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- Jul 13, 2010
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My latest build only had room for 2 AAA cells. I have it running on 2, high drain IMR 10440 cells (not ICR cells), these are the kind that they use in e-cigs and vape pens. It'll run it for 2 minutes or so, at the most. But this is a very impressive showing for such tiny little batteries! I just thought I'd put that out there, since I was actually surprised that I got away with that, and it worked. You'll never get it to go with ICR batteries. And just for kicks, here is my dissertation on lithium batteries.
Regular Lithium Ion
ICR LiCoO2 (Lithium Cobalt Oxide)
High Discharge Capacity
IFR LiFePo4 (Lithium Iron Phosphate)
IMR LiMn2O4 (Lithium Manganese Oxide)
INR LiNiMnCoO2 (Lithium Iron Phosphate With Nickel/Manganese Oxide)
Primary cells (non-rechargeable)
ER Li-SOCl2 (Lithium Thionyl Chloride)
LS Li-SOCl2 (Lithium Thionyl Chloride)
CR Li-MnO2 (Lithium-Manganese Dioxide)
BR Li-(CF)x (Lithium-Carbon Monofluoride)
FR Li-FeS2 (Lithium-Iron Disulfide) - 1.5 to 1.8V "Energizer Ultimate"
The numbering usually refers to the size of the battery, a 14500 refers to "AA" size of 14mm x 45mm, a 18650 is 18mm x 65mm, and so on. At least with ICR, IMR, INR, and IFR types. So, "AA" size 3.7V primary cells are ER14500 or LS14500.
I'm going to add a breakdown on C rating.
There are a couple of factors to consider when trying to quantify capacity and discharge capacity. The "C" number is the minimum time the battery can be safely discharged completely in, quantified in fractions of one hour. So when they give you the capacity in mAh, they are telling you the 1C for the battery. So a 5Ah battery can be discharged completely if discharged @ 5A for one hour. This way you can multiply the mAh capacity by the C number to calculate the maximum sustainable discharge rate, in amps, with the time you can do it in given.
Let's say we have 2 identical looking packs, same size and weight, same capacity, 5Ah, but we'll make the first one a 20C and the other a 30C. The 20C battery can be discharged in (60/20=3) 3 minutes @ (20x5=100) 100A. The 30C battery can be discharged in (60/30=2) 2 minutes @ (30x5=150) 150A.
I hope maybe that will be helpful to someone, it took some research to learn all that. And if you want a high power laser, you really need high power batteries.
Regular Lithium Ion
ICR LiCoO2 (Lithium Cobalt Oxide)
High Discharge Capacity
IFR LiFePo4 (Lithium Iron Phosphate)
IMR LiMn2O4 (Lithium Manganese Oxide)
INR LiNiMnCoO2 (Lithium Iron Phosphate With Nickel/Manganese Oxide)
Primary cells (non-rechargeable)
ER Li-SOCl2 (Lithium Thionyl Chloride)
LS Li-SOCl2 (Lithium Thionyl Chloride)
CR Li-MnO2 (Lithium-Manganese Dioxide)
BR Li-(CF)x (Lithium-Carbon Monofluoride)
FR Li-FeS2 (Lithium-Iron Disulfide) - 1.5 to 1.8V "Energizer Ultimate"
The numbering usually refers to the size of the battery, a 14500 refers to "AA" size of 14mm x 45mm, a 18650 is 18mm x 65mm, and so on. At least with ICR, IMR, INR, and IFR types. So, "AA" size 3.7V primary cells are ER14500 or LS14500.
I'm going to add a breakdown on C rating.
There are a couple of factors to consider when trying to quantify capacity and discharge capacity. The "C" number is the minimum time the battery can be safely discharged completely in, quantified in fractions of one hour. So when they give you the capacity in mAh, they are telling you the 1C for the battery. So a 5Ah battery can be discharged completely if discharged @ 5A for one hour. This way you can multiply the mAh capacity by the C number to calculate the maximum sustainable discharge rate, in amps, with the time you can do it in given.
Let's say we have 2 identical looking packs, same size and weight, same capacity, 5Ah, but we'll make the first one a 20C and the other a 30C. The 20C battery can be discharged in (60/20=3) 3 minutes @ (20x5=100) 100A. The 30C battery can be discharged in (60/30=2) 2 minutes @ (30x5=150) 150A.
I hope maybe that will be helpful to someone, it took some research to learn all that. And if you want a high power laser, you really need high power batteries.
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