Voltage Conversion

It is not possible. I have had too many electronic courses to know what you said goes against the laws of Physics

Facts:
Wattage = Voltage * Amperage
Voltage = Amperage * Resistance

These are the two formulas and you can write them however you want; I am not going to argue with the letters you choose to use

The amount of energy a motor uses is referred to in Watts, which are Volts * Amps
Note: 746 watts is roughly 1 Horse Power

A DC motor will have a certain amount of resistance that you cannot change unless you swap it for a different motor. I.e. You can swap a 12v motor with a 6v motor for instance!

Say that resistance is 2 ohms and you have a 12 volt battery.

12 volts = 6 amps * 2 ohms

12 volts * 6 amps = 72 Watts (Amount of Energy Motor consumes)

Okay, so now you feed the motor a lower the voltage (6 Volts)... The amperage will NOT increase; in fact, here is what happens:

6 Volts = 3 amps * 2 ohms

6 Volts* 3 Amps = 18 Watts

Ohms Law:
Decreasing the voltage with an unchanging resistance results in lower amperage (current)

You can work the Algebra to solve for anything you want with either formula or a combination of the two.
Volts = Amps * Resistance
Amps = Volts / Resistance
Resistance = Volts / Amps

Honestly, chances are good that a DC motor operates somewhat like a transformer or inductor with collapsing magnetic fields. It likely has changing impedance instead of resistance; in other words, its resistance may change similar to how inductive reactance works in AC circuits.

Please, search google for out of phase impedance, inductive reactants, capacitive reactance, and you will know much more.

I do NOT have the time now to a project like this, but here is how I would have gone about it:

Get a regulated DC power supply and set the voltage at 6 Volts and measure the current with an ammeter (multimeter works great). It needs to be wired in SERIES to do this! Now, you have the voltage and the current, so calculating the resistance of the motor is not hard.

Now, set the regulated DC supply at 12 Volts and again measure the current then calculate the resistance. This is a method to determine if changing the voltage impacts the motor's internal resistance!

FYI, when light bulbs get hot, their internal resistance changes! I have only AC light bulbs, but for the purpose of lighting AC electricity is the Same as DC only the RMS AC voltage = the DC. Look up RMS

DO NOT do this at home unless you are experienced or careful working with dangerous voltages.

I have a 60 Watt incandescent light bulb, and I measured it with an Ohm meter (actually the ohm function of a multimeter) and I got roughly 20 ohms. (You can check the resistance without adult supervision... can't get shocked doing that). The Lighb bulb was totally removed from the lamp fixture to get a reading.

I measured the AC Line Voltage (DO NOT do this). It is 122 Volts AC (RMS Volts).

Volts = Amps * Resistance
122 = Amps * 20

Amps = 122/20
Amps = 6.1

Watts = 6.1 * 120

At the instantaneous point you turn on a 60 Watt lightbulb, it draws 732 watts when cold. Obviously, that amount of power instantly heats the filament and the resistance goes up A LOT causing the current (amperage) to drop A LOT given relatively constant, unchanging voltage being delivered to the light bulb.

Please, don't ask how fast this happens, unless you want me to respond with a page full of Calculus since in reality it happens about as quickly as electricity flows though the filament takes a bit longer than that to heat. We are talking about small fractions of a second that are not even close enough to cause any heat or pop circuit breakers. It is generally in the interest of forum members to stick to Algebra with explanation because almost everyone can follow along. Seriously, you can take it further with derivatives if you would like to show the relationship of the instantaneous rate of change of resistance with respect to time dR/dt. Quite simply, you would plug in some info and differentiate. It is not that Calculus is tough or that you will not get it because in reality most of our members on this forum are very intelligent and would find Calculus easy. However, we feel that given their age it is unlikely many have had it or the background knowledge required to contemplate that way of thinking. I.e. Limits come first since by its very definition a derivative is actually a formula describe in terms of limits :-)

Does any of this make sense?

Great Also Consider?
It sounds totally silly since you would think the motor is the only item in the circuit, but I tell you it is not! In fact, a cheap power supply or battery WILL drop some of the voltage across its own internal resistance. I.e. Perhaps you get 5.9 volts across the motor and could calculate that .1 is across the power supply internally.

Another one for you:

What are High-Discharge batteries, and why are they preferable in high-drain devices?

Hypothetical:
Cheap Battery 10 ohms internal resistance
Better Battery 1 ohm internal resistance

Let's say each batter registers 10 volts on a volt meter.

We then wire a 10 ohm load to each battery.

Well, with the 10 ohm battery and 10 ohm load, 5 volts is dropped across the battery, and the output voltage drops to only 5 volts on a 10 ohm load. Hence, under stress, the lower discharge battery drops more voltage across itself and turns into an internal heater.

In contrast:

The 1 ohm battery with a 10 ohm load will drop 10 * (10/11) or about 9 volts across the load meaning it is actually delivering 9 volts. The other 1 volt gets dropped across the battery internally.

Make sense?

United-TI: Voltage Conversion - United-TI