod 274 can be placed in the rotating hole 2741 and the motor 26 can be placed in the first mounting cavity 273, and then the independent transmission rod 21 can be placed in the second avoidance hole 222, and then one end of the first rotating rod 28 can be inserted in the middle of the transmission rod 21, and then the first injection molded part can be put on the first rotating rod 28, the third injection molded part can be put on the second rotating rod 274, and the sixth gear 234 can be put on. On the first rotating rod 28, the limiting cap 29 is inserted into the end of the second rotating rod 274 away from the rotating hole 2741, and the second injection molded part is placed on the first rotating rod 28. The second gear 24, the fourth gear 236, the sixth gear 234 and the limiting cap 29 are used to limit each other, so that the second rotating rod 274 can be limited in the rotating hole 2741. When the first shell 22 is connected to the second shell 27, the two transmission rods 21 are placed through the second avoidance hole 277 to completely limit the entire gear set 200 and the motor 26, thereby realizing the installation of the gear box 2.
[0050] In one embodiment, referring to the attached Figure 13 The first housing 22 has a plurality of first plug-in terminals 221 protruding from a side opposite the second housing 27. The second housing 27 has a plurality of first plug-in slots 271 formed on a side opposite the first housing 22. The first plug-in terminals 221 are placed in the first plug-in slots 271 to connect the first housing 22 and the second housing 27. The gear box 2 also includes a plurality of reinforcing covers 20, each of which has a plurality of first latching holes 201. A plurality of first latches 275 are provided on both sides of the first housing 22 and the second housing 27. The first latches 275 engage with the first latching holes 201 to secure the reinforcing covers 20 to the first and second housings 22, 27. The reinforcing covers 20 can strengthen the connection between the first and second housings 22, 27, preventing the first and second housings 22, 27 from separating. In this embodiment, the first housing 22 and the second housing 27 are connected in the left and right directions. A gear box 2 has two reinforcing cover plates 20, and the reinforcing cover plates 20 are located on the front and rear sides of the gear box 2. In other embodiments, a gear box 2 may have four reinforcing cover plates 20, and they may be located on the four side walls of the gear box 2.
[0051] In other embodiments, the first shell 22 may be directly connected to the second shell 27 in a detachable manner by means of snaps or screws, and the manner of connecting the first shell 22 and the second shell 27 is not limited herein.
[0052] In one embodiment, referring to the attached Figure 1 The head component 1 is rotatably connected to the gear box 2, and the head component 1 is located at one of the top, front, and rear positions of the gear box 2. This improves the diversity of the assembly position of the head component 1, and the user can adjust the position of the head component 1 according to the assembled assembly component 3, thereby increasing the user's creativity in assembling toys.
[0053] In the above embodiments, referring to the attached Figure 4 A first connecting rod 6 and a second connecting rod 5 are provided between the head component 1 and the gear box 2, and the first connecting rod 6 is rotatably connected to the second connecting rod 5. The first connecting rod 6 is configured to drive the head component 1 to rotate along the central axis of the first connecting rod 6 under the action of an external force, and the second connecting rod 5 is configured to drive the head component 1 to rotate in a direction perpendicular to the central axis of the first connecting rod 6 under the action of an external force. For example, when the head component 1 is mounted on the top surface of the gear box 2, the head component 1 can be rotated along the Z axis through the first connecting rod 6, and the head component 1 can be rotated along the X axis through the second connecting rod 5. For example, when the head component 1 is mounted on the front side wall of the gear box 2, the head component 1 can be rotated along the Y axis through the first connecting rod 6, and the head component 1 can be rotated along the X axis through the second connecting rod 5, so as to increase the angle between the head component 1 and the gear box 2, thereby increasing the fun of assembling the robot toy in this embodiment.
[0054] It should be noted that the Z axis is the direction of the upper and lower ends of the gear box 2 , the X axis is the front and rear direction of the gear box 2 , and the Y axis is the left and right direction of the gear box 2 .
[0055] For details, please refer to the attached Figure 4 The first connecting rod 6 includes: a first limiting plate 62, a fourth clamping block 64 arranged at the bottom of the first limiting plate 62, and a third ear seat 61 arranged at the top of the first limiting plate 62. The two side protrusions of the third ear seat 61 form a first rotating part 65. The fourth clamping block 64 is a cylinder and the bottom protrusion of its circumference forms an annular clamping block 63. The bottom protrusion of the head component 1 forms a fourth ear seat 141, and the two side protrusions of the fourth ear seat 141 form a second rotating part 142. The front and rear side walls and the top surface of the gear box 2 are all provided with a head assembly hole 278 at the center position. The second connecting rod 5 includes a left connecting rod 52 and a right connecting rod 51. The upper and lower ends of the left connecting rod 52 and the right connecting rod are both provided with an axial hole 53. The fourth clamping block 64 is inserted into the head assembly hole 278. The annular clamping block 63 and the first limiting plate 62 are limited at both ends of the head assembly hole 278 to realize the rotational connection between the first connecting rod 6 and the gear box 2. The axial holes 53 at the upper and lower ends of the left connecting rod 52 and the right connecting rod are respectively mounted on the second rotating part 142 and the first rotating part 65, and the head component 1 is connected to the first connecting rod 6 through the second connecting rod 5, and the head component 1 can be rotated in a direction perpendicular to the central axis of the first connecting rod 6 under the action of external force, so that the user can adjust the rotation angle of the head component 1 conveniently.
[0056] Of course, in other embodiments, the head component 1 may also be connected to the gear box 2 via the first connecting rod 6 and the second connecting rod 5 in sequence, that is, the head assembly hole 278 is opened at the bottom of the head component 1, and the second clamping block 3212 of the first connecting rod 6 is inserted into the bottom of the head component 1. The fourth ear seat 141 is provided on the gear box 2, and the first connecting rod 6 and the gear box 2 are connected via the second connecting rod 5, so that the gear box 2 can rotate in multiple directions. The positional relationship and structure of the first connecting rod 6 and the second connecting rod 5 are not limited here. For example, the second connecting rod 5 may also include only the left connecting rod 52.
[0057] Specifically, in one embodiment, refer to the attached Figure 5-7 , the solar panel is arranged on the head component 1, and the head component 1 includes: a bottom shell 14, a surface shell 17 that is detachably connected to the bottom shell 14 and forms a third mounting cavity 144 and two fourth mounting cavities 145 with the bottom shell 14, and two conductive springs 16 respectively arranged in the two fourth mounting cavities 145. The two fourth mounting cavities 145 are arranged at intervals and are both conductive with the third mounting cavity 144. The surface shell 17 and / or the bottom shell 14 are provided with a third avoidance hole 145 at the position corresponding to the fourth mounting cavity 145. The solar panel is arranged in the third mounting cavity 144, and the surface shell 17 is provided with a display port 171 at the position corresponding to the solar panel so that the solar panel can be irradiated with light energy. Two conductive wires 4 are electrically connected to the motor 26, and a conductive sheet 41 is provided at the end of the conductive wire 4, and the conductive sheet 41 is plugged into the conductive spring 16. The third avoidance hole 145 can be used to facilitate the insertion of the conductive sheet 41 onto the conductive spring 16 . The conductive sheet 41 and the conductive spring 16 can be used to facilitate user assembly and electrical connection of the solar panel and the motor 26 .
[0058] In one embodiment, the conductive spring 16 is welded to the solar panel at the factory. The bottom of one end of the housing 17 extends downwardly to form a second plug-in end 174, and the bottom of the other end extends downwardly to form a plurality of spaced first stoppers 173. The bottom of the first stoppers 173, opposite the second plug-in end 174, has a raised second stopper 172.
[0059] The bottom shell 14 is provided with a second insertion groove 147, which is longer than the second insertion end 174. Therefore, after the solar panel and conductive spring 16 are installed in the third and fourth installation cavities 144 and 145, the front end of the bottom shell 14 can be placed above the second stopper 172, with the second insertion end 174 placed in the second insertion groove 147. The fact that the length of the second insertion groove 147 is longer than that of the second insertion end 174 facilitates the placement of the second insertion groove 147. The head component 1 also includes a cover 12 having a plurality of accommodating grooves 121. The bottom shell 14 is connected to the front shell 17, forming first engaging ends 13 on both sides thereof. The first engaging ends 13 are placed in the accommodating grooves 121. The cover 12 improves the stability of the connection between the bottom shell 14 and the front shell 17.
[0060] It should be noted that the maximum power output of the solar panel, which converts light energy into electrical energy, must not exceed the maximum power supported by motor 26 to prevent damage to motor 26 when the solar panel is directly connected to the motor 26. Although the voltage output by the solar panel is unstable in this manner, it does not affect the drive of motor 26. Of course, to ensure a stable output voltage from the solar panel, a circuit board can be placed between the solar panel and motor 26, where the circuit board is located within gear box 2 or head component 1.
[0061] In other embodiments, the solar panel can also be directly adhered to the upper surface of the head component 1 or embedded in the upper surface of the head component 1, and the conductive sheet 41 and the conductive spring 16 can also be replaced by a connector, the power supply module 11 can also use a battery, and the bottom shell 14 and the surface shell 17 can also be directly connected in a detachable manner through screws or snaps.
[0062] In one embodiment, two second cylinders 15 are formed at the bottom of the bottom shell 14 , and the two second cylinders 15 constitute two eyes of the head component 1 . The gear box 2 can be the robot body, and cooperates with the assembly component 3 to form a robot.
[0063] Refer to the attached Figure 14 In one embodiment, the assembled robot toy further includes a control module 004 and a battery 005. The battery 005 is disposed on the head component 1 or the gear box 2. The solar panel, the motor 26, and the battery 005 are all electrically connected to the control module 004. The solar panel is used to convert light energy into electrical energy and transmit the electrical energy to the control module 004. The control module 004 is used to receive the electrical energy, process the electrical energy, and directly drive the motor 26 and / or store the electrical energy in the battery 005.
[0064] Battery 005 stores electrical energy, allowing this embodiment to drive motor 26 even when not exposed to sunlight, thereby driving gear box 2 and assembly 3. Control module 004 filters and stabilizes the voltage transmitted by the solar panel before transmitting it to motor 26 and / or battery 005. This ensures stable charging of battery 005 and prevents damage from unstable voltage. Alternatively, a stable voltage is output to motor 26, ensuring stable operation and preventing damage from excessively high voltage.
[0065] In this embodiment, the assembled robot toy further includes a control switch 001 electrically connected to a control module 004. The control module 004 is further configured to drive the motor 26 when the control switch 001 is operated. When the user desires movement of the toy, the control switch 001 is operated. The control module 004 detects the electrical signal from the control switch 001 and drives the motor 26. During this process, if the toy is in the sun, the control module 004 directly processes the electrical energy transmitted by the solar panel and then drives the motor 26. If the toy is not in the sun or there is insufficient sunlight, the battery 005 supplies power to the control module, which then uses this electrical energy to drive the motor 26.
[0066] Specifically, the control switch 001 can be a dial switch, a button or a touch switch, and the control switch 001 can be set on the gear box 2 or the head component 1. In the best embodiment, the control switch 001 and the control module 004 are both set on the same component.
[0067] In one embodiment, the assembled robot toy may further include a wireless module 002 electrically connected to the control module 004. The wireless module 002 is configured to receive wireless signals from an external device and transmit them to the control module 004. The control module 004 is configured to receive the wireless signals and drive the motor 26 to operate, thereby wirelessly driving the toy and facilitating user play. Specifically, the wireless module 002 may be disposed on the gear box 2 or the head component 1. The wireless module 002 may be an infrared module, a Bluetooth module, a 2.4G module, a 2G module, a 3G module, a 4G module, or the like. Preferably, the control switch 001, the wireless module 002, and the control module 004 are all disposed on the same component.
[0068] In one embodiment, the assembly robot toy further includes an audio player 006 electrically connected to the control module 004. The control module 004 activates the audio player 006 to play audio when the control switch 001 is operated or a wireless signal is received. It should be understood that the wireless module 002 can also be used to receive audio data transmitted from an external device and play it through the audio player 006, thereby enabling the toy of this embodiment to play audio and enhancing its practicality and playability. Specifically, the audio player 006 is a speaker, which is disposed on the head component 1 or the gear box 2.
[0069] In one embodiment, the assembled robot toy further includes a voice module 003 electrically connected to a control module 004. Voice module 003 can be used to store audio data. When control switch 001 is operated or a wireless signal is received, control module 004 drives audio player 006 to play the corresponding audio data, thereby making the toy of this embodiment emit sound and enhancing the toy's entertainment value. Specifically, voice module 003 and control module 004 are provided on the same component.
[0070] In one embodiment, the assembly robot toy further includes a display 007 electrically connected to the control module 004. The display 007 is configured to display data transmitted by the control module 004. The displayed data includes at least the power level of the battery 005, so that the user can understand the power level of the battery 005. Specifically, the display 007 can be a display screen or a digital display.
[0071] In the embodiment with the conductive sheet 41 and the conductive spring 16, the assembled robot toy further includes a circuit board 008. The control module 004, wireless module 002, and voice module 003 are all integrated on the circuit board 008. The circuit board 008, audio player 006, battery 005, display 007, and control switch 001 are all located on the head component 1, electrically connecting the wireless module 002, voice module 003, battery 005, audio player 006, display 007, and control switch 001 to the control module 004. The conductive spring 16 can be soldered to the circuit board 008, or the conductive spring 16 can be electrically connected to the circuit board 008 via wires. This allows the motor 26 to be electrically connected to the control module 004 on the circuit board 008 when the conductive sheet 41 is plugged into the conductive spring 16. This facilitates plugging the conductive sheet 41 into the conductive spring 16, and the use of the conductive sheet 41 and the conductive spring 16 facilitates user assembly and electrical connection between the solar panel and the motor 26.
[0072] It should be noted that "and / or" in the full text includes three solutions. Taking A and / or B as an example, it includes technical solution A, technical solution B, and technical solution that satisfies both A and B. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the fact that ordinary technicians in this field can implement it. When the combination of technical solutions is mutually contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by this utility model.
[0073] The above description is only a preferred embodiment of the present invention and does not limit the patent scope of the present invention. All equivalent structural transformations made by using the contents of the present invention specification and drawings under the utility model concept, or direct / indirect application in other related technical fields are included in the patent protection scope of the present invention.
Claims
1. An assembled robot toy, characterized in that: It includes a power supply module, a gear box, a rod, and a head component and an assembly component that are detachably arranged on the gear box; The gear box includes a motor, a first gear and a transmission gear set, wherein the first gear is disposed on a rotating shaft of the motor, the transmission gear set includes a second gear meshing with the first gear, the number of teeth of the first gear is smaller than the number of teeth of the second gear, the rod is connected to the second gear, and the assembly component is connected to the transmission gear set and / or the rod; The rod is configured to rotate through the transmission of the first gear and the transmission gear set when driven by the motor, and at least part of the assembly component is configured to move when the transmission gear set and / or the rod rotates and drive the gear box and the head component to move; The power supply module includes a solar panel for converting light energy into electrical energy, and the solar panel is electrically connected to the motor; The assembled robot toy also includes a control module and a battery. The solar panel, motor, and battery are all electrically connected to the control module. The solar panel is used to convert light energy into electrical energy and transmit the electrical energy to the control module. The control module is used to receive the electrical energy, process the electrical energy, and then store it in the battery. The assembled robot toy further includes a control switch electrically connected to the control module, the control module further configured to drive the motor when the control switch is operated; and / or further includes a wireless module electrically connected to the control module, the wireless module configured to receive a wireless signal from an external device and transmit the signal to the control module, the control module configured to receive the wireless signal and drive the motor to operate; The assembled robot toy further includes an audio player electrically connected to the control module; the control module drives the audio player to play audio when the control switch is operated or a wireless signal is received; The assembled robot toy also includes a voice module electrically connected to the control module, the voice module is used to store audio data, and the control module drives the audio player to play the audio in the audio data when the control switch is operated or a wireless signal is received.
2. The assembled robot toy according to claim 1, characterized in that: The solar panel is arranged in one of the head component, the assembly component, and the gear box. The solar panel is used to convert light energy into electrical energy and transmit the electrical energy to the motor. The motor receives the electrical energy transmitted by the solar panel and drives.
3. The assembled robot toy according to claim 1, characterized in that: The battery is arranged on the head component or the gear box; the control module is used to receive electric energy and directly drive the motor after processing the electric energy.
4. The assembled robot toy according to claim 3, characterized in that: It also includes a display electrically connected to the control module, and the display is used to display display data transmitted by the control module, and the display data at least includes the battery power.
5. The assembled robot toy according to claim 4, characterized in that: The rod member includes a first rotating rod and a second rotating rod, and the second gear is arranged on the first rotating rod; The transmission gear set includes: a third gear provided on the first rotating rod, a fourth gear and a fifth gear provided on the second rotating rod, and a sixth gear meshed with the fifth gear; the sixth gear is provided on the first rotating rod, the fifth gear is connected to the fourth gear, the third gear is meshed with the fourth gear, the fifth gear is meshed with the sixth gear, and the sixth gear is meshed with the fifth gear, the number of teeth of the third gear is smaller than the number of teeth of the fourth gear, the number of teeth of the fifth gear is smaller than the number of teeth of the sixth gear, and the first rotating rod is connected to the assembly component; The first rotating rod is rotated by the transmission of the first gear and the second gear when driven by the motor. The third gear is driven to rotate when the first rotating rod rotates. The fourth gear is driven to rotate when the third gear rotates. The fifth gear is driven to rotate when the fourth gear rotates. The sixth gear is driven to rotate when the fifth gear rotates. The first rotating rod is driven to rotate when the fifth gear rotates. The assembly component is configured to move when the first rotating rod or the sixth gear rotates.
6. The assembly robot toy according to claim 5, characterized in that: The transmission gear set further includes a seventh gear and an eighth gear, which are disposed on the first rotating rod. The seventh gear is a spur gear, and the eighth gear is a spur gear. The gear box is provided with a first avoidance hole at positions corresponding to the seventh gear and the eighth gear. Both the seventh gear and the eighth gear are driven to rotate when the first rotating rod rotates. The diameter of the seventh gear is smaller than the diameter of the eighth gear. The assembly component is connected to one or more of the first rotating rod, the seventh gear, and the eighth gear. The rod member also includes multiple transmission rods connected to the assembly component, at least two of the transmission rods are arranged at both ends of the first rotating rod, the transmission rod connected to the first rotating rod at least partially extends into the gear box, and the gear box is provided with a second avoidance hole at the position corresponding to the transmission rod.