POSITION ADJUSTING DEVICE, SHOOTING GAME DEVICE USING THE SAME AND SHOOTING METHOD THEREOF
20200109910 ยท 2020-04-09
Inventors
Cpc classification
F41B11/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41A27/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41A23/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A63B69/406
HUMAN NECESSITIES
International classification
F41B4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41A23/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A63B69/40
HUMAN NECESSITIES
F41B11/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A position adjusting device includes a first support member, a mounting seat disposed on the first support member and including a receiving seat and a pivot shaft disposed in the receiving seat, and a second support member carried by the receiving seat.
Claims
1. A position adjusting device comprising: a first support member; a mounting seat disposed on the first support member and including a receiving seat and a pivot shaft disposed in the receiving seat; and a second support member carried by the receiving seat.
2. The position adjusting device of claim 1, further comprising: a yaw axis motor disposed at the first support member, a rotating shaft of the yaw axis motor being connected to the pivot shaft of the mounting seat, and the yaw axis motor being configured to drive the pivot shaft of the mounting seat to rotate so as to drive the second support member to rotate.
3. The position adjusting device of claim 2, wherein: the pivot shaft of the mounting seat includes a receiving cavity; and the rotating shaft of the yaw axis motor is received in the receiving cavity.
4. The position adjusting device of claim 2, wherein: the first support member includes two brackets and a connecting plate connecting the two brackets, the two brackets and the connecting plate forming a receiving portion; and the yaw axis motor is received in the receiving portion and fixed on a bottom surface of the connecting plate.
5. The position adjusting device of claim 4, wherein: the connecting plate includes a through hole penetrating through the connecting plate; and the rotating shaft of the yaw axis motor passes through the through hole to connect to the pivot shaft of the mounting seat.
6. The position adjusting device of claim 5, further comprising: a bearing fixed in the through hole; wherein the rotating shaft of the yaw axis motor passes through the bearing.
7. The position adjusting device of claim 4, wherein: the two brackets are two first brackets and the connecting plate is a first connecting plate; the second support member includes two second brackets and a second connecting plate connecting the two second brackets; and a direction of the two first brackets extending from the first connecting plate is opposite to a direction of the two second brackets extending from the second connecting plate.
8. The position adjusting device of claim 1, wherein: the second support member includes a receiving hole; and the pivot shaft of the mounting seat includes a connecting portion fixed in the receiving hole.
9. The position adjusting device of claim 1, wherein the mounting seat further includes a fixing ring sleeved on an outer sidewall of the pivot shaft.
10. The position adjusting device of claim 9, wherein: the mounting seat further includes a first bearing and a second bearing sleeved on the outer sidewall of the pivot shaft; and the fixing ring is located between the first bearing and the second bearing.
11. The position adjusting device of claim 1, further comprising: a pitch axis motor disposed at the second support member and configured to drive a load carried by the second support member to rotate about a pitch axis.
12. A shooting game assembly comprising: a firing device; and a position adjusting device carrying the firing device, the position adjusting device including: a first support member; a mounting seat disposed on the first support member and including a receiving seat and a pivot shaft disposed in the receiving seat; and a second support member carried by the receiving seat and carrying the firing device.
13. The shooting game assembly of claim 12, wherein the firing device includes: a magazine configured to receive a plurality of toy bullets; and a turret connected with the magazine and configured to receive one toy bullet of the plurality of toy bullets pushed from the magazine and to fire the one toy bullet.
14. The shooting game assembly of claim 13, wherein the turret includes: a conduit disposed below the magazine and configured to receive the one toy bullet; a propelling device configured to accelerate and fire the one toy bullet; and a limiting device disposed between the conduit and the propelling device.
15. The shooting game assembly of claim 14, wherein the limiting device includes an elastic limiting device.
16. The shooting game assembly of claim 14, wherein: the turret further includes a barrel aligned with the conduit; and the limiting device and the propelling device are disposed between the conduit and the barrel.
17. The shooting game assembly of claim 14, wherein: a bottom plate of the magazine includes a bullet output port; and the conduit includes a guide slot including a bullet inlet approximately aligned with the bullet output port of the magazine.
18. The shooting game assembly of claim 13, wherein the firing device further includes: a rotor disposed in the magazine and including a plurality of blades configured to clamp the toy bullets; and a driving device fixed onto a bottom plate of the magazine and connected with the rotor, the driving device being configured to drive the rotor to rotate.
19. The shooting game assembly of claim 12, wherein the position adjusting device further includes a yaw axis motor disposed at the first support member, a rotating shaft of the yaw axis motor being connected to the pivot shaft of the mounting seat, and the yaw axis motor being configured to drive the pivot shaft of the mounting seat to rotate so as to drive the second support member to rotate.
20. The shooting game assembly of claim 12, wherein the position adjusting device further includes a pitch axis motor disposed at the second support member and configured to drive the firing device to rotate about a pitch axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0054]
[0055]
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0062] To make the objectives, technical solutions and advantages of the present disclosure more comprehensible, the present disclosure is further described in detail below with reference to the accompanying drawings and implementation manners. It should be understood that the specific implementation manners described herein are merely used to explain the present disclosure, but are not used to limit the present disclosure.
[0063] Implementation of the present disclosure is described in detail below in combination with specific implementation manners.
[0064] Referring to
[0065] The position adjusting device 10 includes a first support member 11, a yaw axis motor 12 disposed on the first support member 11, a second support member 13 rotatably disposed on the first support member 11 through the yaw axis motor 12, and a pitch axis motor 14 disposed on the second support member 13 and used for driving the firing device 20 to rotate.
[0066] The first support member 11 includes two first brackets 111 disposed substantially in parallel and a first connecting plate 112 that connects the two first brackets 111. The first connecting plate 112 is disposed substantially perpendicular to the first brackets 111. In this embodiment, the first connecting plate 112 is fixed onto the two first brackets 111 through bolted connection. The first connecting plate 112 includes a top surface 1121 and a bottom surface 1122 away from the top surface 1121. In this embodiment, the top surface 1121 is substantially parallel to the bottom surface 1122. The bottom surface 1122 and inner walls of the two first brackets 111 jointly form a receiving portion 110. The first connecting plate 112 is provided with a first through hole 1123 penetrating the top surface 1121 and the bottom surface 1122. The first through hole 1123 is in communication with the receiving portion 110.
[0067] It can be understood that the first connecting plate 112 and the two first brackets 111 may also be fixedly connected in other manner. For example, they are fixedly connected with each other by welding or glue, which is not limited to this embodiment.
[0068] The position adjusting device 10 further includes a bearing 15 and a mounting seat 16.
[0069] The bearing 15 is fixed into the first through hole 1123.
[0070] In this embodiment, the yaw axis motor 12 is a brushless motor, which includes a rotating shaft 120. The yaw axis motor 12 is received in the receiving portion 110 and fixed onto the bottom surface 1122, and the rotating shaft 120 passes through the bearing 15.
[0071] Referring to
[0072] During assembly, the rotating shaft 120 of the yaw axis motor 12 is inserted into the receiving cavity 1620, and the second fixing hole 1640 is exposed outside the receiving seat 161 through the window 1610. A fixing bolt (not shown) is inserted into the second fixing hole 1640 and the first fixing hole 1622 through the window 1610 to cause one end of the fixing bolt to abut against the rotating shaft 120, and in this way, the rotating shaft 120 is fixedly connected with the pivot shaft 162.
[0073] In this embodiment, the fixing bolt is a threaded bolt, and the first fixing hole 1622 and the second fixing holes 1640 are all threaded holes corresponding to the fixing bolt. It can be understood that it is also feasible to fixedly connect the rotating shaft 120 with the pivot shaft 162 in another manner. For example, they are fixedly connected with each other by welding or glue, which is not limited to this embodiment. To omit the machining process for the window 1610, the first fixing hole 1622, and the second fixing holes 1640, in other embodiments, it is also feasible to fixedly connect the rotating shaft 120 with the receiving cavity 1620 through interference fit, which is not limited to this embodiment.
[0074] The second support member 13 is rotatably mounted to the top surface 1121 of the first connecting plate 112 through the mounting seat 16. The second support member 13 includes two second brackets 131 disposed substantially in parallel and a second connecting plate 132 that connects the two second brackets 131. The second connecting plate 132 is disposed substantially perpendicular to the second brackets 131. In this embodiment, the second connecting plate 132 is fixed onto the two second brackets 131 through bolted connection. The second connecting plate 132 is disposed oppositely to the first connecting plate 112, and the second connecting plate 132 includes a lower end face 1311 disposed oppositely to the top surface 1121 of the first connecting plate 112. The second connecting plate 132 is provided with a receiving hole 1312, and the connecting portion 1621 of the pivot shaft 162 is fixed into the receiving hole 1312 to cause the second support member 13 to be carried over the top surface 1121 through the mounting seat 16.
[0075] In this embodiment, with the configuration of the mounting seat 16, it is possible to avoid the weights of the second support member 13, the pitch axis motor 14, and the firing device 20 from directly acting on the rotating shaft 120 of the yaw axis motor 12 to protect the yaw axis motor 12. It can be understood that, in other embodiments, when the rotating shaft 120 of the yaw axis motor 12 can carry a load with enough weight, it is also feasible that the mounting seat 16 is not provided, and the rotating shaft 120 of the yaw axis motor 12 is directly received in the receiving hole 1312, which is not limited to this embodiment.
[0076] The pitch axis motor 14 is disposed on one end of one of the second brackets 131 away from the second connecting plate 132. The pitch axis motor 14 includes a rotary shaft 140. One end of the other one of the second brackets 131 is provided with a fixed shaft 133.
[0077] Referring to
[0078] The magazine 21 is used for receiving a plurality of toy bullets 200. In this embodiment, the magazine 21 has a bullet storage capacity of about 100 bullets. A bottom plate 21a of the magazine 21 is provided thereon with a bullet output port 210. In this embodiment, the bullet output port 210 is round. In can be understood that the bullet output port 210 may also be in another shape, which is not limited to this embodiment. One side wall of the magazine 21 is provided with a rotary pillar 201 corresponding to the position of the fixed shaft 33. Another side wall of the magazine 21 is provided with a hollow connecting pillar 202 corresponding to the position of the rotary shaft 140 of the pitch axis motor 14. During assembly, the rotary pillar 201 is sleeved in the fixed shaft 33, and the connecting pillar 202 is fixedly connected with the rotary shaft 140 through a bolt. It can be understood that, in an actual application, it is also feasible to fixedly connect them by welding or glue.
[0079] The guide plate 22 is arc-shaped, which is disposed above the bullet output port 210, and the guide plate 22 and the bottom plate 21a are at a certain bevel angle. In this way, the toy bullets 200 can smoothly enter into the bullet output port 210 along the slope of the bottom plate 21a.
[0080] The cover plate 23 is fixed to the magazine 21 through a bolt. It can be understood that the cover plate 23 may also be fixed to the magazine 21 in other fixing manners, which is not limited to this embodiment. The cover plate 23 is provided with an inlet 230, through which the toy bullets 200 can be put in.
[0081] It can be understood that, in order to save materials, in other implementation manners, the cover plate 23 may also be omitted.
[0082] The rotor 24 includes a plurality of blades 241. Two adjacent blades 241 are spaced apart from each other. The distance between the two adjacent blades 241 is slightly less than the diameter of the bullet output port 210, and a toy bullet 200 is clamped between each two adjacent blades 241.
[0083] The driving device 25 is a low-speed high-torque motor, which is fixed to the bottom plate 21a and connected with the rotor 24, for driving the rotor 24 to rotate. The driving device 25 is driven by a pulse signal, and each time the driving device 25 is triggered, an angle by which the rotor 24 is driven to rotate is equal to an angle between the two adjacent blades 241.
[0084] Referring to
[0085] The conduit 261 is disposed below the magazine 21. The conduit 261 is provided with a guide slot 2610. In this embodiment, the guide slot 2610 is a 90-degree guide slot, which includes a round bullet inlet 2611 and a round bullet outlet. The bullet inlet 2611 is aligned with the bullet output port 210 of the magazine 21, and a central axis of the bullet inlet 2611 is substantially parallel to that of the bullet output port 210. A central axis of the bullet inlet 2611 is substantially parallel to that of the bullet outlet.
[0086] In this embodiment, the barrel 262 is a hollow tubular structure. The diameter of the barrel 262 is slightly greater than that of the toy bullet 200.
[0087] The propelling device 263 comprises two friction wheels 2630. The two friction wheels 2630 are disposed side by side between the guide slot 2610 and the barrel 262. A gap 270 formed between the two friction wheels 2630 is aligned with the bullet outlet of the guide slot 2610. Each of the friction wheels 2630 includes a motor 2631, a connecting ring 2632, an elastic ring 2633, and a protection ring 2634.
[0088] In this embodiment, the motor 2631 is a brushless motor, which includes a rotor portion 263a. The rotor portion 263a includes a first connecting portion 2635 connected with the connecting ring 2632 and a second connecting portion 2636 connected with the protection ring 2634.
[0089] The shape and size of the connecting ring 2632 match those of the first connecting portion 2635 respectively. The connecting ring 2632 is clamped onto the first connecting portion 2635 and rotates with rotation of the rotor portion 263a. The connecting ring 2632 includes a round body portion 2637 and a protrusion 2638 extending radially from the body portion 2637.
[0090] The elastic ring 2633 is hollow ring-like, which is made of a rubber material, is sleeved on the body portion 2637 of the connecting ring 2632, and abuts against the protrusion 2638.
[0091] In this embodiment, the protection ring 2634 is connected with the second connecting portion 2636 by threading and abuts against the elastic ring 2633.
[0092] In this embodiment, the two friction wheels 2630 rotate in opposite directions. The shortest spacing between the two elastic rings 2633 is slightly less than the diameter of the toy bullet 200, and when the friction wheels 2630 rotate in opposite directions, the two elastic rings 2633 exert friction on a toy bullet 200, causing the toy bullet 200 to gain a certain amount of kinetic energy such that the toy bullet 200 can be fired.
[0093] The sighting device 264 is a cross-shaped laser sight, which can facilitate the user to accurately shoot a target.
[0094] In this embodiment, the limiting device 265 is an elastic limiting device. A toy bullet 200 is pushed into the 90-degree guide slot 2610 by the blades 241. The toy bullets 200 are pushed into the guide slot 2610 one by one. With the setting of the limiting device 265, the toy bullet 200 closest to the barrel 262, after being pushed past the limiting position, arrives at the friction wheels 2630 rotating at a high speed, and then the toy bullet 200 is fired by being exerted with friction and squeezed. Setting the limiting device 265 can enhance shooting continuity.
[0095] In this embodiment, the connecting ring 2632 is provided with a protrusion 2638, which is aimed to prevent uneven assembly of the elastic ring 2633 to the body portion 2637.
[0096] It can be understood that, in an actual application, in order to save materials, it is also feasible to directly mount the elastic ring 2633 onto the first connecting portion 2635 of the rotor portion 263a, which is not limited to this embodiment.
[0097] It can be understood that, in other embodiments, it is also feasible that the protection ring 2634 is not provided.
[0098] It can be understood that, in other embodiments, the motor 2631 may also be another type of driving device, for example, a motor or the like, as long as it can drive the elastic ring 2633 to rotate, which is not limited to this embodiment.
[0099] It can be understood that, in other embodiments, it is also feasible that the limiting device 265 is not provided.
[0100] It can be understood that the structure of the position adjusting device 10 is not limited to this, and in an actual application, it is feasible as long as the firing device 20 can rotate about the yaw axis and the pitch axis.
[0101] It can be understood that, in other embodiments, the firing device 20 may also be another load, for example, a sprayer or the like.
[0102] Further referring to
[0103] Referring to
[0104] S101: A plurality of toy bullets 200 are put in;
[0105] In this embodiment, the operator may put in the plurality of toy bullets 200 through an inlet 230 of the cover plate 23.
[0106] A yaw axis motor 12 drives the firing device 20 to rotate about a yaw axis.
[0107] In this embodiment, the position adjusting device 10 includes a first support member 11, a yaw axis motor 12 disposed on the first support member 11, and a second support member 13 rotatably disposed on the first support member 11 through the yaw axis motor 12. The yaw axis motor 12 is used for driving the second support member 13 to rotate about a yaw axis to cause the firing device 20 to rotate about the yaw axis. Therefore, the firing device 20 can achieve an action of rotating horizontally flexibly and freely.
[0108] A pitch axis motor 14 drives the firing device 20 to rotate about a pitch axis. The pitch axis motor 14 is used for driving the firing device 20 to rotate about a pitch axis.
[0109] The position adjusting device 10 includes a pitch axis motor 14 disposed on the second support member 13 and used for driving the firing device 20 to rotate, and the firing device 20 can achieve an action of pitching up and down flexibly and freely.
[0110] S104: The toy bullets 200 are fired.
[0111] The magazine 21 has a capacity of about 100 bullets. The driving device 25 is used as a bullet feeding motor, which drives a rotor 24 having a plurality of blades 241 to rotate. A toy bullet 200 is held between two blades and driven to rotate with the rotor. When being rotated to the guide plate 22, the toy bullet 200 is pushed into the 90-degree guide slot 2610 by the blades. The toy bullets 200 are pushed to a position between the two friction wheels 2630 one by one The barrel 262 is provided with a limiting device. The foremost toy bullet 200, after being pushed past the limiting position, arrives at the friction wheels 2630 rotating at a high speed, and then the toy bullet 200 is fired by being exerted with friction and squeezed. The firing device 20 has a fast rate of fire and can fire 10 bullets per second on average. The firing device 20 can achieve single shot and continuous shot modes by controlling the driving device 25, and can also control the speed of the two friction wheels 2630, thus changing the rate of fire of the toy bullets 200. Such a principle scheme is simple and practical, which can ensure stability of the firing of the toy bullets 200 and can control well the rate of fire of the toy bullets 200.
[0112] It can be understood that the method of the present disclosure is not limited to any order of steps.
[0113] The position adjusting device according to the present disclosure can drive the firing device to rotate about a yaw axis through the yaw axis motor, and at the same time, can drive the firing device to rotate about a pitch axis through the pitch axis motor, so that the position adjusting device controls the firing device to achieve actions of rotating horizontally and pitching up and down flexibly and freely. This puts forward higher requirements for both the stability and the speed at which the actions are completed, and can also avoid manually adjusting the direction of the muzzle. The operation steps are simple and highly entertaining. In addition, owing to the absence of a reduction gearbox or another torque increasing mechanism, the problem that the mechanism is complicated is solved.
[0114] The above descriptions merely relate to exemplary embodiments of the present disclosure, but are not intended to limit the present disclosure. Any modification, equivalent replacement, improvement and the like made within the spirit and principle of the present disclosure should all be included in the scope of the present disclosure.