Underwater Light Display Device and System
20170292686 · 2017-10-12
Inventors
- Mark Fuller (Sun Valley, CA, US)
- Riae Yoo (Sun Valley, CA, US)
- Scott Winslow (Sun Valley, CA, US)
- EunKyoung Kim (Sun Valley, CA, US)
Cpc classification
F21L4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2121/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V15/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2113/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63B34/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
F21V21/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A light display system and device for use in a body of water or other liquid is described. The light display device may be controlled remotely via a control hub and/or control panel, or controlled by internally preprogrammed commands. A plurality of light display devices may be controlled in selected, choreographed sequences to provide various unique visual displays including, for example, geometrical patterns and/or naturalistic patterns giving the impression of organic phenomena such as swarming fireflies, bioluminescent creatures and the like.
Claims
1. A light display system for use in a body of water or other liquid, comprising: at least one movable light device that is located in the body of water or other liquid, and that includes a light, a propulsion system and a control system; and at least one command implemented by the control system that controls one or more properties of the at least one movable light device.
2. The light display system of claim 1, further comprising: a control hub for sending the at least one command wirelessly to the at least one movable light device.
3. The light display system of claim 1, wherein the at least one command is a direction command.
4. The light display system of claim 1, wherein the at least one command is a location command.
5. The light display system of claim 1, wherein the at least one command is a speed command.
6. The light display system of claim 1, wherein the at least one command is a light color command.
7. The light display system of claim 1, wherein the at least one command is a light brightness command.
8. The light display system of claim 1, wherein the movable light device further comprises at least one rechargeable battery pack.
9. The light display system of claim 2, wherein the control hub further comprises a battery charger to charge the at least one movable light device.
10. The light display system of claim 1, further comprising: a control panel for transmitting signals to the control hub that form the basis for the at least one command.
11. The light display system of claim 1, further comprising a GPS tracking system for providing current location data to the at least one light device.
12. The light display system of claim 1, further comprising a computer, tablet or mobile phone for a user to control the system.
13. A light display device for use in a body of water or other liquid, comprising: a light; a propulsion system that is configured to move the light display device multi-directionally; and an electronic control system that implements at least one command to control one or more properties of the light display device.
14. The light display device of claim 13, further comprising at least one rechargeable battery pack.
15. The light display device of claim 13, wherein the light comprises an LED.
16. The light display device of claim 13, wherein the propulsion system comprises at least one propulsion motor operably connected to a propeller.
17. The light display device of claim 13, wherein the propulsion system comprises four propulsion motors, each of which is operably connected to a propeller.
18. The light display device of claim 13, wherein the electronic control system comprises a PCB.
19. The light display device of claim 13, further comprising a housing that contains the light, the propulsion system and the electronic control system.
20. The underwater light display device of claim 19, wherein the housing is spherical.
21-23. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Embodiments of the present invention will now be described, by way of example only, with reference to the following drawings.
[0011]
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[0020]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0021] The current invention is now described with reference to the figures. Where the same or similar components appear in more than one figure, they are identified by the same or similar reference numeral. The invention is described herein with reference to water. However, the system of the current invention may be used with other liquids and combinations thereof, and such uses are within the scope of the invention.
[0022] Light display system 1 of the current invention is illustrated in
[0023] Display system 1 may also include control panel 30 which may remotely control the plurality of light display devices 10 via the appropriate control hub(s) 20. As shown, the communication between control panel 30, hub(s) 20 and pods or display devices 10 may occur through WiFi or other appropriate wireless network protocol.
[0024] As illustrated in
[0025] As noted above, control hub 20 may send out a data stream 40, for example, over a WiFi network. The data stream may include, for example, device IDs, position commands and other commands to control the direction, speed or other aspects of devices 10. In a preferred embodiment, light display devices or pods 10 may receive a unique position command, compare it to its current position as determined by a GPS tracking system 50, and then move to its new position as appropriate. All or some number of devices 10 in system 1 may involve GPS tracking.
[0026] Other controls may be also communicated via data stream 40. For example, commands concerning timing and/or speed, light color, brightness and/or saturation may also be provided by data stream 40. It is preferred that these commands result in enhanced visual displays.
[0027] Display system 1 may provide that each of the underwater light display devices 10 independently moves around the display reservoir. For example, system 1 may control pods or devices 10 so that they may move to any location within the display reservoir, even right up to edges and/or into corners or nooks. By independently controlling the plurality of light display devices 10, system 1 preferably provides numerous possibilities for creating unique visual light displays which are generally not possible with traditional light systems using fixed lights, or lights that are moveable only along lengths of cable, or tracks in fixed patterns.
[0028] Control hub 20 may include a battery charger, for example, an inductive charger. Pods or devices 10 may dock to or otherwise engage with the appropriate control hub 20 to recharge their batteries, for example, by an inductive charging.
[0029] The components of system 1 are preferably located to enhance the appearance of its environment. For example, control panel 30 may be located in an out of the way place so that it may be relatively concealed. However, control panel 30 is still preferably located so as to not disrupt its network connection. Hub(s) 20 may be located in a corner or inconspicuous place in the reservoir. However, where pods 20 are configured to be docked and charged by hub(s) 20, it is preferred that hub(s) are located to allow such docking.
[0030] With reference to
[0031] As illustrated, pod 100 may include upper dome 102 and lower dome 104 which may join together to form housing 106 to contain various components of pod 100. Some components may be sealed from the water, while others may engage the water.
[0032] Pod 100 preferably houses light 110 which may provide the lighting effect for system 1. Light 110 may be any of various types of lights. In a preferred embodiment, light 110 comprises a light emitting diode (LED). In another form, light 110 may comprise an RGBW LED. Light 110 may be housed within upper dome 102, so that it and its associated electronics 150 may be sealed from the water. Regardless of the shape of pod 100, it is preferred that pod 100 have a low center of gravity so that light 110 remains upward. Upper dome 102 may be clear or some other configuration.
[0033] Pod 100 preferably includes multi-directional propulsion system 120. As illustrated in
[0034] Propulsion system 120 may include one or more directional thrust motor(s) 121 coupled to propeller(s) 122 via propeller shaft(s) 124. As illustrated, for example, in
[0035] External wall 126 may include one or more propeller seats or recesses 130 that is sized and configured to receive a portion of propeller 122 and allow propeller 122 to rotate freely therein. Pod 100 may also include propeller grill 132 for enclosing propeller 122. Grill 132 may be sized and configured to securely fit into or engage propeller seat 130.
[0036] As shown in
[0037] Pod 100 may include one or more battery pack(s) 140. Battery pack 140 may be rechargeable, including for example, by induction charging. In one form, pod 100 may include 2 or more battery packs 140 connected in series which may advantageously allow extended run times before the pod 100 must be docked for recharging or otherwise recharged.
[0038] Pod 100 may also include electronic control system 150 such as a printed circuit board (PCB). Electronic control system 150 may allow pod 100 to receive data stream 40 from control hub 20, for example, over a WiFi network. For example, electronic control system 150 may allow pod 100 to receive a unique position command via data stream 40, compare the position to its current position as determined by a GPS tracking system 50, and then cause pod 100 to move to its new position by engaging one or more directional thrust motors 120 and propellers 122 as appropriate.
[0039] Electronic control system 150 may receive and/or implement other commands via the data stream 40, including but not limited to, commands concerning timing and/or speed, light color, brightness, saturation and/or other properties.
[0040] As an alternative to the remote control described above, pod 100 may be preprogrammed and not rely on remotely internally provided commands. To this end, control system 150 may include software to control pod 100. In this embodiment, control system 150 may include an EEPROM that allows different control programs to be loaded to pod 100 to provide different displays.
[0041] It is preferred that electronics 150 be housed within upper dome 102 and sealed from the water. Alternatively, electronics 150 may be potted and exposed to the water. Batteries 140 may also be sealed or be water resistant or waterproof.
[0042] Lower dome 126 may also include a cleaning assembly (not shown) that may dispense cleaner through grills 132 to the water. In this manner, as pods 100 move about the pool or reservoir, they may provide a cleaning function.
[0043] It should be noted that the current invention is not limited to the design of pod 100 or light display device 10. That is, other types of propulsion systems to move device 10 beyond those disclosed herein may be used. Furthermore, devices 10 may be coupled to a track to guide their movement. For example, devices 10 may travel along tracks at or near the bottom or sides of the pool or reservoir.
[0044] Light displays that may be provided by the current invention are now further described with references to
[0045]
[0046] System 1 may be installed in various types of locations. For example, as shown in several of the figures, system 1 may be installed in a pool at a private residence. Alternatively, system 1 may be installed at commercial locations. Furthermore, system 1 may be added to existing water and/or light displays to further enhance such displays. In this scenario, pods 100 or devices 10 may be commanded to move, light and otherwise complement the expressions of the existing display. In any event, the pool, reservoir or other body of water or liquid may vary in size, shape and configuration.
[0047] It is preferred that system 1 is scalable so that more pods 100 or devices 10 may be added or deleted. To this end, the overall visual effect of system 1 may be modified as desired.
[0048] Although certain presently preferred embodiments of the invention have been described herein, it will be apparent to those skilled in the art to which the invention pertains that variations and modifications of the described embodiments may be made without departing from the spirit and scope of the invention.