The invention is in the field of motor driven, soap bubble producing toys.
Motor driven, soap bubble producing toys have been around for many years. Typically, such toys have a soap bubble solution reservoir, a motive power source, for example, a battery, a motor, a pump, a soap bubble solution feed tube, and a soap bubble forming structure, such as a wand or wand-like circular aperture for forming the soap bubbles.
In the prior art, these soap bubble producing toys commonly include a soap bubble ring that is dipped into soap bubble solution and then exposed to an air stream to form the soap bubbles. Other known soap bubble producing devices and machines commonly include a wiper or a swiper, such as in the form of a wire or blade, that travels across a soap bubble aperture coating it with soap bubble solution to form a film which is then exposed to an air stream to create the soap bubble.
Both of these existing mechanisms have drawbacks. These prior art devices, machines and mechanisms typically only include a single soap bubble aperture for creating one supply of soap bubbles. However, the volume of soap bubbles created is inherently limited when only one soap bubble creation portion is provided. In the former prior art example of a ring that is dipped into soap bubble solution, volume of soap bubbles than can be produced is increased by providing more rings that can be dipped into a one or more soap bubble solution troughs by the machine, either simultaneously or sequentially. In other words, more soap bubble creation rings, and more soap bubble solution troughs can be provided in the same machine so it can create more soap bubbles.
On the other hand, it is more difficult to increase the volume of soap bubbles created by soap bubble making machines that use some type of wiping structure because each soap bubble making port must receive a supply of soap bubble solution so that it can be wiped across the soap bubble making opening. To keep costs of manufacture as low as possible, including a separate motor, soap bubble solution supply and pump and air blower for each soap bubble producing port is not feasible. Therefore, such soap bubble making machines 10 of the prior art that employ a wiper 12 typically have only a single soap bubble making port 14 and a single corresponding wiper 12 as seen in the prior art of
As can be seen in prior art
Also, it is common for the single mechanical wiper mechanism of the prior art of
Incorporating more than one such soap bubble creation port with more than one corresponding wiper in a single soap bubble making machine for providing a larger volume of soap bubble is desired.
There is a need for a soap bubble machine that has a soap bubble solution manifold that can deliver soap bubble solution from one reservoir to more than one soap bubble making ports simultaneously.
There is a need for a soap bubble machine that mechanically links rotation of respective wipers associated with the more than one soap bubble ports.
There is a need for a soap bubble machine that can blow air to more than one soap bubble making port that has been wiped and provided with soap bubble solution across the opening thereof for the creation of soap bubbles at all soap bubble ports simultaneously.
Accordingly, there is a need for an improved soap bubble producing mechanism that can be used with motor driven soap bubble producing toys.
The invention provides an improved mechanism for producing soap bubbles in a motor driven soap bubble producing toy. The mechanism is a soap bubble generating assembly that automatically forms a soap bubble film over the more than one soap bubble port after it has been wiped by a wiper mechanism.
The present invention includes a plurality of soap bubble making ports in a housing where each of the ports includes a ring-shaped soap bubble outlet. A single tube, via the pump, pulls soap bubble solution from the reservoir and, through a manifold, such as a single input to three output manifold, delivers soap bubble solution to multiple output tubes respectively connected to the output ports of the manifold so soap bubble solution is simultaneously delivered to each of the plurality of soap bubble making ports. A plurality of mechanically linked wipers is respectively located at each soap bubble making port to form a film at the soap bubble making port. An air manifold splits air received from the air blower respectively to each soap bubble making port. When a motor-driven shaft rotates, soap bubble solution is delivered to all soap bubble ports; causes all of the wipers to rotate and causes air to be blown through all of the soap bubble ports to creates multiple soap bubbles at the same time. It is also possible that a singular, centrally mounted wiper or swiper is provided to rotated over all of the, for example three, soap bubble ports in a circular fashion. Such an embodiment can avoid additional linkages and mechanical component for multiple wipers to simplify and lower the cost of the machine.
Therefore, an object of the present invention is to provide a soap bubble machine with more than one soap bubble creation port with more than one corresponding wiper in a single soap bubble making machine for providing a larger volume of soap bubble is desired.
There is a further object of the invention to provide a soap bubble machine that has a soap bubble solution manifold, such as a single input to multiple (e.g. three) output manifold, that can deliver soap bubble solution from a single reservoir to more than one soap bubble making ports simultaneously to greatly increase soap bubble production.
There is yet a further object of the present invention to provide a soap bubble machine that mechanically links rotation of all the respective wipers associated with the more than one soap bubble port.
Another object of the present invention is to provide a soap bubble machine that can simultaneously blow air through more than one soap bubble making port that has been wiped and provided with soap bubble solution across the opening thereof for the creation of soap bubbles at all soap bubble ports simultaneously.
A further object of the present invention is to provide an improved soap bubble producing mechanism that can be used with motor driven soap bubble producing toys.
Other objects, features and advantages of the invention shall become apparent as the description thereof proceeds when considered in connection with the accompanying illustrative drawings.
The novel features that are characteristic of the present invention are set forth in the appended claims. However, the invention's preferred embodiments, together with further objects and attendant advantages, will be best understood by reference to the following detailed description taken in connection with the accompanying Figures in which:
The new and unique soap bubble machine 100 with multiple soap bubble ports 102 with respective multiple wipers 104 and blowing ports is described in detail below. The soap bubble machine 100 of the present invention is shown in detail in
Referring first to
In a further embodiment 200, as shown in
The feed tube 128 pumps bubble solution up from the supply in the reservoir base 108, through manifold 132 and then into three output lines 134a-c having their own inline peristaltic pumps 136a-c to pull soap bubble solution liquid from the reservoir base 108 up through the manifold 128 and out through the multiple solution feed lines 136a-c (a single input to three output manifold 128 in this example case) and then to each of the respective rings 116 at each soap bubble port 102. As can be best seen in
Pumps 136a-c are of type of positive displacement pump used for pumping a variety of fluids and is well-suited for pumping soap bubble solution 117. Preferably, the soap bubble solution fluid routed via one supply line 128 into a manifold 132 with one input line and, for example, three output lines 134a-c to accommodate three soap bubble ports 102. The manifold 132 may have two or more than three outputs to feed the appropriate number of supply lines 134a-c depending on how many soap bubble ports 102 need a supply of soap bubble solution from the bubble solution reservoir 108.
As can be seen, a triple peristaltic pump 136a-c is configured on the output side of the manifold 128, on each output feed line 134a-c to effectively pump (i.e., pull) soap bubble solution 117 from the feed reservoir base 108 and direct it to each of the respective soap bubble ports. Referring back to
It is also possible and contemplated by the present invention to provide, instead, a single pump, representationally shown as 236 in
For the blowing of air through ports 102, the motor 150 is energized and the fan 157 is actuated and air is blow through air manifold 158 and out through air ports 164, which are in fluid engagement with ports 102. Thus, bubble solution film across ports 102 receives air through ports 164 for the creation of bubbles 106.
For the rotation of the wipers 104, the motor 150 is interconnected to rotating seats 162 into which keyed spindles 160 resides. Thus, when the motor is energized, the seats 162 rotate thereby rotating the wipers 104 on the opposite side of the top plate 114.
As a result, a single motor 150 simultaneously provides the power to blow air to multiple ports 102, routes bubble solution 117 to each ring 116 and rotates each of the wipers 104.
As can be understood, the various components shown above are assembled into a completed soap bubble machine 100, 100′, as substantially shown in
In view of the above, the present invention uniquely provides a wiper type soap bubble blowing machine 100, 100′ that can supply soap bubble solution 117 simultaneously to more than one soap bubble port 102 while also rotating all wipers 104 and blowing air through all soap bubble ports 102 at the same time. As a result, the soap bubble machine 100, 100′ of the present invention can produce more soap bubbles 106 than previously possible with prior art devices and machines.
It should be noted that the various structural components of the soap bubble machine 100, 100′ of the present invention are preferably molded plastic, silicone for the tubing for the soap bubble solution lines. The motor and other electrical components are made with materials known in the art for such motors and electrical components.
While there is shown and described herein certain specific structure embodying the invention, it will be manifest to those skilled in the art that various modifications and rearrangements of the parts may be made without departing from the spirit and scope of the underlying inventive concept and that the same is not limited to the particular forms herein shown and described except insofar as indicated by the scope of the appended claims.
This application is related to, and claims benefit from, U.S. Provisional Application No. 63/305,399, filed on Feb. 1, 2022, entitled “BUBBLE MACHINE WITH MULTIPLE BUBBLE MAKING PORTS,” incorporated by reference in its entirety, herein.
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