Toy
The toy mechanism allows players to selectively stop a rotating body at a desired image by using a first operator to initiate rotation and a second operator to control the visible area, addressing the inconvenience of random stopping in conventional toys.
Patent Information
- Application Number
- JP2024105108
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-06-28
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2044-06-28
AI Technical Summary
Conventional toys with rotating bodies randomly stop at predetermined positions, requiring players to continuously operate until a desired image aligns, which is cumbersome.
A toy mechanism featuring a rotating body with multiple marked areas, a cover member with a window, a rotating plate, a first operator to initiate rotation, a stopping member to halt rotation, and a second operator to control the visible area, allowing players to consciously select and stop at a desired image.
Enables the toy to consistently stop at a predetermined picture after rotation, providing a novel mechanism for controlled image presentation.
Smart Images

Figure 2026006255000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a toy having a rotating body. [Background technology]
[0002] Conventionally, toys have been known that have a rotating body on which a mark including a picture or a letter is printed, and when the rotating body stops, a predetermined effect is given to the player based on the picture or the mark including a letter displayed in a window. Patent Document 1 proposes a mechanism for a toy that rotates a rotating body, in which when the rotating body stops rotating, the rotating body stops at a position where an arbitrary picture coincides with the window. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-273788 Summary of the Invention [Problem to be solved by the invention]
[0004] In the above-mentioned conventional technology, any image randomly stops at a predetermined position. On the other hand, some players want to output a predetermined effect by stopping a desired image at a predetermined position. However, in the case of a structure in which images stop randomly, it is necessary to continue operating until the desired image stops, which is troublesome.
[0005] The present invention aims to provide a novel mechanism for stopping a predetermined picture at a predetermined position after rotating a rotating body, for example, in a toy having a rotating body on which multiple pictures are arranged. [Means for solving the problem]
[0006] The present invention is, for example, a toy comprising a rotating body including a plurality of areas each having a different marking, a cover member covering the rotating body and having a window portion that makes any one of the plurality of areas visible when the rotating body is stopped, a rotating plate that is arranged coaxially with the rotation axis of the rotating body and is rotatable together with the rotating body, a first operator that starts the rotation of the rotating body and the rotating plate, a stopping member that stops the rotation of the rotating body by stopping the rotating plate, and a second operator that rotates the rotating body when the rotating plate is stopped by the stopping member, wherein after operating the second operator, the area of the plurality of areas of the rotating body that is visible from the window portion coincides with the area that is visible from the window portion when the rotating body is stopped by the stopping member after subsequent operation by the first operator. [Effects of the Invention]
[0007] According to the present invention, in a toy having a rotating body on which multiple pictures are arranged, a novel mechanism can be provided that stops a predetermined picture at a predetermined position after the rotating body is rotated. [Brief explanation of the drawings]
[0008] [Figure 1] 1A is a front view of a toy according to an embodiment, and FIG. 1B is an enlarged view of a partial region of the toy. [Figure 2] 10A and 10B are diagrams illustrating how a lever of a toy according to an embodiment is operated; [Figure 3] FIG. 10 is a diagram illustrating how an operating unit of a toy according to an embodiment is operated; [Figure 4] 1A is a front view of a region of a toy having a rotating body according to an embodiment, and FIG. 1B is an exploded view of the region; [Figure 5] 1 is a diagram showing a clutch mechanism of a toy according to an embodiment; [Figure 6] 1 is a cross-sectional view of a portion of a toy according to an embodiment; [Figure 7] 10A and 10B are diagrams showing details of a rotating plate and a stop member of a toy according to an embodiment. [Figure 8] FIG. 10 is a diagram showing a stopping mechanism for a rotating body of a toy according to an embodiment; DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, the embodiments will be described in detail with reference to the accompanying drawings. Note that the following embodiments do not limit the scope of the invention as claimed, and not all combinations of features described in the embodiments are necessarily essential to the invention. Two or more of the features described in the embodiments may be arbitrarily combined. Furthermore, the same reference numerals are used for the same or similar components, and redundant explanations will be omitted.
[0010] <Toy appearance configuration> An example of the external configuration of a toy 10 according to this embodiment will be described with reference to Figure 1. Figure 1(a) shows the external front view of the toy 10. Figure 1(b) is a front view in which a cover member of the toy 10 has been removed and a partial area is enlarged. Note that the x, y, and z arrows indicate the upward, left, and forward directions of the model toy, respectively, and this also applies to the other figures.
[0011] As shown in FIG. 1(a), the toy 10 according to this embodiment is a toy including buckles 100, 106, and a belt 105. The buckle 100 includes a first operator 101 such as a lever, a window 107 through which a mark on the outer peripheral surface of a rotor provided inside the buckle 100 can be seen, and a second operator such as a rotary dial. The window 107 is formed in a cover member of the buckle 100. The buckles 100, 106 are configured to be detachable from each other. The toy 10 according to this embodiment is configured as buckles 100, 106 attached to a belt 105, but is not limited thereto and may be configured as any other toy.
[0012] FIG. 1(b) shows an enlarged view of the buckle 100 with the cover member removed. Inside the buckle 100, in addition to the rotating body 102, a gear box 104 is provided. The rotating body 102 is a cylindrical member, and a rotation shaft inserted through the center is connected to the gear box 104. The outer circumferential surface of the rotating body 102 is divided into multiple areas (e.g., six areas), and each area is marked with a different mark. Here, the mark includes at least one of a picture, a letter, a symbol, and the like. The gear box 104 converts power generated by operating the first operating element 101 into rotational force and transmits it to the rotation shaft of the rotating body 102, thereby rotating the rotating body 102.
[0013] <1st control> The operation of the toy 10 when the first operating element 101 according to this embodiment is operated will be described with reference to Fig. 2. Fig. 2(a) to Fig. 2(c) each show a perspective view of the buckle 100 with the cover member removed.
[0014] FIG. 2(a) shows the state in which the rotor 102 is stopped. The outer circumferential surface of the rotor 102 is divided into a plurality of areas, each with a different mark. In FIG. 2(a), the mark on the rotor 102 visible through the window 107 is "ABC." Each area is specified to stop at a predetermined position in accordance with the position of the window 107. The specific configuration of the specifying unit will be described later.
[0015] FIG. 2(b) shows a state in which the first operator 101 is operated by tilting it in the direction of the arrow (z direction) in the figure. When the first operator 101 is operated, power is converted into rotational force by the gearbox 104 and transmitted to the rotation shaft of the rotating body 102. This causes the rotating body 102 to rotate in the direction of the arrow. The first operator 101 is biased by a spring (not shown), and the operated first operator 101 is gradually returned to its original position by the biasing force of the spring, as shown in FIG. 2(c). When the first operator 101 returns to its original position, the rotation of the rotating body 102 is stopped by a stopping mechanism. The stopping mechanism will be described in detail later. In the toy 10, when the rotation of the rotating body 102 stops, a performance output is performed in accordance with a mark (e.g., a picture) visible through the window 107. The performance output is performed, for example, by at least one of sound output from a speaker (not shown) and light output from a light-emitting element such as an LED (not shown).
[0016] Furthermore, according to this embodiment, the mark "ABC" visible through the window 107 in the stopped state shown in FIG. 2(a) matches the mark "ABC" visible through the window 107 when the rotating body 102, which has been rotated by operating the first operating element 101, stops as shown in FIG. 2(c). In other words, the marks visible through the window 107 of the stopped rotating body 102 before and after operating the first operating element 101 match. Furthermore, the player can change the mark visible through the window 107 by operating the second operating element, which will be described later. This allows the player to stop the rotating body 102 at a desired mark, and consciously select and control the presentation output.
[0017] <Second controller> The operation of the toy 10 when the second operating element 103 according to this embodiment is operated will be described with reference to Fig. 3. Fig. 3(a) to Fig. 3(c) each show a perspective view of the buckle 100 with the cover member removed.
[0018] FIG. 3(a) shows a state in which the rotor 102 is stopped, and shows a state in which a predetermined mark "ABC" is visible through the window 107. FIG. 3(b) shows a state in which the second operator 103 is rotated in the direction of the arrow from the stopped state of FIG. 3(a). The rotation of the second operator 103 is transmitted to the rotation axis of the rotor 102, and the rotor 102 also rotates in the direction of the arrow. In FIG. 3(b), the rotor 102 rotates, and then, in the stopped state, a predetermined mark "123" is visible through the window 107.
[0019] FIG. 3(c) shows a state in which the second operator 103 is further rotated in the direction of the arrow from the stopped state of FIG. 3(b). In FIG. 3(c), the rotating body 102 rotates, and then, in the stopped state, a predetermined mark "???" becomes visible through the window 107. In this way, in the toy 10 according to this embodiment, when the rotating body 102 is in the stopped state, by rotating the second operator 103, the rotating body 102 can be rotated and the mark visible through the window 107 can be changed. Therefore, the player can select and set a desired mark in a position visible through the window 107.
[0020] According to this embodiment, the mark set at a position visible through the window 107 by operating the second operator 103 becomes the mark visible through the window 107 when the rotating body 102, which has been rotated by operating the first operator 101, stops, as described with reference to FIG. 2 . That is, the marks visible through the window 107 of the stopped rotating body 102 before and after operating the first operator 101 match. In other words, after operating the second operator 103, the region of the multiple regions of the rotating body 102 visible through the window 107 matches the region visible through the window 107 when the rotation stops after operation with the first operator 102. This allows the player to stop the rotating body 102 at a desired mark, and consciously select and control the presentation output.
[0021] <Exploded view> The exploded structure of the buckle 100 of the toy 10 according to this embodiment will be described with reference to Fig. 4. Fig. 4 shows (a) a front view and (b) an exploded front view of a portion of the structure of the buckle 100.
[0022] In addition to the first operating element 101, the rotating body 102, the second operating element 103, and the gear box 104, the buckle 100 is configured to include a rotating shaft 401, a release member 402, a part 403, a rotating plate 411, and a stop member 420. The release member 402 is configured to include a push-up portion 424 and a connecting portion 425. As shown by the dashed dotted line, the rotating shaft 401 is inserted from one end into a hollow portion inside the rotating body 102, and is rotatably connected from the other end to one shaft extending from the gear box 104, passing through the hollow portion of the release member 402.
[0023] Furthermore, part 403 is connected to the other shaft that passes through the inside of first operator 101 and second operator 103 and extends from gear box 104. Therefore, part 403 transmits the rotational operation of second operator 103 to rotation shaft 401 through the shaft of gear box 104.
[0024] A rotating plate 411 is provided on the other end of the rotating shaft 401. The rotating plate 411 rotates in conjunction with the rotation of the rotating shaft 401. A stopping member 420 collides with and engages with the rotating plate 411, thereby stopping and locking the rotation of the rotating shaft 401. The stopping member 420 includes a tip portion 421, a receiving portion 422, and a spring 423 (second spring). The stopping member 420 is provided so as to be movable in the vertical direction, and is arranged so that the tip portion 421 collides with a part of the rotating plate 411 when it moves downward. The receiving portion 422 is provided so as to come into contact with the release member 402, and as the release member 402 rotates in conjunction with the operation of the first operating element 101, the receiving portion 422 receives pressure from below and is pushed upward. The spring 423 is biased downward, and has the function of returning the stopping member 420 to its original position after the stopping member 420 (receiving portion 422) is pushed upward against the biasing force.
[0025] The release member 402 includes a push-up portion 424 and a connecting portion 425. As indicated by the two-dot chain line, the release member 402 is connected to the first operating element 101 by inserting the rod-shaped connecting portion 425 into it. Therefore, when the first operating element 101 is operated in the z direction in the figure, the release member 402 rotates in the z direction in conjunction with the first operating element 101. This action causes the push-up portion 424 to push up the receiving portion 422 of the stop member 420, disengaging it from the rotating plate 411 and unlocking the rotating shaft 401. Details will be described later.
[0026] <Clutch mechanism> The clutch mechanism when the second operating element 103 according to this embodiment is operated will be described with reference to Fig. 5. Here, the clutch mechanism according to this embodiment refers to a mechanism of the rotating shaft 401 that transmits the rotational force generated by the rotational operation of the second operating element 103 to some members of the rotating shaft 401 and does not transmit the rotational force to other members of the rotating shaft 401.
[0027] Rotating shaft 401 is configured to include a shaft portion 415, a first member 413, a second member 412, and a spring (first spring) 414. As shown in Fig. 5, shaft portion 415 is a rod-shaped member that is inserted into rotating plate 411 and rotating body 102, and first member 413, second member 412, and spring 414 are inserted into shaft portion 415. Furthermore, rotating plate 411 is connected to second member 412. Note that rotating plate 411 and second member 412 may be formed integrally.
[0028] The first member 413 has defining portions 416, the number of which corresponds to the number of regions of the rotating body 102. In this embodiment, six defining portions 416 are provided. The defining portions 416 have the function of defining the position of the outer circumferential surface of the rotating body 102 through which the rotating shaft 401 is inserted. The second member 412 has recesses (second recesses) 417, the number of which corresponds to the number of defining portions, which fit into the defining portions 416 of the first member 413. More specifically, by fitting the defining portions 416 into the recesses 417, it is possible to align any one of the multiple regions divided into the outer circumferential surface of the rotating body 102 to a position visible from the window portion 107. The spring (first spring) 414 is arranged to bias the first member 413 toward the second member 412. When the first member 413 and the second member 412 are in a stopped state, for example, when neither of the controls is being operated and the rotation of the rotating body 102 is stopped, they are fitted together as shown in FIG. 4(b).
[0029] When the second operating element 103 is rotated while the rotating plate 411 is stopped by the stopping member 420, a rotational force is transmitted to the shaft 415 via the part 403 and the rod portion of the gearbox 104. However, the rotating plate 411 and the second member 412 connected to the rotating plate 411 cannot rotate because their rotation is locked by the tip portion 421 of the stopping member 420. Meanwhile, the shaft 415 and the first member 413 attempt to rotate in the direction of arrow d1 in response to the transmitted rotational force. At that time, a force is generated in the direction opposite to the biasing direction of the spring 414, causing the first member 413 to move slightly in the direction of arrow d2. As a result, the engagement between the defining portion 416 of the first member 413 and the recess 417 of the second member 412 is released by the rotational force, and the shaft 415 and the first member 413 rotate. Since the rotated shaft 415 forms the rotation axis of the rotating body 102, the rotating body 102 also rotates. Thereafter, the rotation stops at a predetermined position (next engagement) due to the biasing force of spring 414 (force in the direction opposite to the arrow direction) and the engagement of determining portion 416 and recess 417. This predetermined position is a position where any of the marks on the outer peripheral surface of rotor 102 can be accurately seen through window 107, thanks to the function of determining portion 416.
[0030] As described above, according to this embodiment, each time the second operating element 103 is turned a predetermined amount, the mark visible through the window 107 among the multiple regions of the rotating body 102 can be switched depending on the clutch mechanism and the engagement between the defining portion 416 and the recess 417. On the other hand, the rotation of the rotating plate 411 and the second member 412 is restricted by the stopping member 420, and therefore they cannot rotate in conjunction with the rotation of the shaft 415. Therefore, according to this embodiment, by operating the second operating element 103, the relative positional relationship between the multiple regions of the rotating body 102 and (the recess 702 of) the rotating plate 411 can be changed.
[0031] <Cross-section> A cross-sectional view of the buckle 100 of the toy 10 according to this embodiment will be described with reference to Fig. 6. As shown in Fig. 6, the rotating body 102 and the rotating plate 411 are arranged coaxially on the rotating shaft 401. Therefore, the rotating body 102 and the rotating plate 411 rotate as the rotating shaft 401 rotates. The rotating body 102 is arranged so as to cover a part of the rotating shaft 401, i.e., a part of the first member 413 and the shaft portion 415. In addition, the gear box 104, the first operator 101, the part 403, and the second operator 103 are connected in this order on the axis of the rotating shaft 401.
[0032] 6 shows a state in which the rotation of the rotary plate 411 is locked by the stop member 420. The stop member 420 is disposed on the upper part of the rotary plate 411 and can move up and down. The push-up part 424 of the release member 402, which rotates in response to the operation of the first operating element 101, pushes up the receiving part 422 of the stop member 420, causing the stop member 420 to move upward. This disengages the tip part 421 of the stop member 420 from the recessed part 702 of the rotary plate 411.
[0033] <Stopping mechanism> The stopping mechanism for the rotating body and rotating plate according to this embodiment will be described with reference to Figures 7 and 8. Figure 7(a) shows the detailed configuration of the rotating plate 411, and Figures 7(b) and (c) show the stopping mechanism using the stopping member 420 of the rotating plate 411. Figures 8(a) and (c) show front views of the buckle 100 with the cover removed. Figures 8(b) and (d) show enlarged perspective views of the portion including the rotating body 102 and rotating plate 411 in Figures 8(a) and (c), respectively.
[0034] 7(a), the rotating plate 411 has a substantially disk-like shape and is provided with a protrusion 701 and a recess (first recess) 702 on its circumference. The recess 702 is formed in a shape that fits the tip portion 421 of the stopping member 420. The protrusion 701 is formed to include the rear side surface of the recess 702 in the rotation direction of the rotating plate 411, and has a shape that protrudes beyond the radius of the rotating plate 411.
[0035] 7(b) and (c) show how the rotation of the rotating plate 411 is stopped by the stopping member 420. As shown in FIG. 7(b), the stopping member 420 descends from above the rotating rotating plate 411, and the tip portion 421 abuts against the outer peripheral surface of the rotor 411. This reduces the rotational speed of the rotating plate 411 and the rotor 102. The rotation then continues, and as shown in FIG. 7(c), the tip portion 421 collides with the protrusion 701, which includes one side surface of the recess 702, thereby stopping the rotation of the rotating plate 411 and the rotor 102. Note that the configuration in which the tip portion 421 of the stopping member 420 abuts against the outer peripheral surface of the rotating plate 411 to reduce the rotational speed of the rotating plate 411 and the rotor 102 is not essential, and this configuration may be omitted. In this case, tip portion 421 of stopping member 420 collides with protrusion 701 without coming into contact with the outer peripheral surface of rotating body 411, stopping rotating plate 411 and rotating body 102. Furthermore, at the time of this collision, the tip of tip portion 421 has not reached the bottom of recess 702, but after rotation of rotating plate 411 stops, stopping member 420 further descends, and tip portion 421 and recess 702 become completely engaged with each other, as shown in FIG. 7(c). This locks the rotation of rotating plate 411, making it possible to restrict the rotation of rotating plate 411 caused by operation of second operating element 103.
[0036] 8(a) and (b) show a state in which the recess 702 of the rotary plate 411 and the tip portion 421 of the stopping member 420 are completely fitted together. In this state, the stopping member 420 is biased downward by the spring 423. Therefore, the stopping mechanism cannot be released by operating the second operating element 103.
[0037] 8(c) and (d) show the state in which the first operating element 101 is operated. When the first operating element 101 is operated, the release member 402 connected to the first operating element 101 also rotates accordingly. At this time, the convex push-up portion 424 formed on the release member 402 moves forward, and the convex upper surface of the push-up portion 424 abuts against the receiving portion 422 of the stopping member 420, pushing up the stopping member 420. As a result, the stopping member 420 moves upward (in a predetermined direction), and the engagement between the tip portion 421 of the stopping member 420 and the recess 702 of the rotating plate 411 is released, thereby releasing the lock that had restricted the rotation of the rotating plate 411. Note that the spring 423 is biased in a direction opposite to the predetermined direction (downward in this case). Furthermore, as the first operating element 101 is operated, a rotational force is transmitted from the gear box 104 to the rotating plate 411 and the rotating body 102, and the rotating plate 411 and the rotating body 102 start to rotate.
[0038] As described above, toy 10 of this embodiment includes rotating body 102 including multiple regions each bearing a different mark; a cover member covering the rotating body having window 107 that allows one of the multiple regions to be viewed when the rotating body is stopped; rotating plate 411 arranged coaxially with the rotation axis of the rotating body and rotatable together with the rotating body; first operator 101 that starts the rotation of the rotating body and rotating plate; stopping member 420 that stops the rotation of the rotating body by stopping the rotating plate; and second operator 103 that rotates the rotating body when the rotating plate is stopped by the stopping member. Furthermore, after operating the second operator, the multiple regions of the rotating body that are visible through the window are the same as the regions that are visible through the window when the rotating body is stopped by the stopping member after subsequent operation of the first operator. Thus, according to this embodiment, in a toy having a rotating body with multiple regions bearing different marks, the mark that will stop when first operator 101 is operated can be selected in advance by the second operator. Therefore, the player can consciously select and control the desired mark that stops when the first operating element 101 is operated. In this way, the present invention can provide a novel mechanism for stopping a predetermined picture at a predetermined position after the rotating body is rotated in a toy that has a rotating body on which a plurality of pictures are arranged.
[0039] The present invention is not limited to the above-described embodiment, and various modifications and variations are possible within the scope of the invention. For example, the shape of the toy is not limited to a buckle attached to a belt, but may include other ornaments and various shapes.
[0040] <Summary of the embodiment> The above embodiment discloses at least the following toys. (1) It is a toy, a rotating body including a plurality of regions each having a different mark; a cover member that covers the rotating body and has a window that makes any one of the plurality of regions visible when the rotating body is stopped; a rotating plate arranged coaxially with the rotation axis of the rotating body and rotatable together with the rotating body; a first operator that starts rotation of the rotor and the rotary plate; a stopping member that stops the rotation of the rotating body by stopping the rotating plate; a second operator that rotates the rotating body while the rotating plate is stopped by the stopping member; Equipped with A toy wherein the area of the plurality of areas of the rotating body that is visible from the window portion after operation of the second operator coincides with the area that is visible from the window portion when the rotating body is stopped by the stopping member after subsequent operation with the first operator. (2) The rotary plate has a first recess formed therein, The toy according to (1), wherein the tip portion of the stopping member is formed into a shape that fits into the first recess. (3) The toy described in (2), wherein the second operator, when operated, changes the relative positional relationship between each of the multiple areas of the rotating body and the first recess of the rotating plate. (4) The rotary shaft is formed by passing through the center of the rotary plate and the rotary body, A toy as described in (2) or (3), wherein the rotating shaft has a clutch mechanism that transmits a rotational force to the rotating body and does not transmit the rotational force to the rotating plate when the second operator is operated. (5) The rotation axis is A shaft portion; a first member inserted into the shaft portion and having a number of defining portions corresponding to the number of the plurality of regions of the rotating body; a second member that is inserted into the shaft portion, has second recesses the number of which corresponds to the number of the defining portions, and fits into the first member; a first spring inserted into the shaft portion and biasing the first member toward the second member; The toy according to (4), comprising: (6) A toy as described in (5), wherein, by operating the second operator, the first member and the second member are disengaged against the biasing force of the first spring, the first member and the rotating body rotate, and then the rotation of the first member and the rotating body stops at a position where the determining portion and the second recess engage due to the biasing force of the first spring. (7) a side surface of the first recess on the rear side in the rotation direction of the rotary plate has a shape that protrudes beyond the radius of the rotary plate, The toy according to any one of (2) to (6), wherein the stopping member collides with the rear side surface of the rotating plate to stop the rotation of the rotating plate. (8) The toy according to (7), wherein the tip portion of the stopping member abuts against the outer peripheral surface of the rotating plate to slow down the rotational speed of the rotating plate and the rotating body. (9) a release member connected to the first operating element and moving in response to operation of the first operating element; The toy according to (7) or (8), wherein the release member moves the stop member in a predetermined direction in response to operation of the first operator to release the stop of the rotating plate. (10) The stopping member further includes a second spring biasing the stopping member in a direction opposite to the predetermined direction, The toy described in (9), wherein the stopping member returns to a position where it stops the rotating plate by the force of the second spring as the operated first operator returns to its original position. (11) The toy according to any one of (7) to (10), further comprising a gearbox that transmits a rotational force generated by operation of the first operator to the rotating body and the rotating plate. [Explanation of symbols]
[0041] 10: toy, 100, 106: buckle, 101: first operator, 102: rotating body, 103: second operator, 104: gearbox, 105: belt, 107: window
Claims
1. It is a toy, a rotating body including a plurality of regions each having a different mark; a cover member that covers the rotating body and has a window that makes one of the plurality of regions visible when the rotating body is stopped; a rotating plate arranged coaxially with the rotation axis of the rotating body and rotatable together with the rotating body; a first operator that starts rotation of the rotor and the rotary plate; a stopping member that stops the rotation of the rotating body by stopping the rotating plate; a second operator that rotates the rotating body while the rotating plate is stopped by the stopping member; Equipped with A toy wherein the area of the plurality of areas of the rotating body that is visible from the window portion after the second operator is operated coincides with the area that is visible from the window portion when the rotating body is stopped by the stopping member after subsequent operation with the first operator.
2. a first recess formed in the rotary plate; The toy according to claim 1 , wherein a tip portion of the stop member is formed into a shape that fits into the first recess.
3. The toy according to claim 2 , wherein the second operator, when operated, changes a relative positional relationship between each of the plurality of regions of the rotating body and the first recess of the rotating plate.
4. The rotary shaft is formed by passing through the center of the rotary plate and the rotary body, The toy according to claim 3 , wherein the rotating shaft has a clutch mechanism that transmits a rotational force to the rotating body but does not transmit the rotational force to the rotating plate when the second operating element is operated.
5. The rotation axis is A shaft portion; a first member inserted into the shaft portion and having a number of defining portions corresponding to the number of the plurality of regions of the rotating body; a second member that is inserted into the shaft portion, has second recesses the number of which corresponds to the number of the defining portions, and is fitted into the first member; a first spring inserted into the shaft portion and biasing the first member toward the second member; The toy of claim 4, comprising:
6. 6. The toy described in claim 5, wherein, by operating the second operator, the first member and the second member are disengaged against the biasing force of the first spring, the first member and the rotating body rotate, and then the rotation of the first member and the rotating body stops at a position where the determining portion and the second recess are engaged due to the biasing force of the first spring.
7. a side surface of the first recess on a rear side in a rotation direction of the rotary plate protrudes beyond a radius of the rotary plate, 7. The toy according to claim 2, wherein the stopping member strikes the rear side surface of the rotating plate to stop the rotation of the rotating plate.
8. The toy according to claim 7 , wherein a tip portion of the stopping member abuts against an outer peripheral surface of the rotating plate to reduce the rotational speed of the rotating plate and the rotating body.
9. a release member connected to the first operating element and moving in response to operation of the first operating element; The toy according to claim 7 , wherein the release member moves the stop member in a predetermined direction in response to operation of the first operator to release the stop of the rotary plate.
10. The stopping member further includes a second spring biasing the stopping member in a direction opposite to the predetermined direction, The toy according to claim 9 , wherein the stopping member returns to a position where it stops the rotating plate by the biasing force of the second spring as the operated first operating element returns to its original position.
11. The toy according to claim 7 , further comprising a gearbox that transmits a rotational force generated by operation of the first operator to the rotating body and the rotating plate.
Citation Information
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