1. Field of Invention
The present invention is related to a water submergence toy that can move within water in a desired direction by means of radio control.
2. Description of the Related Art
For example, as stated in Kokai (Japanese unexamined patent publication) No. 11-90049, this type of conventional water submergence toy is equipped with two electric motors onto which screws are attached. Both screws are arranged side-by-side at the left and right. The composition is such that when both screws are rotated, the water submergence toy moves straight ahead and when only one of the screws is rotated, the water submergence toy turns.
Using screws in this manner, however, requires two electric motors in order for the water submergence toy to move straight ahead and turn. Because of this, it is difficult to reduce the size of the water submergence toy. Further, when moving straight ahead, the two electric motors must operate at the same time thereby increasing the amount of battery power consumed resulting in shorter operating times the toy can be continuously used.
The water submergence toy related to the present invention drives a pump using one electric motor and uses a directional control valve to change the direction liquid expelled from this pump is directed. As an example, if the liquid is discharged towards the rear, the water submergence toy can move forward and if the liquid is discharged from the lateral part of the rear, the water submergence toy can turn. In addition, the switching action of this directional control valve is performed by means of reversing the rotational direction of the electric motor thereby eliminating the need for an actuator such as a separate electric motor.
This is not particularly limited to a mechanism that drives a directional control valve. For example, a driven gear can be mounted to the axis of rotation of the pump and a idle gear provided that always meshes with this driven gear along with a drive gear mounted to the axis of rotation of the electric motor and a planet gear that always meshes with this drive gear to allow the outer periphery of the drive gear to move and the direction of rotation of the electric motor to be reversed forward and backward to achieve selective meshing of the planet gear with either the driven gear or the idle gear and the directional control valve being driven together with the movement of this planet gear.
If the intake port of the pump is opened towards the downward direction, the suction from the intake port will generate a force in the direction of submergence making it easier to submerge the water submergence toy.
If one of these nozzles is directed towards the rear and a fin member that generates a diving force downward due to forward movement provided on both sides of the main body of the toy, it will become easier to submerge the water submergence toy when moving forward.
The diverging paths mentioned above can branch off into two directions and the fluid directed towards these two directions at the same time.
Or else, two power units whose principal components are the above-mentioned pump, electric motor, directional control valve, and various gears can be equipped to form a composition wherein each fluid is suitably discharged from a nozzle that opens in four directions.
As made clear from the description above, the present invention can discharge fluid in two desired directions by means of only reversing the direction of rotation of one electric motor forward and backward. Therefore, the amount of electrical power consumed is reduced compared to a conventional water submergence toy that requires the use of two electric motors. Because of this, the water submergence toy according to the present invention can continuously operate for longer periods of time than a conventional water submergence toy.
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Referring to
A divergence path 24 is used to link the power unit 2 to the discharge port 12. Furthermore, a manually adjusted rudder 12a is mounted to the discharge port 12. When water is discharged from the discharge port 12, the main body 1 moves forward. At this time the rudder adjusts whether to move the water submergence toy straight ahead or to gently turn it.
Referring to
This water submergence toy is a radio-controlled type whose operation is controlled by radio waves received from an external source. A control PCB 3 is installed inside the toy to control the direction of rotation of the electric motor 4 based on the received radio waves. In the figure, 31 is a pair of recharging electrodes. The composition is such that if a recharging power source is brought into contact with these electrodes 31, the batteries 32 will be recharged through the electrodes 31. In addition, these electrodes 31 are covered by a cap 14 provided with an O-ring to keep them in a watertight state. Even if the main body 1 is submerged in water, water will not leak to the installation position of the electrodes 31. The cap 14 is removed when recharging the batteries.
The electric motor 4 is installed such that the axis of rotation is facing upward. A drive gear 41 is mounted to this axis of rotation. The drive power from the drive gear is transmitted to the pump 5 through a predetermined gear train.
Referring to
In contrast, a driven gear 51 is mounted to the pump 5 and an idle gear 52 meshes with this driven gear 51. In
If the direction of rotation of the drive gear 41 is reversed, the planet gear 61 will move towards the right direction while it is meshed with the drive gear 41. When this occurs, the planet gear 61 cancels the meshed state with the driven gear 51 and then meshes with the idle gear 52. Therefore, the drive gear 41 and the driven gear 51 are linked through the planet gear 61 and the idle gear 52. Although the idle gear 52 will increase more than when only the planet gear 61 is between them, the direction of rotation of the drive gear 41 reverses with respect to the case described above. Consequently, the direction of rotation of the driven gear 51 will always be the same direction and not reverse.
A coupling pin 62 is set on the other end of the oscillating arm 6. A fork 63 is coupled to the coupling pin 62 in such a manner that it pinches both sides of the coupling pin 62. Because of this, when the oscillating arm 6 oscillates, the fork 63 will also oscillate. A directional control valve 64 is mounted to this fork 63.
Referring to
Referring to
In this manner stopping the electric motor 4 and changing the forward and reverse rotation of the electric motor 4 is performed by remote control. Referring to
This remote control 7 forms a cartridge 73 for the power supply portion and when the electrical power is consumed, makes it possible to quickly resume use of the water submergence toy by replacing with a new cartridge 73. An adapter 74 is provided on the end of the cartridge 73. The composition is such that when the cartridge 73 is inserted into the remote control 7 from below, the adapter 74 will make contact with an electrode provided on the remote control 7 and supply electrical power to the remote control 7.
As described above, when recharging the batteries 32 of the main body 1, the adapter 74 is inserted with the cap 14 removed to allow the adapter 74 to make contact with the electrodes 31 and recharge the batteries.
In the embodiment above, a case in which one pump 5 is installed was described. However, as shown in
In the example shown in
Another directional control valve 64B switches between divergence path 83 and divergence path 84. Water that is diverted to the divergence path 83 is discharged from a discharge port 83a provided on the left front side. When this occurs, a force generates turning the main body in the right direction. When the water is diverted to the divergence path 84, the water is discharged from the discharge port 84a and the main body 1 moves forward. Further, when water is discharged from both discharge ports 81a, 83a on the left and right sides, the main body 1 slowly settles downward in a vertical direction due to a reaction caused by suction from the intake port 11 without the main body 1 moving horizontally in any direction.
These operations are performed by only changing the direction of rotation of the two electric motors. In the example shown in
Furthermore, the present invention is not limited to the embodiments described above but can be modified within the spirit and scope of the present invention.
Number | Date | Country | Kind |
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2003-352601 | Oct 2003 | JP | national |