The embodiments herein relate generally to pedalboards for musical instruments. More specifically, embodiments of the invention relate to a magnetic pedalboard system for use with pedals to generate effects for musical instruments.
Pedalboards are commonly used by musicians to create certain sound effects associated with an electric musical instrument such as a guitar or bass guitar during a performance. Current pedalboard systems comprise a flat board configured to receive a plurality of effects pedals to alter and enhance the sound generated by the instrument. The effects pedals are generally coupled to the flat board by mechanical fasteners such as hook and loop fasteners. In many instances, each of these pedalboard systems comprises a power source operably connected to the flat board and electrically coupled to the plurality of pedals by wires.
These pedalboard systems have numerous disadvantages. In particular, the hook and loop fasteners make it difficult for users to remove and/or move the pedals from one location to another on the flat board. In addition, conventional pedalboard systems do not effectively address the power requirements of the pedals. Since separate wires have to be connected to each and every pedal and the power source, setup time of the pedalboard system and confusion on behalf of the user is common due to the frequent entanglement of the wires.
As such, there is a need in the industry for a magnetic pedalboard system for use with musical instruments that addresses the limitations of the prior art, which provides power to each pedal without the use of wires and permits the user to easily maneuver each pedal to different locations on the pedalboard.
In one embodiment of the invention, a magnetic pedalboard system configured to supply power to a plurality of effects pedals for use in conjunction with a musical instrument to generate sound effects is provided. The magnetic pedalboard system comprises a base member comprising a top surface and a bottom surface, a pair of conductive strips coupled to the top surface of the base member and electrically coupled to a power supply, the first conductive strip in the pair of conductive strips being positively charged and the second conductive strip in the pair of conductive strips being negatively charged, and at least one pedal coupled to the pair of conductive strips, the at least one pedal comprising a plurality of magnetic electrical contacts, the plurality of magnetic electrical contacts comprising a first portion of magnetic electrical contacts electrically coupled to a second portion of magnetic electrical contacts, wherein the at least one pedal is configured to slide along any portion of the pair of conductive strips with the first portion of magnetic electrical contacts directly coupled to the first conductive strip and the second portion of magnetic electrical contacts directly coupled to the second conductive strip, thereby permitting the power supply to transmit electricity through the pair of conductive strips to the at least one pedal.
In an alternative embodiment of the invention, the magnetic pedalboard system comprises a base member comprising a top surface and a bottom surface, a pair of conductive strips coupled to the top surface of the base member and electrically coupled to a power supply, an adapter base coupled to the pair of conductive strips and comprising a plurality of magnetic electrical contacts, the plurality of magnetic electrical contacts comprising a first portion of magnetic electrical contacts electrically coupled to a second portion of magnetic electrical contacts, and at least one pedal coupled to the adapter base and electrically coupled to the plurality of magnetic electrical contacts of the adapter base, wherein the adapter base is configured to slide along any portion of the pair of conductive strips with the first portion of magnetic electrical contacts directly coupled to the first conductive strip and the second portion of magnetic electrical contacts directly coupled to the second conductive strip, thereby permitting the power supply to transmit electricity through the pair of conductive strips and adapter base to the at least one pedal.
The detailed description of some embodiments of the invention will be made below with reference to the accompanying figures, wherein the figures disclose one or more embodiments of the present invention.
As depicted in
In one embodiment, non-conductive base 12 is made from any generally rigid material that sufficiently supports the components of the system. In one embodiment, non-conductive base 12 comprises a generally top flat surface that is supported by any number of legs as depicted in
In one embodiment, each conductive strip 14 comprises a width of approximately 2″. However, the dimensions of conductive strips 14 may vary. In certain embodiments, conductive strips 14 may be made from materials such as tin, steel, silver or any other non-corrosive electrically conductive coating or material known in the field. As depicted in
In one embodiment, power supply 15 preferably is a 9-volt power supply such as a battery that is configured to provide electricity to conductive strips 14. In an alternative embodiment, power supply 15 can be connected to a power outlet. In one embodiment, power supply 15 comprises a base with at least a pair of magnetic electrical contacts 24 configured to contact a pair of conductive strips 14 on non-conductive base 12.
In order to electrically charge conductive strips 14, power supply 15 is disposed on a pair of conductive strips 14 as depicted in
The pairs of conductive strips 14 on the magnetic pedalboard system are electrically charged so long as the first magnetic electrical contact 24 of power supply 15 is directly coupled to a first conductive strip 14 and the second magnetic electrical contact 24 of power supply 15 is directly coupled to a second adjacent conductive strip 14. This is permitted because conductive strips 14 are electrically coupled together by wiring 22, which extends within non-conductive base 12. In one embodiment, one or more illuminating devices such as LEDs are electrically coupled to wiring 22. The one or more illuminating devices activate when conductive strips 14 are electrically charged by power supply 15.
Any number of pedals 17 are operably coupled to conductive strips 14 of magnetic pedalboard system 10 and one or more musical instruments (not shown). Each pedal 17 may be any type of effects pedal known in the field. In certain embodiments, each pedal 17 comprises pedal controls 18, actuators 19, and magnetic electrical contacts 24. In a preferred embodiment, a minimum of four magnetic electrical contacts 24 are coupled to the bottom of pedal 17. However, an alternative number of magnetic electrical contacts 24 may be used instead.
In operation, any number of pedals 17 are coupled together by jumpers 16 such as patch cords, and operably connected to power supply 15 by disposing magnetic electrical contacts 24 of pedals 17 on conductive strips 14. More specifically, a first portion of magnetic electrical contacts 24 of pedal 17 is directly coupled to a first conductive strip 14 and a second portion of magnetic electrical contacts 24 of pedal 17 is directly coupled to a second conductive strip 14. The first and second portions of magnetic electrical contacts 24 of pedal 17 can slide along any adjacent pair of conductive strips 14 on the magnetic pedalboard system.
Conductive strips 14 supply electricity from power supply 15 to pedals 17 to power-up the devices. Pedals 17 can easily be rearranged to other locations of non-conductive base 12 as desired and be operational so long as magnetic electrical contacts 24 of pedals 17 remain in contact with conductive strips 14.
As depicted in
Magnetic pedalboard system 10 may have a wide variety of configurations.
In certain embodiments, pedals 17 may be coupled together in various configurations.
As depicted in
In operation, third alternative pedal assembly 50 is maneuvered so that magnetic electrical contacts 24 of adapter base 54 contact conductive strips 14. More specifically, a first pair of magnetic electrical contacts 24 of adapter base 54 is directly coupled to a first conductive strip 14 and a second pair of magnetic electrical contacts 24 of adapter base 54 is directly coupled to a second conductive strip 14.
Magnetic electrical contacts 24 of adapter base 54 can slide along any adjacent pair of conductive strips 14 on the magnetic pedalboard system. This permits electricity from power supply 15 to travel through conductive strips 14, magnetic electrical contacts 24 of adapter base 54 and power input cord 45 to enable each pedal 17. Pedal 17 is operational so long as magnetic electrical contacts 24 of adapter base 54 remain in contact with conductive strips 14.
In one embodiment, voltage converter 66 is electrically coupled to magnetic contacts 24 of adapter base 54 and pedal 17. Voltage converter 66 is a Step-Up or Step-Down converter that adjusts the voltage at pedal 17 to be 9V, 12V, 18V or 24 V.
It shall be appreciated that the components of magnetic pedalboard system 10 described in several embodiments herein may comprise any alternative known materials in the field and be of any color, size and/or dimensions. It shall be appreciated that the components of magnetic pedalboard system 10 described herein may be manufactured and assembled using any known techniques in the field.
Persons of ordinary skill in the art may appreciate that numerous design configurations may be possible to enjoy the functional benefits of the inventive systems. Thus, given the wide variety of configurations and arrangements of embodiments of the present invention, the scope of the invention is reflected by the breadth of the claims below rather than narrowed by the embodiments described above.
The application claims priority to provisional patent application U.S. Ser. No. 62/594,190 filed on Dec. 4, 2017, the entire contents of which is herein incorporated by reference.
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Number | Date | Country | |
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62594190 | Dec 2017 | US |