Rechargeable battery jump starting device with control switch backlight system
11557906 · 2023-01-17
Assignee
Inventors
- Jonathan Lewis Nook (Gates Mills, OH, US)
- William Knight Nook, Sr. (Shaker Heights, OH, US)
- James Richard Stanfield (Glendale, AZ, US)
- Derek Michael Underhill (Tempe, AZ, US)
Cpc classification
F02N11/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J1/00
ELECTRICITY
H01M10/425
ELECTRICITY
F02N11/0862
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J7/0045
ELECTRICITY
H02J7/342
ELECTRICITY
F02N11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N11/0866
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J7/00
ELECTRICITY
H02J7/00047
ELECTRICITY
H01M10/4207
ELECTRICITY
H01M10/46
ELECTRICITY
H01M2010/4271
ELECTRICITY
H02J1/122
ELECTRICITY
H02J7/0024
ELECTRICITY
B60S5/00
PERFORMING OPERATIONS; TRANSPORTING
H02J7/0034
ELECTRICITY
F02N11/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01M2220/20
ELECTRICITY
H01M10/0525
ELECTRICITY
International classification
H02J7/00
ELECTRICITY
H02J1/00
ELECTRICITY
H01M10/0525
ELECTRICITY
F02N11/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J7/34
ELECTRICITY
H01M10/42
ELECTRICITY
F02N11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rechargeable battery jump starting device with a control switch backlight system. The control switch backlight system is configured to assist a user viewing the selectable positions of the control switch for selecting a particular 12V or 24V operating mode of the portable rechargeable battery jump starting device in day light, sunshine, low light, and darkness.
Claims
1. A jump starting device, comprising: a cover; a power source disposed within the cover; an interface mounted on the cover, the interface having at least two light windows provided in or through the interface and located at different positions on the interface; a printed circuit board located behind the interface, the printed circuit board having at least two light emitting diodes located at different positions on the printed circuit board so that light emitting from each of the at least two light emitting diodes, respectively, passes through one of the at least two lights windows in or through the interface; an electrical control switch mounted on the printed circuit board, the electrical control switch having a rotatable shaft passing through the interface and rotatable between the at least two different positions on the interface, the electrical control switch configured to selectively power the at least two light emitting diodes by the power source; a control knob mounted on the rotatable shaft of the electrical control switch, the control knob is rotatable between the at least two different positions on the interface, the control knob having a light window; and at least two visual indicators each located at one of the at least two different positions on the interface, respectively, to indicate different operating modes of the jump starting device, wherein the electrical control switch is configured to selectively power the at least two light emitting diodes to light up the light window of the control knob when the control knob is rotated to one of the at least two different positions on the interface by one of the at least two light emitting diodes.
2. The device according to claim 1, wherein the at least two visual indicators each comprise a light window provided in or through the interface and located at the at least two different positions on the interface, the at least two visual indicators are configured to selectively light up when the control knob is rotated to one of the at least two different positions on the interface by one of the at least two light emitting diodes.
3. The device according to claim 2, wherein one of the at least two visual indicators is the symbol 12V to indicate 12 volt operation mode of the device and another of the at least two visual indicators is the symbol 24V to indicate 24 volt operation mode of the device.
4. The device according to claim 1, wherein the control knob comprises a light blocking opaque portion having a clear portion or see through portion configured to serve as the light window.
5. The device according to claim 1, wherein the power source comprises a first 12V battery disposed within the cover and a second 12V battery disposed within the cover, further comprising: a highly conductive frame having a positive conductive pathway and a negative conductive pathway, the highly conductive frame electrically is selectively connected to the first 12V battery and/or the second 12V battery when the device is jump charging a battery to be charged; a positive battery cable having a positive battery clamp, the positive battery cable connected to the positive conductive pathway of the highly conductive frame; and a negative battery cable having a negative battery clamp, the negative battery cable connected to the negative conductive pathway of the highly conductive rigid frame, wherein the control switch is connected to the highly conductive frame to selectively operate the first 12V battery and/or the second 12V battery, the control knob is configured to rotate between a 12V operating mode position and a 24V operating mode position to selectively operate the jump starting device in a 12V mode or 24V mode.
6. The device according to claim 1, wherein the device is configured to light up one of the at least two light emitting diodes on the interface when the jump starting device is turned on.
7. The device according to claim 1, wherein the interface is configured to display a real time operating voltage of the jump starting device during operation of the jump starting device.
8. The device according to claim 5, wherein the first 12V battery and second 12V battery are Li-ion batteries.
9. The device according to claim 1, wherein the control knob is made of an opaque material and the light window is defined by a slot in the control knob filled light transmitting material.
10. The device according to claim 9, wherein the control knob comprises a round outer edge, and wherein the slot is a radially oriented slot extending from the outer edge of the control knob inwardly.
11. The device according to claim 10, wherein the control knob comprises a finger gripping protrusion, and wherein the slot extends along a length axis of the protrusion.
12. The device according to claim 1, wherein the at least two visual indicators display different colors when selectively lighted by the at least two light emitting diodes.
13. The device according to claim 1, further comprising one or more additional indicators located on the interface.
14. The device according to claim 1, wherein the printed circuit board comprises one or more additional light emitting diodes and the interface comprises one or more additional light windows in or through the interface for selectively lighting up the one or more additional indicators.
15. The device according to claim 14, wherein the power source is one or more rechargeable batteries, and the one or more additional indicators is a battery fuel gauge configured to display the charge level of the one or more rechargeable batteries.
16. The device according to claim 15, wherein the battery fuel gauge comprises multiple different colored visual indicators.
17. The device according to claim 16, wherein the multiple different colored visual indicators comprise at least a red colored light emitting diode, an amber colored light emitting diode, and a green colored light emitting diode.
18. The device according to claim 11, wherein the one or more additional visual indicators comprises a power button.
19. The device according to claim 11, wherein the one or more additional visual indicators comprises a USB OUT light emitting diode.
20. The device according to claim 19, wherein the USB OUT light emitting diode is a red colored visual indicator.
21. The device according to claim 1, wherein the power source comprises at least two 12V rechargeable Li-ion batteries, and further comprising an optical position sensing system comprising a microcontroller configured to read positions of the electrical control switch and a sensor using optical coupling to insure integrity of isolation on the electrical control switch.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(70) The battery jump starting device 10 according to the present invention is shown in
(71) The battery jump starting device 10 comprises a cover 12 fitted with a handle 14, and having the particular design shown in
(72) The battery jump starting device 10 comprises a front interface 16, a power button 16a for turning the power on or off, and an electrical control switch 18 having a control knob 18a for operating the control switch 18. The main operational portion of the control switch 18 is located internally within the cover 12. The control switch 18 is configured so that a user can selectively rotate the control knob 18a to either a first position (12V mode) or a second position (24V mode) depending on the particular voltage system of the vehicle being jump started (e.g. 12V, 24V vehicle electrical system).
(73) The detailed features of the interface 16 are shown in
(74) The above features can be modified with different colored LEDs and/or other arrangements on the face of the interface 16.
(75) The battery jump starting device 10 further comprises a port 20 having left side port 20a and right side port 20b, as shown in
(76) The cover 12 is provided with the resilient sealing cap 22, including left side sealing cap 22a for sealing left side port 20a and right side sealing cap 22b for sealing right side port 20b during non-use of the battery jump starting device 10.
(77) The left side of the battery jump starting device 10 is also fitted with a pair of light emitting diodes 28 (LEDS) for using the battery jump starting device 10 as a work light. For example, the LEDs 28 are dual 1100 Lumen high-intensity LED floodlights), as shown in
(78) The left side of the battery jump starting device 10 is fitted with a heat sink 29 (
(79) The battery jump starting device 10 is shown in
(80) As shown in
(81) The power circuit 30 of the battery jump starting device 10 is shown in
(82) The power circuit 30 comprises two (2) separate rechargeable Lithium ion (Li-ion) batteries 32 (e.g. two (2) 12V Li-ion batteries) connected to the control switch 18 via a pair of cables 34, 36 (e.g. insulated electrical copper cables), respectively.
(83) The power circuit 30 further comprises a reverse current diode array 48 (i.e. a reverse flow protection device) connected to the control switch via the cable 40 and the right side battery 32 via cable 44.
(84) The power circuit 30 even further comprises a smart switch 50 (e.g. 500 A solenoid device) connected to the control switch 18 via cable 42 and the left side battery 32 via cable 46.
(85) The positive battery cable 56 having a positive battery clamp 60 is removably or detachably connected to the positive cam-lock 24a (
(86) The negative battery cable 58 having a negative battery clamp 62 is detachably connected to the negative cam-lock 24b (
(87) In the above described first embodiment of the power circuit 30, the electrical components of the power circuit 30 are connected together via cables (e.g. heavy gauge flexible insulated copper cables). The ends of cables are soldered and/or mechanically fastened to the respective electrical components to provide highly conductive electrical connections between all the electrical components.
(88) In a modified first embodiment shown in
(89) The cables 56, 58 shown in
(90) In a second embodiment of the rechargeable jump starting device 110 and power circuit 130 to be described below, the cables 34, 36, 40, 42, 44, 46 (
Control Switch
(91) The control switch 18 is shown in
(92) The control knob 18a comprises rear extension portions 18b, 18c. The extension portion 18c has a T-shaped cross section to connect into a T-shaped recess 76e (
(93) The pair of legs 76c (e.g. U-shaped legs) of the rotor 76 partially accommodate the springs 78, respectively, and the springs 78 apply force against the pivoting contacts 80 to maintain same is highly conductive contact with the selected contacts 82b-92c of the terminals 82-92.
(94) The pivoting contacts 80 each have a pivoting contact plate 80a having a centered slot 80b configured to accommodate an end of each leg 76b of the rotor 76. When the rotor 76 is turned, each leg 76b actuates and pivots each pivoting contact plate 80a.
(95) Further, the pivoting contact plates 80a each having a pair of spaced apart through holes 80c (e.g. oval-shaped through holes) serving as two (s) points of contact with selected contacts 82c-92c of the terminals 82-92.
(96) The terminals 82-92 have threaded posts 82a-92a, spacer plates 82b-92b, and conductive bar 94, respectively, configured so that the contacts 82c-92c are all located in the same plane (i.e. plane transverse to longitudinal axis of the control switch 18) to allow selective pivoting movement of the pivoting contacts 80. The threaded posts 82a-92a of the terminals 82-92 are inserted through the through holes 74a, respectively, of the rear housing 74.
(97) The O-rings 96, 98, 100, as shown in
(98) The control switch 18 is a 12V/24V selective type switch as shown in
(99) The rear side of the control switch 18 is shown in
(100) The second embodiment of the battery jump starting device 110 is shown in
(101) In the second embodiment of the battery jump starting device 110 (
(102) The battery jump starting device 110 comprises a pair of 12V Li-ion batteries 132 directly connected to the highly conductive rigid frame 170. Specifically, terminals 132a, 132b (e.g. highly conductive bars of copper or aluminum) of the Li-ion batteries are mechanically connected and/or soldered to the positive and negative tabs or foils, respectively, of the battery cells and then connected to the highly conductive rigid frame 170 by highly conductive fasteners 206 comprising a bolt 206a and nut 206b and/or soldering.
(103) The highly conductive rigid frame 170 is constructed of multiple highly conductive rigid frame members 170a-h connected together by mechanical fasteners (e.g. metal nut and/or bolt fasteners) and/or soldering. For example, the highly conductive rigid frame members are made of highly conductive rigid metal rods having flattened ends with through holes. Alternatively, the highly conductive rigid metal rods can be replaced with highly conductive rigid metal plates, bars, tubing, or other suitably configured highly conductive metal material (e.g. copper or aluminum stock material). The highly conductive rigid frame members 170a-h can also be insulated (e.g. covered with heat shrink insulation) in at least the key areas to prevent any internal short circuiting.
(104) The highly conductive rigid frame members 170a-h shown in
(105) For example, the reverse flow diode assembly 148 is constructed of three (3) base portions of three (3) highly conductive frame members 170d, 170e, 170f of the highly conductive rigid frame 170, including: 1) an upper highly conductive rigid bar 148a (
(106) As another example, the smart switch 150 (
(107) The stock material (e.g. copper or aluminum rod, plate, bar, tubing) selected for construction of the highly conductive rigid frame 170 has substantial gauge to provide high conductivity and substantial rigidity. The “rigid” nature of the highly conductive rigid frame 170 provides the advantage that the highly conductive rigid frame 170 remains structurally stiff and stable during storage and use of the battery jump starting device 110.
(108) For example, the highly conductive rigid frame 170 is designed and constructed to sufficiently prevent flexing, movement, bending and/or displacement of the highly conductive rigid frame 170 during storage or use so as to prevent electrical shortages of the highly conductive rigid frame touching other internal electrical components or parts of the electronic assembly. This “rigid” nature is important due to the high conductivity path of electrical power from the Li-ion batteries 132 flowing through the power circuit and reaching the battery clamps 60, 62 (
(109) As an alternative, the highly conductive rigid frame 170 can be constructed as a single piece having no mechanically fastened joints. For example, the highly conductive rigid frame 170 can be made from a single piece of stock material and then formed, bent, machined, or manufactured into the highly conductive rigid frame 170. For example, a billet of highly conductive copper can be machined (e.g. milled, lathed, drilled) into the highly conductive rigid frame 170. As another example, a copper sheet or plate can be bent and/or machined into the highly conductive rigid frame 170. As a further alternative, the highly conductive rigid frame 170 can be metal molded (e.g. loss wax process).
(110) As another alternative, the highly conductive rigid frame 170 is made of multiple highly conductive rigid frame members 170a-h connected together into a unitary structure. For example, the highly conductive rigid frame 170 is made of highly conductive sections of stock material (e.g. copper or aluminum rod, plate, bar, tubing), which are extruded, machined and/or bent, and soldered and/or welded together.
(111) The battery jump starting device 110 further comprises a resistor array 202 (e.g. 12 V 5 A XGC) comprising a printed circuit board (PCB) 202a serving as a base supporting an array of individual resistors 202b, as shown in
(112) The left side of the battery jump starting device 110 is also fitted with a pair of light emitting diodes 128 (LEDS) for using the battery jump starting device 110 as a work light. For example, the LEDs 128 are dual 1100 Lumen high-intensity LED floodlights), as shown in
(113) The battery jump starting device 110 is fitted with a heat sink 129 (
(114) The battery jump starting device 110 is shown in
(115) For example, the left side of the battery jump starting device 110 is provided with POSITIVE (+) cam-lock 124a and NEGATIVE (−) cam-lock 124b, as shown in
(116) A third embodiment of the battery jump starting device 210 is shown in
(117) Further, the battery jump starting device 210 comprises a main printed circuit board 208 serving as a base for LEDs for the control knob 218a and interface 216, and for supporting other electrical components of the battery jump starting device 210.
Cam-Lock Connectors
(118) Again, the battery cables 56, 58 (
(119) The cam-locks 24a, 124a, 24b, 124b and cables 56, 58 (
(120) The cam-lock connector 27 can be used for other applications for detachably connecting a conductive electrical cable to an electronic device other than the battery jump starting device according to the present invention.
(121) The cam-lock connector 27 comprises a male cam-lock end 27a and a female cam-lock end 27b for detachable connecting the battery cables 56, 58 (
(122) The male cam-lock end 27a comprises a pin 27aa having a tooth 27ab. The female cam-lock end 27b comprises a receptacle 27ba having a slot 27bb together located in a hex portion 27bc. The receptacle 27ba is configured to accommodate the pin 27aa and tooth 27ab of the male cam-lock end 27a. Specifically, the pin 27aa and tooth 27ab of the male cam-lock end 27a can be inserted (
(123) The male cam-lock end 27a is fitted with a rubber molded cover 31, as shown in
(124) The assembly of the male cam-lock 27a is shown in
(125) The copper sleeve 41 is fitted into the receptacle 27ad of the male cam-lock end 27a, as shown in
(126) It is noted that the inner end of the Allen head fastener makes an indent 45 when sufficiently tightened to firmly anchor the copper sleeve 41 and inner conductor 56a of the battery cable 56 to mechanically and electrically connect the cable 56 to the male cam-lock end 27a.
(127) The rubber molded cover 31 is provided with one or more inwardly extending protrusions 31a cooperating with one or more slots 27ae in an outer surface of the male cam-lock end 27a (
(128) Again, the male cam-lock end 27a and the female cam-lock end 27b are configured so as to tighten together when rotating the male cam-lock end 27a when inserted within the female cam-lock end 27b.
(129) The female cam-lock end 27b, as shown in
(130) The female cam-lock end 27b is accommodated with a rubber molded cover 51 having cover portions 51a, 51b, as shown in
(131) The female cam-lock end 27b (
(132) The female cam-lock end 27b is accommodated within the molded rubber cover portions 51a, 51b, as shown in
Electrical Control Switch Backlight System
(133) The battery jump charging device 110 can be provided with an electrical control switch backlight system 111, as shown in
(134) The electrical control switch backlight system 111, for example, comprises control switch 118 having the control knob 118a, the interface 116 (e.g. with black colored membrane label), and the main printed circuit board 408 (
(135) The control knob 118a comprises the finger grip 118b and light window 118c. For example, the control knob 118a is made of plastic (e.g. black colored injection molded plastic part). For example, the control knob 118a is mainly made of a colored (e.g. black colored) opaque plastic material selected to prevent the transmission of light through the control knob 118a, and provided with the light window 118c (e.g. a slot filled with light transmitting plastic such as clear plastic material or see through plastic material). For example, the light window 118c is insert molded with a clear or see through insert part). The light window 118c allows light from the backlight LEDs 408a or 408b mounted on the printed circuit board 408 (
(136) The control switch 118 is rotatable between a first position (Position 1) for a 12V mode of operation of the battery jump starting device 110 and a second position (Position 2) for a 24V mode of operation of the battery jump starting device 110.
(137) The interface 16 (116) is provided with a 12V backlight indicator 16c (
(138) The electrical control switch backlight system 111 (
(139) The rechargeable battery jump starting device 110 comprises the cover 112 and the interface 116 mounted on the cover. A power source for the electrical switch backlight system is disposed within the cover 112. For example, the power source is one or both of the Li-ion batteries 332 (
(140) The printed circuit board 408 (
(141) The electrical control switch 118 is mounted on the interface 116. The electrical control switch 118 is rotatable between different positions on the interface 116 (e.g. 12V position and 24V position).
(142) The control knob 118a is mounted on the electrical control switch 118, and the control knob 118a is rotatable between the different positions on the interface 116. Again, the control knob 118a is provided with the light window 118c. The light window 118c of the control knob 118a lights up when the control knob 118a is selectively rotated to one of the different positions (e.g. 12V position or 24V position) on the interface 116 by one of the at least two backlights 408a, 408b (
(143) The interface 116 is provided with at least two visual indicators (e.g. 12V symbol and 24V symbol) each located at the different positions on the interface 116, respectively, to indicate different operating modes of the rechargeable battery jump starting device 110. The at least two visual indicators are configured to selectively light up when the control knob 118a is selectively rotated to one of the different positions on the interface 116 by the backlights 408a, 408b.
(144) The at least two visual indicators 16c, 16d (
(145) The interface 116 (316) comprises the printed circuit board 408 (
(146) The control knob 118a comprises a light blocking opaque portion having a clear portion or see through portion configured to serve as the light window 118c.
(147) The rechargeable battery jump starting device 110 further comprises the first 12V battery 132 (332) disposed within the cover 310, as shown in
(148) The highly conductive frame 370 having a positive conductive pathway and a negative conductive pathway is selectively connected to the first 12V battery 332 and/or the second 12V battery 332 when the rechargeable battery jump starting device 110 device is jump charging a battery to be charged.
(149) The positive battery cable 56 (
(150) The control switch 318 (
(151) The rechargeable battery jump starting device 110 is configured to light up one of the at least two backlights such as LEDs 408a, 408b (
(152) The control knob 118a is made of an opaque material (e.g. black injection molded plastic polymer material), and the light window 118c is defined by the slot-shaped light window in the control knob 118a filled light transmitting material (e.g. clear or see through plastic material). The control knob 118a comprises a round outer edge, and the slot-shaped light window 118c is a radially oriented slot extending from the outer edge of the control knob inwardly. The control knob 118a comprises a finger grip 118b, and the slot-shaped light window 118c extends along a length axis of the finger grip 118b.
(153) The rechargeable battery jump starting device 110 further comprises an electrical position switch located between the power source (e.g. Li-ion batteries 332) and the at least two backlights such as LEDs 408a, 408b (
Electrical Optical Position Sensing Switch System
(154) The portable jump starting device 10 can be configured as a dual purpose Li-ion jump starter to allow for jump starting either a 12V or 24V heavy duty vehicle or piece of equipment. This lightweight portable unit utilizes the manual rotary control switch 18 with the control knob 18a for switching between 12V or 24V jump starting or operational modes. Any of the above described portable jump starting devices according to the present invention can be provided with the electrical optical position sensing system 300, as shown in
(155) The portable jump starting device 10 uses two 12V Li-ion batteries that are connected in parallel for 12V jumpstarting and in series for 24V jump starting. The series or parallel connections are accomplished with the rotary control switch 18 (e.g. Master Switch), as shown in
(156) The electrical optical position sensing system 300 is shown in
(157) A schematic of the circuit of the optical position sensing system 300 is shown in
(158) If Q27 is “on”, it allows current to flow from Battery A+ to Battery B− when the batteries are connected in parallel. When they are connected in series, no current flows because A+ and B− are connected together through the control switch 18.
(159) The result of current flow or lack thereof, allows the optical coupler to provide a signal to the microcontroller telling it which position the Master Switch is in.
(160) The second portion of the schematic (i.e. schematic located just below the first schematic), allows the opposite signal to be provided to a separate input of the microcontroller. The result of this is to provide the microcontroller an effective method of determining when the switch is “In Between” meaning it is not in 12V position or 24V position and is in between those two positions. This allows the microcontroller to provide diagnostics in case a user leaves the switch in an unusable position.
Dual Battery Diode Bridge
(161) The battery jump starting device 310 (
(162) The back-charge diode module 348 is configured to provide two (2) channels 348a, 348b of diodes to support the two (2) battery system (e.g. two batteries of jump starting device 310) and are bridged together to provide peak current output during jump starts.
(163) The single wiring connection and dual wiring connections of the battery jump starting device 310 is shown in
(164) The dual diode battery bridge in the form of a back-charge diode module 348 is shown in
(165) The back-charge diode module 348 comprises an upper highly conductive plate 370e, a lower highly conductive plate 370d, and the center highly conductive plate 370f connected together by the channels of diodes 348a, 348b.
Leapfrog Charging System
(166) The battery jump starting devices 10, 110, and 310 use two (2) 12V lithium batteries used for jumpstarting vehicles and other system functions. These two individual batteries are used in both series or parallel depending on whether the operator is jumpstarting a 12V vehicle or a 24V vehicle.
(167) The battery jump starting device 10, 110, 310 can be charged using a charging device having a plug-in cord (e.g. 114 V to 126 V (RMS) AC charger) and charging control device (e.g. programmable micro-controller). Each battery is charged on its own by the battery jump starting device 10, 110, 310 separate from the other battery, but the batteries are kept close in potential during the charging process using a technique called “leapfrog charging”. This charging approach insures that both batteries are close to the same potential even if the battery jump starting device 10, 110, 310 is removed from charging early. This provides for equal power delivery during jumpstarts as well as other system functions.
(168) The battery jump starting device 310 is provided with a charging device. For example, the circuit board 408 shown in
(169) This method is accomplished by charging one Li-ion battery 332, starting with the lowest charged battery, until it is approximately 100 mv higher than the other battery 332, and then switching to charge the other battery 332. This process continues until both batteries 332 are completely charged.
(170) Safeguards are provided in the battery jump starting device 310 to protect against any of the batteries 332 being overcharged as well as sensing if a battery cell is shorted. These safeguards include peak voltage shutoff as well as charge timeouts in software.
(171) The leapfrog charging system and method can be design or configured to charge the rechargeable batteries 332 (e.g. Li-ion batteries) in a charging sequence. The charging sequence can be designed or configured to ensure that both batteries become fully charge regardless of the operations of the battery jump starting device 310. In this manner, the batteries are fully charged on a regular basis to maximize the use and life of the batteries.
(172) Further, the charging sequence can be tailored to most effectively charge particular types of rechargeable battery, in particular Li-ion batteries taking into account particular charging properties of the batteries (e.g. reduce heat generation of batteries over a time interval, apply best charging rate(s) for batteries, charging in a sequence increase life of batteries. The charging sequence, for example, can be to partially charge the batteries 332, one at a time, and back-and-forth. For example, the charging sequence can be configured to incrementally charge the batteries 332 in a back-and-forth sequence until both batteries are fully charged. For example, a voltage increase increment can be selected (e.g. 100 mV) for charging the batteries in a back-and-forth sequence.
(173) In addition, the charging sequencing between the two batteries 332 can be selected or programmed to provide back-to-back charging of one battery two or more increments before switching to the other battery for charging. Also, the charging sequence can include one or more pauses to prevent the charging battery 332 from becoming too hot (e.g. temperature limit) or so that the charging sequence matches with the charging chemistry of the charging battery.
Highly Conductive Frame
(174) The highly electrically conductive frame 370 (“highly conductive frame”), is shown in
(175) The highly conductive frame 370 can replace the electrically conductive cables 34, 36, 40, 42, 44, 46, 52, 54 (
(176) The highly conductive frame 370 comprises a positive conductive frame 371a and negative conductive frame 371b, as shown in
(177) The highly electrically conductive frame 370 comprises the multiple electrically conductive frame members 370a-h electrically and mechanically connected together. For example, the highly electrically conductive frame members 370a-h are each provided with connecting ends having through holes 371 to allow a fastener (e.g. highly electrically conductive nuts and bolts) to connect the electrically conductive frame members 370a-h to each other or to other electrical components (e.g. rechargeable batteries 332, cam-locks 324a, 324b, back-charge diode module 348, smart switch 450). The highly electrically frame members 370a-h, for example, are flat highly electrically conductive bars (e.g. copper or aluminum bars) bent along multiple spaced apart axes to provide a three dimensionally (3D) arrangement of each highly electrically conductive bar 370a-h, which cooperate together to define a three dimensional (3D) highly electrically conductive frame 370. As shown in
(178) The highly electrically conductive frame 370, for example, can be a highly electrically conductive semi-rigid or rigid frame 370 made of semi-rigid or rigid highly conductive material (e.g. copper, aluminum, plated metal, gold plated metal, silver plated metal, steel, coated steel, stainless steel). The highly electrically conductive frame 370 is structurally stable (i.e. does not move or flex) so that it does not contact and electrically short with components or parts of the portable jump starting device. The more rigid the highly electrically conductive frame 370 typically the more structurally stable is the highly electrically conductive frame 370.
(179) The highly electrically conductive frame 370 electrically connects together the two (2) batteries 332, for example Li-ion batteries 332 with the cam-locks 324a, 324b. The cam-locks 324a, 324b connect to the removable or detachable positive and negative battery cables 56, 58 (
(180) The highly electrically conductive frame 370 comprises multiple highly electrically conductive frame members 370a-h. For example, highly electrically conductive frame members 370a, 370b, 370c, 370d are connected to the control switch 318 via the terminals 382a, 384a, 386a, 388a (also see terminals 82a, 84a, 86a, 88a of the control switch 18 shown in
(181) The highly electrically conductive frame members 370d, 370e, 370f are part of the reverse flow diode assembly 348 (see reverse flow diode assembly 48 in
(182) The highly electrically conductive frame member 370f is connected to the positive cam-lock 324a (also see positive cam-lock 24a shown in
(183) The highly electrically conductive frame member 370g is connected to the negative cam-lock 324b (see negative cam-lock 24b shown in
(184) The highly electrically conductive frame member 370h connects to the smart switch 450 (also see smart switch 150 shown in
(185) The highly electrically conductive frame 370 is a three-dimensional (3D) structure configured to wrap around and partially or fully enclose the Li-ion batteries 332 (also see the rechargeable Li-ion batteries 132 shown in
(186) The highly electrically conductive frame members 370a-h are provided with ends having through holes to accommodate highly conductive fasteners 406 (e.g. see conductive fasteners 206, including bolts 206a and nuts 206b shown in
(187) The highly electrically conductive frame 370 is made from flat highly electrically conductive plate stock material (e.g. flat bars or strips of copper or aluminum stock material cut to length, bent, and drilled).
Battery Assembly
(188) The Li-ion battery assembly 333 according to the present invention is shown in
(189) The Li-ion battery assembly 333 comprises the one or more rechargeable Li-ion batteries 332. For example, the rechargeable battery jump starting device comprises two (2) rechargeable batteries 332.
(190) The Li-ion batteries 332 each comprise multiple battery cells 335 connected together in series (i.e. positive tab of one rechargeable battery cell 335 connected to negative tab of adjoining rechargeable battery cell 335) resulting in one rechargeable battery cell 335 situated at one end of the multiple battery cells 335 having a positive terminal (+) and another rechargeable battery cell 335 situated at an opposite end of the multiple battery cells 335 having a negative terminal (−).
(191) A positive highly conductive battery member 332a is connected to the positive terminal (+), and a negative highly conductive battery member 332b is connected to the negative terminal (−). The positive highly conductive battery member 332a and the negative highly conductive battery members 332b can be highly electrically conductive bars, plates, rods, and tubes. The rods and tubes can have flattened ends to facilitate connection with the highly electrically conductive frame 370 (
(192) Each Li-ion battery 332 comprises multiple Li-ion battery cells 332c layered one on top of the other, as shown in
(193) The positive foil tab or end 335a of the positive terminal (+) of the Li-ion battery cells 335 is connected (e.g. soldered, welded, and/or mechanically fastened) to the positive highly conductive battery member 332a. The negative foil tab or end 335b of the negative terminal (−) of the Li-ion battery cells 335 is connected (e.g. soldered, welded, and/or mechanically fastened) to the negative highly conductive battery member 332b.
(194) The positive highly conductive battery member 332a and the negative highly conductive battery member 332b are made from highly conductive flat plate or bar stock material (e.g. copper plate, copper bar, aluminum plate, aluminum bar, steel plate, steel bar, metal coated plate, gold plated plate, silver plated plate). The positive highly conductive battery member 332a is provided with a through hole 332c located at an end extending a distance outwardly from a side of the rechargeable Li-ion battery 332 (i.e. transverse to longitudinal axis or length the rechargeable battery cells 335 and the rechargeable Li-ion battery 332). The negative highly conductive battery member 332b is provided with a through hole 332c located at an end extending a distance outwardly from and oriented transversely relative to the rechargeable battery cells 335 and the rechargeable Li-ion battery 332.
(195) The highly conductive battery members 332a, 332b are made of relatively thick plate or bar material. The foil tabs or ends 335a, 335b of the battery cells 332c can at least partially or fully wrap around the highly conductive battery members 332a, 332b, as shown in
(196) The rechargeable battery cells 335 are covered with protective heat shrink material to package the rechargeable batteries 332.
(197) The highly conductive battery members 332a, 332b are connected by highly conductive fasteners (e.g. nuts and bolts) to the highly electrically conductive frame such as highly electrically conductive frame 370 (
(198) The rechargeable battery jump starting device 310 (
(199) The highly electrically conductive frame 370 comprises positive conductive pathways from the positive terminal connectors 332a, 332a of the rechargeable batteries 332, 332 of the rechargeable battery assembly 333 to the connection with the positive battery cable 56 (e.g. direct cable connection or via cam-lock 324a) and negative conductive pathways from the negative terminal connectors 332b, 332b of the rechargeable batteries 332, 332 of the rechargeable battery assembly 33 to the connection with the negative battery cable (e.g. direct cable connection or via cam-lock 324b).
(200) As shown in
(201) The positive terminal connector tab or end 332a is a positive terminal foil tab or end of the rechargeable battery cells 335 connected in series at one end and the negative terminal connector tab or end 332b is a negative foil tab or end of the rechargeable battery cells 335 connected in series at an opposite end. A side of the positive electrically conductive member 332a (i.e. highly electrically conductive bar 332a) is connected flat against the positive foil tab or end 335a of the series of rechargeable battery cells 335 and a side of the negative electrically conductive member 332b (i.e. highly conductive bar 332b) is connected flat against the negative foil tab or end 335b of the series of rechargeable battery cells 335. For example, the positive foil tab or end 335a and the negative foil tab or end 335b are soldered to the positive electrically conductive member 332a and the negative electrically conductive member 332b, respectively. Further, the positive electrically conductive member 332a (i.e. highly conductive bar 332a) and negative electrically conductive member 332b (i.e. highly conductive bar 332b) are each provided with a through hole 332c for connection with the highly electrically conductive frame 370 (
(202) To enhance the conductivity between the series of rechargeable battery cells 335 and the positive electrically conductive member 332a (i.e. highly conductive bar 332a) and negative electrically conductive member 332b (i.e. highly conductive bar 332b), the positive foil tab or end 335a and the negative foil tab or end 335b are at least partially or fully wrapped around the positive electrically conductive member 332a (i.e. highly conductive bar 332a) and negative electrically conductive member 332b (i.e. highly conductive bar 332b), respectively, and also soldered and/or welded thereto. The ends of the positive electrically conductive member 332a (i.e. highly conductive bar 332a) and negative electrically conductive member 332b (i.e. highly conductive bar 332b) protrude from the sides of the positive foil tab or end 335 and the negative foil tab or end 335b, respectively.
(203) Again, the rechargeable battery cells 335 are connected in series and layered one on top of the other to provide the rechargeable battery assembly, as shown in
(204) The rechargeable battery assembly 332 used in a rechargeable jump starting device 310 comprises one or more rechargeable battery cells having a positive terminal connector; a negative terminal connector; a positive electrically conductive bar connected to the positive terminal connector; and a negative electrically conductive bar connected to the negative terminal connector.
Circuits
(205) The functional block diagram of the rechargeable battery jump starting device 310 (