[tex]dane:\\m = 48 \ g = 0,048 \ kg\\T_1 = 20^{o}C\\T_2 = 180^{o}C\\\Delta T = T_2 - T_1 = 180^{o}C = 20^{o}C = 160^{o}C\\c = 460\frac{J}{kg\cdot^{o}C}\\szukane:\\\Delta Q = ?\\\\Rozwiazanie\\\\\Delta Q = c\cdot m\cdot \Delta T\\\\\Delta Q = 460\frac{J}{kg\cdot^{o}C} \cdot0,048 \ kg \cdot160^{o}C\\\\\Delta Q = 3 \ 532,8 \ J\approx3 \ 533 \ J[/tex]
Odp. Energia wewnętrzna wzrosła o ok. 3 533 J.