The present invention relates to a battery pack and a system of devices powered by the battery pack.
There are a variety of devices which are powered by electricity and, particularly, are battery powered. It is desired to provide a battery pack for efficiently providing power to the devices and a system of devices which uses the battery pack.
According to one aspect of the disclosure, a system includes a battery pack and at least one device powered by the battery pack. The battery pack includes a battery cell assembly, the battery cell assembly including a battery cell having a first end and a second end; a circuit board adjacent to the battery cell and extending from the first end to the second end; a first electrical connector disposed at the first end and connecting the first end of the circuit board to the first end of the battery cell; a second electrical connector disposed at the second end and connecting the second end of the circuit board to the second end of the battery cell; a third electrical connector disposed at the first end, the third electrical connector being configured to be electrically connected to a powered device so that power from the battery cell may be provided to the powered device through the third electrical connector; and a housing which houses the battery cell assembly.
The battery pack may further include a fourth electrical connector disposed at the second end, the fourth electrical connector being configured to be connectable to a charging source so that a charge can be provided to the battery cell through the fourth electrical connector.
The circuit board may be flat.
The circuit board may have a rectangular shape.
The housing may include an opening through which the third electrical connector can be accessed.
The housing may include an opening through which the fourth electrical connector can be accessed.
The fourth electrical connector may include at least one of a USB and a micro-USB port.
The housing may include a first end portion adjacent to the first end of the battery cell and the first end of the circuit board and wherein the first end is flat.
The housing may include a circuit board side adjacent to the circuit board, the circuit board side of the housing having a rectangular shape and covering the circuit board.
The first end portion may be flat and perpendicular to the circuit board side of the housing.
The circuit board side of the housing may be flat.
The third electrical connector may include a pair of electrical connectors.
The third electrical connector may include a pair of clips.
A receiver coil may be mounted on the circuit board to provide for wireless charging of the battery cell.
According to another aspect, there is a battery pack including a battery cell assembly, battery cell assembly including a battery cell having a first end and a second end, a circuit board adjacent to the battery cell and extending from the first end to the second end, a first electrical connector disposed at the first end and connecting the first end of the circuit board to the first end of the battery cell, a second electrical connector disposed at the second end and connecting the second end of the circuit board to the second end of the battery cell, a third electrical connector disposed at the first end, the third electrical connector being configured to be electrically connected to a powered device so that power from the battery cell may be provided to the powered device through the third electrical connector; and a housing which houses the battery cell assembly.
The battery pack may also include fourth electrical connector disposed at the second end, the fourth electrical connector being connectable to a charging source so that a charge can be provided to the battery cell through the fourth electrical connector.
The circuit board may be flat.
The circuit board may be rectangular shaped.
The housing may include an opening through which the third electrical connector can be accessed.
The housing may include an opening through which the fourth electrical connector can be accessed.
The fourth electrical connector may include at least one of a USB and a micro-USB port.
The housing may include a first end portion adjacent to the first end of the battery cell and the first end of the circuit board and wherein the first end is flat.
The housing may include a circuit board side adjacent to the circuit board, the circuit board side of the housing having a rectangular shape and covering the circuit board.
The first end portion may be flat and perpendicular to the circuit board side of the housing.
The circuit board side of the housing may be flat.
The third electrical connector may include a pair of electrical connectors.
The third electrical connector may include a pair of clips.
A receiver coil may be mounted on the circuit board to provide for wireless charging of the battery cell.
According to another aspect, there is a battery pack including a battery cell assembly, the battery cell assembly including a battery cell having a first end and a second end; a circuit board adjacent to the battery cell and extending from the first end to the second end; a first electrical connector disposed at the first end and connecting the first end of the circuit board to the first end of the battery cell; a second electrical connector disposed at the second end and connecting the second end of the circuit board to the second end of the battery cell; a third electrical connector disposed at the first end, the third electrical connector being configured to be electrically connected to a powered device so that power from the battery cell may be provided to the powered device through the third electrical connector. A housing houses the battery cell assembly.
The battery pack may further include a fourth electrical connector disposed at the second end, the fourth electrical connector being configured to be connectable to a charging source so that a charge can be provided to the battery cell through the fourth electrical connector.
The third electrical connector may include a pair of adjacent electrical connectors which provide a positive and negative electrode.
The battery cell may have one of a positive electrode and a negative electrode at the first end and the other of a positive electrode and a negative electrode at the second end.
The housing may include a first opening through which the third electrical connector can be accessed and a second opening through which the fourth electrical connector can be accessed.
The housing may include a first end portion adjacent to the first end of the battery cell and the first end of the circuit board.
The housing may include a circuit board side adjacent to the circuit board, the circuit board side of the housing having a rectangular shape and covering the circuit board.
The circuit board may have a width Y and the battery cell has a width D and the width Y may be 120% or less of the width D.
The housing may have a primary width A and the primary width A may be 130% or less of the width D and 130% or less of the width Y.
The circuit board may be flat.
The battery cell may be cylindrical.
A receiver coil may be mounted on the circuit board to provide for wireless charging of the battery cell.
The circuit board may include one or more cut-outs to accommodate an electrical connector.
The circuit board may include a pair of cut-outs.
The cut-outs may accommodate the third electrical connector.
An end of the circuit board may extend as far as or beyond the third electrical connector.
The third electrical connector may extend beyond an end of the circuit board by a limited amount.
The third electrical connector may extend beyond an end of the circuit board by 50 mm or less.
The third electrical connector may extend beyond an end of the circuit board by 25 mm or less.
The third electrical connector may extend beyond an end of the battery cell by a limited amount.
The third electrical connector may extend beyond an end of the battery cell by 50 mm or less.
The third electrical connector may extend beyond an end of the battery cell by 25 mm or less.
According to another aspect, there is a battery pack including a battery cell having a first end and a second end; an input electrical connector disposed adjacent the first end, the input electrical connector being configured to be connectable to a charging source so that a charge can be provided to the battery cell through the fourth electrical connector so as to charge the battery cell; an output electrical connector disposed at the second end and being configured to be electrically connected to a powered device so that power from the battery cell may be provided to a powered device through the output electrical connector. A housing houses the battery cell.
A width of the housing may be 130% or less of a width of the battery cell.
The output electrical connector may include a pair of adjacent electrical connectors which provide a positive and negative electrode.
The battery cell may have one of a positive electrode and a negative electrode at the first end and the other of a positive electrode and a negative electrode at the second end.
The housing may include a first opening through which the output electrical connector can be accessed and a second opening through which the input electrical connector can be accessed.
The circuit board may be flat and the battery cell may be cylindrical.
According to another aspect, there is a system including a battery pack and at least one device selectively engaged with and powered by the battery pack. The battery pack may include a battery cell assembly. The battery cell assembly may include a battery cell having a first end and a second end, a circuit board adjacent to the battery cell and extending from the first end to the second end, a first electrical connector disposed at the first end and connecting the first end of the circuit board to the first end of the battery cell, a second electrical connector disposed at the second end and connecting the second end of the circuit board to the second end of the battery cell, a third electrical connector disposed at the first end, the third electrical connector being configured to be electrically connected to a powered device so that power from the battery cell may be provided to the powered device through the third electrical connector. A housing may house the battery cell assembly.
The battery pack may further include a fourth electrical connector disposed at the second end, the fourth electrical connector being configured to be connectable to a charging source so that a charge can be provided to the battery cell through the fourth electrical connector.
The housing may further include a first end portion adjacent to the first end of the battery cell and the first end of the circuit board.
The first end portion may be configured to be inserted into the at least one device.
The at least one device may include at least three devices.
According to another aspect, there is a battery pack including a battery cell assembly, the battery cell assembly including a battery cell having a first end and a second end; a circuit board adjacent to the battery cell and extending from the first end to the second end; a first electrical connector disposed at the first end and connecting the first end of the circuit board to the first end of the battery cell; a second electrical connector disposed at the second end and connecting the second end of the circuit board to the second end of the battery cell. A housing houses the battery cell assembly. A receiver coil is mounted to the circuit board and is configured to charge the battery cell.
The battery pack may include only a single cell.
The battery pack may include a third electrical connector disposed at the first end, the third electrical connector being configured to be electrically connected to a powered device so that power from the battery cell may be provided to the powered device through the third electrical connector.
The third electrical connector may include a pair of adjacent electrical connectors which provide a positive and negative electrode.
The battery cell may have one of a positive electrode and a negative electrode at the first end and the other of a positive electrode and a negative electrode at the second end.
The housing may include a first opening through which the third electrical connector can be accessed and a second opening through which the fourth electrical connector can be accessed.
The housing may include a first end portion adjacent to the first end of the battery cell and the first end of the circuit board.
The housing may include a circuit board side adjacent to the circuit board, the circuit board side of the housing having a rectangular shape and covering the circuit board.
The circuit board may have a width Y and the battery cell has a width D and the width Y may be 120% or less of the width D.
The housing may have a primary width A and the primary width A may be 130% or less of the width D and 130% or less of the width Y.
The circuit board may be flat.
The battery cell may be cylindrical.
An exemplary embodiment of the present application relates to a battery pack and to a system of battery powered devices powered by the battery pack. The system is generally indicated by reference numeral 10 in
As shown in
As can be appreciated, the circuit board 120 has cut-outs to accommodate the electrical connectors 123. Because the electrical connectors 123 are received in the cut-outs, the connectors 123 do not extend beyond an end 131 of the circuit board 120 (see
The third electrical connector 124 is configured to receive power for charging the battery cell 130. In the exemplary embodiment, the third electrical connector 124 is in the form of a micro-USB port. However, other connectors, such as a standard USB port, are contemplated. Like the pair of electrical connectors 123, the third electrical connector 124 is connected to the positive and negative electrodes of the battery cell 130 through the circuit board 120. The present exemplary embodiment allows power to be provided for charging the battery pack 50 at an end opposite the end at which the battery pack 50 provides power.
As shown in
In an exemplary embodiment, the circuit board 120 may have a length X similar to a length L of the battery cell 130. This allows for the circuit board 120 to extend from end to end of the battery cell 130 and at the same time still provide for a compact battery pack 50. Specifically, in exemplary embodiments, the length X may be 70-140% of the length L; the length X may be 80-130% of the length L; the length X may be 90-120% of the length L; the length X may be 90-110% of the length L; or the length X may be 100-120% of the length L.
As shown in
Additionally, according to the exemplary embodiment, the circuit board 120 may have a width Y that is similar to the width D of the battery cell 130. For example, the width Y of the circuit board may be 70-130% of the width D of the battery cell 130; the width Y may be 80-120% of the width D; the width Y may be 90-110% of the width D; or the width Y may be 95-105% of the width D. When the width Y of the circuit board 120 is similar to the width D of the battery cell 130, the circuit board 120 can be large without unduly increasing the width or overall size of the battery pack 50.
The circuit board 120 may also be constructed so that its width Y is not more than slightly larger than the width D of the battery cell. For example, the width Y may be 120% or less of the width D; the width Y may be 110% or less of the width D; or the width Y may be 105% or less of the width D. In these examples, the width Y may be significantly less than the width D, such as for example, half the width D. When the circuit board 120 is so constructed that its width Y is not more than slightly larger than the width D of the battery cell, the circuit board 120 does not unduly increase the width or overall size of the battery pack 50.
The thickness T of the circuit board 120 may be small in comparison to the length X or width Y. For example, the thickness T may be less than 30% of the width Y or less than 20% of the width Y. It may also be less than 10% of the length X or less than 5% of the length X.
As shown in
According to exemplary embodiments, the battery pack 50 may include a battery cell 130 and a circuit board 120 while maintaining compactness in one or more of various dimensions, as described above. This allows a battery pack which maximizes the power provided by a battery cell 130, while at the same time allowing for electrical components to be provided on the circuit board 120 in a compact package.
Turning to the battery pack housing 100, it consists of a top housing 101 and a bottom housing 110, as shown in, for example,
As shown in
The battery pack housing 100 further includes a pair of rounded corners 109. In the exemplary embodiment, the rounded corners 109 are symmetrical to one another. However, they may be made a different size and/or shape so that the corners 109 are not symmetrical to one another. It is noted that the chamfered corners 107 and 108 are not the same size and shape as the corners 109. Accordingly, the battery pack can only be inserted into the devices 20 in one orientation. That is, the chamfered corners 107 and 108 would not fit into the recesses in the devices 20 provided to fit the corners 109.
The top housing 101 also includes a top surface 105. The top surface includes a pair of openings 106 through which the connectors 123 can be accessed. In this case, the connectors 123 are recessed with respect to the top surface 105 so that they are protected against damage from being dropped or the like. In an alternative embodiment, the connectors 123 may be made so that they project from the openings 106.
The bottom housing 110 includes a bottom face 111. The bottom face 111 includes an opening 113 for the micro-USB port 124. It additionally includes an LED 114. The LED 114 can be illuminated when the battery pack 50 is connected to a charging source through the micro-USB port 124. Alternatively or additionally, the LED 114 may be configured to illuminate whenever the battery pack 50 has reached a certain charge. For example, the LED 114 may be configured to illuminate when the battery cell 130 is charged to 90% or more to indicate that the battery pack 50 is nearly charged. The threshold for illuminating the LED 114 in this circumstance could be different than 90%, for example, it could be 85%, 95% or 98%. In another embodiment, the battery pack 50 may include a button 12 which is connected to the circuit board 120 by wires (not shown) and a user may illuminate the LED 114 by actuating the button 12.
The bottom face 111 includes a retention feature 112 in the form of a recess which is used to retain the battery pack 50 in the device 20 in a manner which will be described in further detail below.
The exemplary embodiment shown in
As shown in detail in
The screwdriver 300 includes an electrical connection portion 350 which includes connectors that engage with the connectors 123. It also includes wires which connect the connection portion 350 to the motor, thereby supplying power from the battery pack 50 to the motor 310. Again, a similar system is used in the other devices 20 as is understood by one of ordinary skill in the art. The screwdriver 300 or other device 20 may also optionally include a battery pack ejection spring 351 which biases the battery pack 50 in a direction away from engagement with the device.
Furthermore, as shown in
As shown in
As shown in
As can be appreciated, the receiver coil 125 is mounted on the circuit board 120 which is electrically connected to the battery cell 130 and can therefore be used to charge the battery cell 130. Wireless charging is described in U.S. Pat. No. 9,136,729, which is hererby incorporated by reference in its entirety and the receiver coil 125 would allow the battery packs of the present exemplary embodiment to be charged as discussed in the '729 patent. Particularly, the battery pack 50, 50′ with a receiver coil 125 may be charged by a battery pack charger having at least one transmitter coil for generating a magnetic field which induces a voltage in the receiver coil, and a control circuit for controlling the amount of power that is provided to the transmitter coil.
A diagram of the circuit on the circuit board 120 for use with the coil 125 is shown in
A full-bridge rectifier RR is preferably connected to the receiver coil 125 and capacitors. The rectifier RR may be a diode rectifier or switched rectifier. Persons skilled in the art will recognize that it is preferable to provide the rectifier RR with a capacitor CRR to smooth the DC voltage output.
In the shown exemplary embodiment, the circuit board 120 continues to include the second electrical connector 124 in the form of a micro-USB port. This configuration gives the user the option of charging the battery cell 130 through the micro-USB port 124 or through the wireless receiver coil 125. Alternatively, the second electrical connector 124 can be removed and the wireless receiver coil 125 can be relied upon as the sole means of charging.
The description of the invention is merely exemplary in nature. Additionally, various features of the exemplary embodiments may be used independently from one another or in combination.
This application claims priority to U.S. Provisional Application No. 62/119,541, filed on Feb. 23, 2007 and U.S. Provisional Application No. 62/222,524, filed on Sep. 23, 2015. The disclosures of the above applications are incorporated herein by reference.
Number | Date | Country | |
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62119541 | Feb 2015 | US | |
62222524 | Sep 2015 | US |