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| cb1rocket |
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 cb1rocket World Chat Champion
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| The Shaggy D.A. |
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 The Shaggy D.A. Super Spammer

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 Posted: 19:42 - 26 Mar 2011 Post subject: |
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You want a voltage divider circuit, where R1 and R2 is a percentage of the voltage you desire in comparison to the input voltage, i.e. if the input voltage is 10v and R1 & R2 are the same value, then the output would be half that, or 5V.
This means that if you want 10v out of a 14.5v input, that would be roughly 65% (100/14.5*10), so R1 would need to be about half the value of R2.
[edit] Knew I had it somewhere :-
R2 = O * R1 / (I - O) ____________________ Chances are quite high you are not in my Monkeysphere, and I don't care about you. Don't take it personally.
Currently : Royal Enfield 350 Meteor
Previously : CB100N > CB250RS > XJ900F > GT550 > GPZ750R/1000RX > AJS M16 > R100RT > Bullet 500 > CB500 > LS650P > Bullet Electra X & YBR125 > Bullet 350 "Superstar" & YBR125 Custom > Royal Enfield Classic 500 Despatch Limited Edition (28 of 200) & CB Two-Fifty Nighthawk > ER5 |
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| carvell |
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 carvell Scuttler

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| The Shaggy D.A. |
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 The Shaggy D.A. Super Spammer

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 Posted: 20:05 - 26 Mar 2011 Post subject: |
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True, having read up on LiPo charging rates, it says a 5000mAh battery would charge at 5 Amps, so I'd go down the regulator with a decent heatsink route too. ____________________ Chances are quite high you are not in my Monkeysphere, and I don't care about you. Don't take it personally.
Currently : Royal Enfield 350 Meteor
Previously : CB100N > CB250RS > XJ900F > GT550 > GPZ750R/1000RX > AJS M16 > R100RT > Bullet 500 > CB500 > LS650P > Bullet Electra X & YBR125 > Bullet 350 "Superstar" & YBR125 Custom > Royal Enfield Classic 500 Despatch Limited Edition (28 of 200) & CB Two-Fifty Nighthawk > ER5 |
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| Codemonkey |
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 Codemonkey Crazy Courier

Joined: 18 Oct 2009 Karma :  
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 Posted: 20:35 - 26 Mar 2011 Post subject: |
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Another option might be to get 4 big silicon diodes rated at greater than whatever the maximum charge current is and connect them in series in line with one of the leads. Each diode should drop about 0.6V, 4 should get you about 2.4 volts drop. Make sure they're not Shottky type though cos they only drop about 0.2V each.
Resistor divider isn't really much good with loads that vary like a charger since you need to know the currents to size the resistors, and since the currents vary, you would need resistors that do automatically, or as the posters above suggested, use a regulator.
Dropping just 2 volts might be a tall order for lots of regulators though, often they need a bigger in/out voltage difference to be able to function correctly, so if you do down that route, look for a "low drop out" regulator, (means it doesn't need as big a differential).
If you go for the easy diode option, connect them up like this:
+14V in -------|>|---|>|---|>|---|>|-------- +11.6V to charger |
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| gfiandy |
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 gfiandy Two Stroke Sniffer
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| Codemonkey |
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 Codemonkey Crazy Courier

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| finpos |
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 finpos World Chat Champion
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| cb1rocket |
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 cb1rocket World Chat Champion
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 Posted: 14:43 - 27 Mar 2011 Post subject: |
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| Codemonkey wrote: | Another option might be to get 4 big silicon diodes rated at greater than whatever the maximum charge current is and connect them in series in line with one of the leads. Each diode should drop about 0.6V, 4 should get you about 2.4 volts drop. Make sure they're not Shottky type though cos they only drop about 0.2V each.
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cheers sounds like the easiest option, I'm sure memory served at school GCSE that putting reisistors in the series circuit will dim the bulbs hence reducing the voltage. Then I also knew that with resistors in parallel you would put a load on the source, like for LED indicators that flash too fast.
| Quote: | You want a voltage divider circuit, where R1 and R2 is a percentage of the voltage you desire in comparison to the input voltage, i.e. if the input voltage is 10v and R1 & R2 are the same value, then the output would be half that, or 5V.
This means that if you want 10v out of a 14.5v input, that would be roughly 65% (100/14.5*10), so R1 would need to be about half the value of R2.
[edit] Knew I had it somewhere :-
R2 = O * R1 / (I - O) |
Shaggy thanks for the voltage divider circuit idea, I did see that crop up alot on google searches. Will have to experiment on that.
| gfiandy wrote: | wrote:
If this battery is a large lithium cell as I suspect, please stop this project now unless you can find someone who really knows what they are doing.
Lithium cells are very sensitive to their charging voltage they don't like spike or noise on the charging system and need carefull voltage and current regulation. |
| codemonkey wrote: | wrote: To be fair, if he takes the supply to the charger directly from the bike battery, there should be very few spikes. Batteries are effectively massive capacitors, and unless the electrolyte is dried out, they will just absorb any spike delivered to them. Not to mention the regulator on the bike that is there to prevent such spikes getting to the battery in the first place, and ensure a nice smooth charging voltage |
I agree with this as all the spikes, regulation etc is already protected and hence I have my own lipo charger that specifies 9v - 15v. And have been charging lipo with the car running or not without problems not to mention the fact that the charger itself has its own built in regulator. Lipo batteries that have been charged include 7.4v - 800mAh to bigger 14.8v 5Ah lipos without a hitch.
So my only concern is to reduce the input voltage for my mate's charger despite with its own built in regulator for the lipos itself.
I'm still pretty keen on the diode idea, but the voltage divider circuit i'm also keen on. I don't actually understand why its needs a resistor in parallel, and I need to understand how to calculate values needed. I know for a fact that from vague memory the charger will draw no more than 3 amps maximum on a largish lipo cell.
If i was to go the diode route could I have a linky to some online that may be suitable? So far great advice and much appreicated. |
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| cb1rocket |
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 cb1rocket World Chat Champion
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 Posted: 14:52 - 27 Mar 2011 Post subject: |
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Carvell, thanks for your idea also. How would that be wired into the circuit? It has 3 legs for what looks like a postive, negative and another negative/common earth? |
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| cb1rocket |
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 cb1rocket World Chat Champion
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| Codemonkey |
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 Codemonkey Crazy Courier

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| cb1rocket |
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 cb1rocket World Chat Champion
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| Codemonkey |
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 Codemonkey Crazy Courier

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 Posted: 19:28 - 27 Mar 2011 Post subject: |
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| cb1rocket |
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 cb1rocket World Chat Champion
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| The Shaggy D.A. |
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 The Shaggy D.A. Super Spammer

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 Posted: 19:58 - 27 Mar 2011 Post subject: |
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| cb1rocket wrote: | the voltage divider circuit i'm also keen on. I don't actually understand why its needs a resistor in parallel, and I need to understand how to calculate values needed. |
The voltage at the point between where R1 and R2 join (i.e. Vout) is proportional to their added value. To make things easier, assume Vin is 10 volts, and both R1 and R2 have value of 100 ohms. Both sides of the R1/R2 connection are equal, so half the voltage goes to Vout, the other goes to earth, making Vout 5 volts.
If R1 was 100 and R2 was 300, the total R would be 400; this means that 100/400 would go to earth, and 300/400 would become Vout, or 7.5 volts. ____________________ Chances are quite high you are not in my Monkeysphere, and I don't care about you. Don't take it personally.
Currently : Royal Enfield 350 Meteor
Previously : CB100N > CB250RS > XJ900F > GT550 > GPZ750R/1000RX > AJS M16 > R100RT > Bullet 500 > CB500 > LS650P > Bullet Electra X & YBR125 > Bullet 350 "Superstar" & YBR125 Custom > Royal Enfield Classic 500 Despatch Limited Edition (28 of 200) & CB Two-Fifty Nighthawk > ER5 |
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 carvell Scuttler

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| cb1rocket |
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 cb1rocket World Chat Champion
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 Posted: 20:52 - 27 Mar 2011 Post subject: |
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| The Shaggy D.A. wrote: | | cb1rocket wrote: | the voltage divider circuit i'm also keen on. I don't actually understand why its needs a resistor in parallel, and I need to understand how to calculate values needed. |
The voltage at the point between where R1 and R2 join (i.e. Vout) is proportional to their added value. To make things easier, assume Vin is 10 volts, and both R1 and R2 have value of 100 ohms. Both sides of the R1/R2 connection are equal, so half the voltage goes to Vout, the other goes to earth, making Vout 5 volts.
If R1 was 100 and R2 was 300, the total R would be 400; this means that 100/400 would go to earth, and 300/400 would become Vout, or 7.5 volts. |
cheers for that, that cleared it up a bit. As I understand R2 is needed to take some of the voltage away as without R2 only the current would be reduced if R2 was omitted? correct?
Also what power rated resistors would I need to go for? I know power is current x volts. But do I just factor in the reduction in voltage so that (14.5 - 12=) 2.5 volts x current draw at roughly 3 amps is going to be a power rating of 7.5 watts? If so that would be ceramic resistors.
cheers for all the other replies so far, i'll get back to them ideas. Got something to do  |
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| Codemonkey |
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 Codemonkey Crazy Courier

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 Posted: 21:17 - 27 Mar 2011 Post subject: |
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You're going to struggle to do this with a resistor divider network. You need to calculate the values twice.
Case 1: For the circuit when there is no load on it (no battery being charged),
Case 2: for full load (flat battery being charged).
The voltage dropped across resistor R1 is proportional to the current flowing through it (V = I x R), hence it will drop a different amount of volts in both cases.
Resistor R2 helps in Case 1 by providing a path for current to flow through R1 when there is no load (or very little load). When the load is increased it will effectively be in parrallel with the load and conducting very much less current than is flowing through the load. You can effectively discount it and use the current flowing through the load instead.
You can do this with resistors, but you will be losing more power dissipated as heat than you are going to be using to charge the battery. Resistor dividors work well when there is very little load (eg, when you need to create a certain reference voltage within a circuit, or to scale a voltage to a lower level), but they are pretty much useless when you need to create a certain voltage out for a varying load.
To work out how much power a resistor dissipates, it is I squared R
so, Current squared times the ohms value of the resistor. so eg for a 10 ohm resistor and 5 amps flowing through it, that would be 5 x 5 x 10 = 250W. At that current it would drop V = I x R so 5A x 10ohms = 50V.
You need to drop 2V at 5A, so R1 can be found by R = V/I = 2V / 5A = 0.4ohms
It would dissipate 5A x 5A x 0.4ohms = 10Watts when the battery is charging.
However, when the battery is not charging, lets be generous and say the charger would still draw 1A, R1 would now only drop 1A x 0.4ohms = 0.4V
You can size the resistors for each case, but not both. |
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| The Shaggy D.A. |
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 The Shaggy D.A. Super Spammer

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| cb1rocket |
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 cb1rocket World Chat Champion
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 Posted: 23:12 - 27 Mar 2011 Post subject: |
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Many thanks so far for all replies.
After much thought about everything on all the circuits it seems the only way forward is to just sodding buy one rather than bother making one from scratch.
The voltage divider was my favourite, along with the basic of using diodes but saw the pitfalls when the loads differ from each state of the charging lipo with regards to current draw having an affect on input voltage, esp. when on standby with load being light that the voltage drops as much as 6v! When under load it can be just right at being 12v. Sodding lipo charger! Wish I just got him to get a charger with variable input voltage, so much for the cost savings!
I saw this and thought thats great if only they had a 3 amp version so to speak:
https://cgi.ebay.co.uk/12V-DC-Voltage-Regulator-Module-Board-Based-7812-/150448615786?pt=UK_ConsumerElectronics_SpecialistRadioEquipment_SM&hash=item23076fb16a
Some of you have said using regulators so please post all your regulator ideas. Does some of you not think it would consist of another bog standard bike reg/rec that could be used? cheers to all and karma for all  |
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| kramdra |
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 kramdra World Chat Champion

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 Robby Dirty Old Man

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 cb1rocket World Chat Champion
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Old Thread Alert!
The last post was made 15 years, 102 days ago. Instead of replying here, would creating a new thread be more useful? |
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