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jonlaury
Joined: 06 Nov 2006
Posts: 336
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 Posted: Sat Oct 22, 2011 7:58 am Post subject: Reduce PS voltage |
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I'm trying to reform the caps in an old unused Whelen strobe PS by using an independent PS.
A Whelen tech suggested powering up the Whelen PS at 6vdc to see if it works. And if it does, then power up to 12v
Whelen's white paper says use 9v for 15 min, then 12v.
Other people have reformed in steps, 6v, 9v, 12v.
How do I step down the voltage of my independent 13.5 PS?
The Whelen PS says it uses 7a. I tried using 4 'C' cells in series but the voltage dropped to mV, so I'm deducing that I need an independent supply capable of more amperage. At 6v, will I be trying to dissipate 7.5v x 7a = 42W? That's a lot of heat if I just add a big honkin' resistor to the 13.5 v supply. Don't know if there are resistors that big. I think there must be a more sophisticated way to do this.
Thanks,
John
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klehman(at)albedo.net
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| Posted: Sat Oct 22, 2011 9:59 am Post subject: Reduce PS voltage |
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I think I used a 12 volt headlight bulb as a "resistor" when I did this
but too long ago to be sure. IIRC the average current is considerably
less than 7 amps. Suspect I would have paralleled a second bulb for the
intermediate voltage. I always keep a spare headlight bulb or two in
stock. Other things that you can play with include resistance
appliances. A 1500 watt kettle would be around 1500/120v = 12.5 ohms.
Two in parallel would be 6.25 ohms.
Ken
On 22/10/2011 11:58 AM, jonlaury wrote:
| Quote: |
"jonlaury"<jonlaury(at)impulse.net>
I'm trying to reform the caps in an old unused Whelen strobe PS by
using an independent PS. A Whelen tech suggested powering up the
Whelen PS at 6vdc to see if it works. And if it does, then power up
to 12v Whelen's white paper says use 9v for 15 min, then 12v.
Other people have reformed in steps, 6v, 9v, 12v.
How do I step down the voltage of my independent 13.5 PS?
The Whelen PS says it uses 7a. I tried using 4 'C' cells in series
but the voltage dropped to mV, so I'm deducing that I need an
independent supply capable of more amperage. At 6v, will I be trying
to dissipate 7.5v x 7a = 42W? That's a lot of heat if I just add a
big honkin' resistor to the 13.5 v supply. Don't know if there are
resistors that big. I think there must be a more sophisticated way
to do this.
Thanks, John
|
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retasker(at)optonline.net
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| Posted: Sat Oct 22, 2011 4:13 pm Post subject: Reduce PS voltage |
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Good ideas, but your calculations for a 1500 watt kettle are wrong. You have calculated the current consumption (Current=Watts/Voltage). To calculate ohms use: watts = (voltage * voltage) /
resistance or more specifically resistance = (voltage * voltage) / watts. Or in this case (120*120)/1500 = 9.6 ohms. It is probably somewhat less than this since it won't heat to the normal
operating temperature and the resistance goes up as it heats.
Dick Tasker
Ken wrote:
| Quote: |
I think I used a 12 volt headlight bulb as a "resistor" when I did this
but too long ago to be sure. IIRC the average current is considerably less than 7 amps. Suspect I would have paralleled a second bulb for the
intermediate voltage. I always keep a spare headlight bulb or two in stock. Other things that you can play with include resistance appliances. A 1500 watt kettle would be around 1500/120v = 12.5
ohms. Two in parallel would be 6.25 ohms.
Ken
On 22/10/2011 11:58 AM, jonlaury wrote:
>
> "jonlaury"<jonlaury(at)impulse.net>
>
> I'm trying to reform the caps in an old unused Whelen strobe PS by
> using an independent PS. A Whelen tech suggested powering up the
> Whelen PS at 6vdc to see if it works. And if it does, then power up
> to 12v Whelen's white paper says use 9v for 15 min, then 12v.
>
> Other people have reformed in steps, 6v, 9v, 12v.
>
> How do I step down the voltage of my independent 13.5 PS?
>
> The Whelen PS says it uses 7a. I tried using 4 'C' cells in series
> but the voltage dropped to mV, so I'm deducing that I need an
> independent supply capable of more amperage. At 6v, will I be trying
> to dissipate 7.5v x 7a = 42W? That's a lot of heat if I just add a
> big honkin' resistor to the 13.5 v supply. Don't know if there are
> resistors that big. I think there must be a more sophisticated way
> to do this.
>
> Thanks, John
|
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klehman(at)albedo.net
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| Posted: Sat Oct 22, 2011 6:20 pm Post subject: Reduce PS voltage |
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Yes thanks - I should read before sending.
1500 watts/120volts = 12.5 AMPS
120volts/12.5 amps=9.6 ohms
Ken
On 22/10/2011 8:08 PM, Richard E. Tasker wrote:
| Quote: |
<retasker(at)optonline.net>
Good ideas, but your calculations for a 1500 watt kettle are wrong. You
have calculated the current consumption (Current=Watts/Voltage). To
calculate ohms use: watts = (voltage * voltage) / resistance or more
specifically resistance = (voltage * voltage) / watts. Or in this case
(120*120)/1500 = 9.6 ohms. It is probably somewhat less than this since
it won't heat to the normal operating temperature and the resistance
goes up as it heats.
Dick Tasker
Ken wrote:
>
>
> I think I used a 12 volt headlight bulb as a "resistor" when I did this
> but too long ago to be sure. IIRC the average current is considerably
> less than 7 amps. Suspect I would have paralleled a second bulb for the
> intermediate voltage. I always keep a spare headlight bulb or two in
> stock. Other things that you can play with include resistance
> appliances. A 1500 watt kettle would be around 1500/120v = 12.5 ohms.
> Two in parallel would be 6.25 ohms.
> Ken
>
> On 22/10/2011 11:58 AM, jonlaury wrote:
>>
>> "jonlaury"<jonlaury(at)impulse.net>
>>
>> I'm trying to reform the caps in an old unused Whelen strobe PS by
>> using an independent PS. A Whelen tech suggested powering up the
>> Whelen PS at 6vdc to see if it works. And if it does, then power up
>> to 12v Whelen's white paper says use 9v for 15 min, then 12v.
>>
>> Other people have reformed in steps, 6v, 9v, 12v.
>>
>> How do I step down the voltage of my independent 13.5 PS?
>>
>> The Whelen PS says it uses 7a. I tried using 4 'C' cells in series
>> but the voltage dropped to mV, so I'm deducing that I need an
>> independent supply capable of more amperage. At 6v, will I be trying
>> to dissipate 7.5v x 7a = 42W? That's a lot of heat if I just add a
>> big honkin' resistor to the 13.5 v supply. Don't know if there are
>> resistors that big. I think there must be a more sophisticated way
>> to do this.
>>
>> Thanks, John
>>
>>
>
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