Flight Capable Imitation Balloon which Mimics the Movements of a Helium-Filled Balloon
20170225088 · 2017-08-10
Inventors
Cpc classification
A63H2027/1091
HUMAN NECESSITIES
International classification
Abstract
The present invention relates to a powered, flight capable, air-filled balloon which mimics the movement of a helium-filled balloon.
Claims
1. A flight capable imitation balloon which mimics the movements of a helium-filled balloon comprising: a body portion, a substantially pyramidal member, an exhaust assembly, a fan assembly, a motor, a drive shaft, two fans, a plurality of air intake vents, a plurality of horizontal exhaust vents, a plurality of vertical exhaust vents, a cable, a control unit, a power source, and a power switch; wherein said body portion is semi-spherical, with a substantially hemispherical northern half and semi-hemispherical southern half; wherein said semi-hemispherical southern half has a non-tapered top and tapered bottom; wherein the northern half and a southern halves are detachable above the equator of the semi-spherical body portion; wherein the substantially pyramidal member contains a USB connector and connects to the tapered end of said southern half; wherein the plurality of air intake vents circumnavigate the non-tapered portion of the southern half; wherein the plurality of horizontal exhaust vents circumnavigate the non-tapered portion of the southern half, below said air intake vents; wherein the plurality of vertical exhaust vents are substantially parallel to said tapered end of said southern half; wherein said fan assembly is attached to the inside of said lower half, below said air intake vents; wherein said two fans are contained within said fan assembly, perpendicular to said tapered end; wherein said fans provide enough lifting capacity to lift said body portion; wherein said two fans are a top fan and a bottom fan; wherein said fans are substantially perpendicular to said tapered end; wherein said top and bottom fans counter-rotate; wherein said exhaust assembly is attached to the inside of said lower half, below said fan assembly; wherein a plurality of tubes run from said exhaust assembly to said exhaust vents; wherein said exhaust assembly conducts air; wherein said motor is attached to said exhaust assembly; wherein said drive shaft connects said motor and said fans; wherein said motor provides power to rotate said drive shaft and said fans; wherein said motor is attached to the USB connector of said pyramidal member; wherein said cable has a first end and a second end; wherein both ends of said cable are USB connections; wherein one end of said cable attaches to said control unit and said second end connects to said USB connection located in said pyramidal member; wherein the power source is located in said control unit; wherein the power switch is located on said control unit; wherein activating said power switch causes the fans to activate; wherein said fans draw in air from said air intake vents; wherein air is drawn through said fans and exits said body portion through said horizontal exhaust vents and said vertical exhaust vents; wherein air exiting said vertical exhaust vents lifts said body portion; wherein air exiting said horizontal exhaust vents stabilizes said body portion; wherein said counter-rotating fans stabilize said body portion.
2. The flight capable imitation balloon which mimics the movements of a helium-filled balloon of claim 1, wherein the control unit is a wrist mounted or handheld unit; wherein said power supply consists of commercially available disposable or rechargeable batteries.
3. The flight capable imitation balloon which mimics the movements of a helium-filled balloon of claim 1, wherein the control unit is a desktop base; wherein a reel is located inside said base; wherein said cable is spooled around said reel when power is disconnected; wherein said cable unspools from said reel, when power is activated; wherein said power supply consists of commercially available disposable or rechargeable batteries, a solar array located on the desktop base unit or northern hemisphere of a body portion, a power cord attached to a household power supply or a USB connection to a USB enabled device.
4. The flight capable imitation balloon which mimics the movements of a helium-filled balloon of claim 1, wherein the cable disconnects from said control unit, connects to and draws power from a USB enabled device power supply.
5. The flight capable imitation balloon which mimics the movements of a helium-filled balloon of claim 1, further comprising a processing unit and a plurality of horizontal exhaust vent control valves; wherein said a horizontal exhaust vent control valve is attached to said each of the plurality of horizontal exhaust vents; wherein said processing unit is connected to a USB connection; wherein flight control instructions are uploaded to said processing through said USB connection from a USB enabled device; wherein flight is controlled by said processing unit through the opening and closing of the horizontal exhaust vent control valves are controlled; wherein the power source is an internal battery or solar array located on or embedded in said northern portion of said body; wherein an power switch, located on said knot or said solar array, activates and deactivates said flight capable imitation balloon which mimics the movements of a helium-filled balloon.
6. A flight capable imitation balloon which mimics the movements of a helium-filled balloon comprising: a body portion, a substantially pyramidal member, an exhaust assembly, a fan assembly, a motor, a drive shaft, two fans, a plurality of air intake vents, a plurality of horizontal exhaust vents, a plurality of vertical exhaust vents, a cable, a control unit, a power source, and a power switch; wherein said body portion is semi-spherical, with a substantially hemispherical northern half and semi-hemispherical southern half; wherein said semi-hemispherical southern half has a non-tapered top and tapered bottom; wherein the northern half and a southern halves are detachable above the equator of the semi-spherical body portion; wherein the substantially pyramidal member connects to the tapered end of said southern half; wherein a string or cord is attached to said pyramidal member; wherein the plurality of air intake vents circumnavigate the non-tapered portion of the southern half; wherein the plurality of horizontal exhaust vents circumnavigate the non-tapered portion of the southern half, below said air intake vents; wherein the plurality of vertical exhaust vents are substantially parallel to said tapered end of said southern half; wherein said fan assembly is attached to the inside of said lower half, below said air intake vents; wherein said two fans are contained within said fan assembly, perpendicular to said tapered end; wherein said fans provide enough lifting capacity to lift said body portion; wherein said two fans are a top fan and a bottom fan; wherein said fans are substantially perpendicular to said tapered end; wherein said top and bottom fans counter-rotate; wherein said exhaust assembly is attached to the inside of said lower half, below said fan assembly; wherein a plurality of tubes run from said exhaust assembly to said exhaust vents; wherein said exhaust assembly conducts air; wherein said motor is attached to said exhaust assembly; wherein said drive shaft connects said motor and said fans; wherein said motor provides power to rotate said drive shaft and said fans; wherein the power source is a solar panel array; wherein said solar array is located on or embedded in said northern half of said body portion; wherein said control unit is located on or embedded in or embedded in said northern half of said body portion, adjacent to said solar array; wherein said control unit connects said solar array to said motor; wherein the power switch is located on said control unit; wherein activating said power switch causes the fans to activate; wherein said fans draw in air from said air intake vents; wherein air is drawn through said fans and exits said body portion through said horizontal exhaust vents and said vertical exhaust vents; wherein air exiting said vertical exhaust vents lifts said body portion; wherein air exiting said horizontal exhaust vents stabilizes said body portion; wherein said counter-rotating fans stabilize said body portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] These and other objects, features, and aspects of the invention will be better understood and more fully described upon reading the following detailed description in conjunction with the appended drawings wherein:
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DETAILED DESCRIPTION
[0025] Certain embodiments as disclosed herein provide for a balloon toy and method of use. After reading this description it will become apparent to one skilled in the art how to implement the invention in various alternative embodiments and alternative applications. Although various embodiments of the present invention will be described herein, it is understood that these embodiments are presented by way of example only, and not limitation. As such, this detailed description of various alternative embodiments should not be construed to limit the scope or breadth of the present invention.
[0026] As the balloon is a spherical or semi-spherical object, geographic references will be used to describe. North and south will be used to describe the top and lower halves of the balloon; pole will be used to describe the northern- or southernmost point. Equator will be used to describe a line around the sides of the balloon, equidistant from the northern and southern poles. Longitudinal refers to a direction perpendicular to the poles. The term “knot” refers to a structure attached to the south pole of the balloon, which mimics the knot, which is typically used to seal convention air- or helium filled balloons
[0027] Referring now to
[0028] The materials used to fabricate the balloon portion 101 are provided from any suitable source such as, but not limited to, metal, wood, plastics, and the like as well as a combination thereof. Preferably, durable and light weight plastic materials are preferred such as, but not limited to, MYLAR®, siliconized rubber, high density polyethylene, polypropylenes, polysulfones, and polystyrenes.
[0029] Turning now to
[0030] Turning now to
[0031] The fan assembly 205 is secured to the inner sides of the southern half 103 of the balloon portion 101, planar and substantially parallel to the equator; two fans, an upper fan 203 and a lower fan 204, situated in the center of the fan assembly 205, one on top of the other. During operation, the fans 203 and 204 counter-rotate to provide stability to the balloon portion 101 while activated. The drive shaft 209 connects at the center of the fans and leads north south to the motor 210. In some embodiments, the balloon unit will carry an LED light 201, camera, speaker and/or microphone.
[0032] In this preferred embodiment, a separate control unit 302 provides power to the motor 210 and fan of the balloon portion 101. Turning to
[0033] When activated, power from the power source is transmitted through the cable 108. This powers the motor 210, causing the fans 203 and 204 to turn and draw air in from the air intake vents 109. This air is drawn through the fan blades, and flows into horizontal and vertical exhaust vent tubes 206 and 208 respectively and out the horizontal and vertical vents 105 and 106, respectively. The horizontal vent tubes 206 are located below the fan assembly 205 and channel air through the horizontal exhausts 105. In the preferred embodiment, there are four horizontal exhaust tubes 206, each connecting to a corresponding horizontal exhaust vent 105, located on the surface of the balloon portion 101; however, other embodiments, may utilize more or fewer horizontal exhaust tubes 206 and corresponding exhaust vents 105. The horizontal exhaust allows the balloon portion 101 to move randomly, parallel to the ground and provides stability. The vertical exhaust tubes 208, are disposed perpendicular to the equator and connect to the vertical exhaust vents 106. The air exhaust pushed through the vertical exhaust tubes 208 and vents 106, creates lift, which causes the balloon portion 101 to elevate or hover.
[0034] Turning now to
[0035] Turning now to
[0036] A fourth embodiment of the invention lacks a control unit; the both ends of the cable 108 contain USB connectors, which may connect to any device with a USB port. Examples of USB enabled devices include desk and laptop and/or tablet computers. When attached to a device with a USB port, power is drawn from the USB port, through the cable 108, activating a motor 210 and fans 203 and 204, causing the balloon portion 101 to ascend.
[0037] A fifth embodiment of the invention is powered by a solar cell, either embedded in the upper portion of a balloon portion or positioned on the balloon portion's 101 surface. Power is controlled by power switch on the balloon portion's surface, next to the solar cell. The balloon portion 101 may be attached to a counter weight to prevent it from flying off. A string or cord may attach to the bottom of the balloon, allowing a user to handle the balloon portion like a toy.
[0038] A sixth embodiment of the invention contains a processing unit in the balloon portion, an internal power source and a control valve located in each of the horizontal exhaust tubes. The processing unit is connected to a USB connector at a south pole of a balloon portion and the control valves. The USB connection allows for the uploading of flight directions to the processing unit and charging of the power source from a USB enabled device, allowing for pre-programmed flight. Flight is controlled by opening and closing control valves. Multiple power sources may be utilized, including, but not limited to: solar cells located on the surface of the balloon; solar cells located on the base unit or northern half of the balloon portion; commercially available rechargeable or recyclable battery, such as AA, rechargeable LiOH. Power is controlled by power switch on a knot.
[0039] Although a few exemplary embodiments of this invention have been described, those skilled in the art will readily appreciate that many modifications are possible in the exemplary embodiments without materially departing from the novel teachings and advantages of this invention. Accordingly, all such modifications are intended to be included within the scope of this invention as defined in the claims. Therefore, it is to be understood that the foregoing is illustrative of the present invention and is not to be construed as limited to the specific embodiments disclosed, and that modifications to the disclosed embodiments, as well as other embodiments, are intended to be included within the scope of the appended claims. The invention is defined by the following claims, with equivalents of the claims to be included therein.