解:
(1) 不放物體時�����,裝置漂浮����,根據(jù)物體漂浮時浮力等于重力,可得:
?$F_{浮1}=G_{總}=m_{總}g = 0.21kg\times10N/kg = 2.1N����。$?
(2) 此時裝置排開水的體積?$V_{排}=Sh = 3\times10^{-3}m^{2}\times0.11m = 3.3\times10^{-4}m^{3},$?
根據(jù)阿基米德原理?$F_{浮}=\rho_{水}gV_{排}����,$?可得此時裝置受到的浮力:
?$F_{浮2}=\rho_{水}gV_{排}=1.0\times10^{3}kg/m^{3}\times10N/kg\times3.3\times10^{-4}m^{3} = 3.3N。$?
此時裝置和物塊的總重力?$G_{總}' = F_{浮2}=3.3N�,$?
物塊的重力?$G_{物}=G_{總}'-G_{總}=3.3N - 2.1N = 1.2N,$?
物塊的質(zhì)量?$m_{物}=\frac{G_{物}}{g}=\frac{1.2N}{10N/kg}=0.12kg = 120g���,$?
所以水面所對應(yīng)位置處的刻度線應(yīng)標(biāo)為?$120g�。$?
(3) 物塊的密度?$\rho_{物}=\frac{m_{物}}{V_{物}}=\frac{0.12kg}{1.5\times10^{-5}m^{3}} = 8\times10^{3}kg/m^{3}���。$?
答:
(1) 不放物體時����,該裝置所受的浮力是?$2.1N;$?
(2) 此時該裝置受到的浮力是?$3.3N�����,$?水面所對應(yīng)位置處的刻度線應(yīng)標(biāo)為?$120g���;$?
(3) 物塊?$A$?的密度是?$8\times10^{3}kg/m^{3}���。$?
