Срочно помогите решить задачу с физики Дві однакові електричні лампочки, розраховані на напругу

Problem Analysis

We have two identical light bulbs connected to an electrical circuit with a voltage of 6.3V. One bulb lights up for 2 minutes, while the other bulb lights up for 3 minutes. We need to determine which bulb had a greater amount of electrical work done by the electric current.

Solution

To determine which bulb had a greater amount of electrical work done, we need to calculate the electrical power consumed by each bulb. The electrical power can be calculated using the formula:

Power (P) = Voltage (V) * Current (I)

Since the two bulbs are identical and connected in the same circuit, they will have the same current flowing through them. Therefore, we can compare the power consumed by each bulb by comparing their voltages.

Let's calculate the power consumed by each bulb:

For the first bulb: Voltage (V1) = 6.3V Time (t1) = 2 minutes = 2 * 60 seconds = 120 seconds

For the second bulb: Voltage (V2) = 6.3V Time (t2) = 3 minutes = 3 * 60 seconds = 180 seconds

Now, let's calculate the power consumed by each bulb using the formula mentioned above:

Power (P1) = V1 * I Power (P2) = V2 * I

Since the current (I) is the same for both bulbs, we can compare the powers by comparing the voltages.

Comparison of Powers

Comparing the powers, we can conclude that the bulb with a higher voltage had a greater amount of electrical work done by the electric current.

Therefore, the bulb that was lit for 3 minutes had a greater amount of electrical work done by the electric current.

Conclusion

In conclusion, the bulb that was lit for 3 minutes had a greater amount of electrical work done by the electric current compared to the bulb that was lit for 2 minutes. The difference in the duration of lighting can be attributed to the difference in the voltages of the two bulbs.

Please let me know if you need any further assistance!