Физика-10-11-Задачник-Степанова-2000-ГДЗ (991539), страница 11
Текст из файла (страница 11)
скорость распространения запахов существенноменьше скорости молекулы из-за соударений молекул.563 Т1 = 0,1 К; Т2 = 6000 К; v1, v2 - ?n=Е=mv 23; mv2 = 3 KT; v =КТ ; Е =22v1 =3 ⋅ 1,38 ⋅ 10 23 ⋅ 10 −1 ⋅ 6 ⋅ 10 234 ⋅ 10 −33KT=m3KTN A.Mм / с = 10 ⋅ 6,21 = 25 м / с.3 ⋅ 1,38 ⋅ 10 23 ⋅ 6 ⋅ 10 3 ⋅ 6 ⋅ 10 23м / с = 10 ⋅ 37,3 = 6,1 ⋅ 10 3 м / с = 6,1км / с.4 ⋅ 10 −3564 v = 400 м/с; р = 105 Па; m = 1 кг, V - ?v2 =pV =mm v2 3M 2mv 2RT ; 0 = KT ; m0 v 2 = 3KT;v = 3KT ; T =;M22NA3KN AmMv 2mv 2 1кг ⋅ 4002 м 2 / с 2RT ⋅; V==≈ 0,53 м3.M3KN A3p3 ⋅ 105 Па565 М = 0,029 кг/моль.pV =υ=υ1=υ2υ1M3KT;+ m0 ==m0NAυ20,0296,02 ⋅ 1023⋅1,74 ⋅10-31566 m = 9,1 ⋅ 10mv2 = 3 KT;v=963КТ=m−12m 02=m 01= 1,6 ⋅ 10 −7 ;M;N A m 01υ2= 6 ⋅10 6 ;υ1кг; Т = 20° С = 293 К; v - ?3 ⋅ 1,38 ⋅ 10−23 Дж / К ⋅ 2,93 ⋅ 102 К9,1 ⋅ 10−31 кг= 1,15 ⋅ 105 м / с.567 v = 500 м/с; ñ = 1,35 кг/м3; р - ?111р = nm0 v 2 = ρv 2 = ⋅ 1,35кг / м 3 ⋅ 25 ⋅ 105 м 2 / с 2 = 1,1 ⋅ 10 5 Па .333568 m = 6 кг; V = 5 м3; р = 200 кПа = 2 ⋅ 105 Па; v - ?111m 23 pv3 ⋅ 2 ⋅105 Па ⋅ 5м3v ;v=m0nv 2 = ρv 2 === 7,1⋅102 м / с.m6кг333V569 Молекулы имеют скорости в некотором диапазоне относительносреднеквадратичной, а не строго равны ей.∆ϕdωd; ω = 2πV; 5,4° ≈ 0,1 рад.570 Время полета t.
t = ; t =;υ=υ∆ϕωp=2πdV2 ⋅ 3,14 ⋅ 0,02 м ⋅150 с −1== 200 м / с.∆ϕ0,1571 v1 = 1840 м/с; v2 = 460 м/с; Е1, Е2 - ?υ=Е1 =m1v12 M1v12 2 ⋅ 10−3 кг / моль ⋅ 1,842 ⋅ 106 м 2 / с 2=== 0,56 ⋅ 10− 20 Дж.22N A2 ⋅ 6 ⋅ 1023 моль−1m 2 v12 M 2v12 32 ⋅ 10−3 кг / моль ⋅ 4,62 ⋅ 104 м 2 / с 2=== 0,56 ⋅ 10− 20 Дж.22N A2 ⋅ 6 ⋅ 1023 моль−1Е1 = Е2.572 v = 460 м/с = 4,6 ⋅ 102 м/с; m = 5,3 ⋅ 10-26 кг; М = 32 ⋅ 10-3 кг/моль;р = 105 Па; Т = 293 К; V = 1 м3; Е1, Е2 - ?Е2 =mv12 M1v12 5,3 ⋅ 10−26 кг ⋅ 4,62 ⋅ 104 м 2 / с 2=== 5,6 ⋅ 10− 21 Дж.222PVMNmРV =RT ; N =;MmRTЕ2=NE1=Е1 =РVM mv 2 PVMv2 105 Па ⋅ 1м3 ⋅ 3,2 ⋅ 10−3 кг / моль ⋅ 4,62 ⋅ 104 м 2 / с 2===ДжmRT 22 RT2 ⋅ 8,31⋅ 2,93 ⋅ 102 КК ⋅ моль= 1,4 ⋅ 104 Дж.=mυ 2 5,3 ⋅10 −26 ⋅ 460 23КТ === 5,6 ⋅10 − 21 Дж.222pVN ApVmN A; E =Е = NE0 N =NA ==RTRTMЕ0 =10 5 ⋅1 ⋅ 6,02 ⋅10 23 ⋅ 5,6 ⋅10 −21= 2,5 ⋅10 4 Дж.8,31 ⋅ (273 + 20)573 Т = 290 К; р = 0,8 Мпа; Е - ? n - ?=9733ДжЕ = RT E = ⋅ 1,38 ⋅ 10− 23⋅ 2,9 ⋅ 102 К = 6 ⋅ 10− 21 Дж.2К2p0,8 ⋅ 105 Па== 2 ⋅1026 м −3.KT 1,38 ⋅ 10− 23 Дж ⋅ 2,9 ⋅ 102 КК574 V = 10 л = 10-2 м3; Т = 27° С = 300 К; ∆р = 4,2 кПа = 4,2⋅103 Па;∆N - ?∆p;pV= νRT ; (p - ∆р)V = (V - ∆V) RT; ∆р = ∆ ν RT ; ∆ ν =RTр = nkT; n =4,2 ⋅10 3 ПА= 10 24.2− 23 Дж1,38 ⋅10⋅ 3 ⋅10 КК575 ∆Т = 150 К; v1 = 400 м/с; v2 = 500 м/с; v = 600 м/с; ∆Т` - ?∆pN A ∆p==RTRT∆N = NA∆ ν =mv 22 mv12 33K∆T−= K∆T ; m =;222v 22 − v12m( v 32 − v 22 )= 3K∆Т`;v32 − v22∆T `=v22тN2576m H2VH 2=VN 2577− v12N H2mO2 V 2 O298=M N2M H2=v22 − v126002 − 50025002 − 400228= 14;2= 3K∆T `;K = 15036 − 2511K = ⋅ 150 K = 183K25 − 169E H 2 = E N2 ;m H 2V 2 H 2==mN O2mM H2=M H2M O2mH2 V 2 H22;=2 1= ; EO = E H ;2232 6VO2VH2=mH2mO2=1 1= ;6 42 NH 22EH ;n H 2 ; E H2 =23 V3NPH 2N H22 O22== 16.EO ;= nO2 ; ; E O 2 =2PO2N O23 V3PH 2 =PO2∆T = 150v32 − v222=m N 2V 2 N 2mN 222= 14 = 3,7; PH 2 = nEH 2 ; Р N2 = hE N 2 ; РН2 = РN2.3mH 23N O223K∆T =mv 32 mv 22 3−= K∆T `;2222;578 m 0 =m υ2M3; E 0 = KT = 0 ;NA22m υ23p2nE = nKT = n 0 ; n =32m 0υ 2p=α = 1,9 ⋅ 10-10 м (из таблицы)l==1=nπd 2 2m 0υ 23 pπd 2 2=Mυ 23 N A pπd 2 20,04 ⋅ 4,1423 ⋅ 6,02 ⋅ 10⋅10 5 ⋅ 3,14 ⋅ (1,9 ⋅10 −10 ) 2 ⋅ 223== 2,4 ⋅10 −7 м;υ4,14== 1,73 ⋅10 9 c −1 ;l 2,14 ⋅10 −7p579 p = nKT; n =;KTV=1l=KT==1,38 ⋅10 −23 (273 + 20)nπd 2 2 pπd 2 2 10 5 ⋅ 3,14(3 ⋅10 −8 ) 2 ⋅ 2580 10-3 мм рт.ст.
= 0,133 Па.l=1nπd22=1,38 ⋅10 −23 (273 + 0 )0,33 ⋅ 3,14(3 ⋅10−10 2) ⋅ 2= 1,2 ⋅10 −7 м.= 7,1 ⋅ 10 −2 м.581 D – диаметр сосуда. l ≥ 0.111; n=l===22nπd 2lπd 2 Dπd 2 21== 1,3 ⋅1019 м −3 .0,2 ⋅ 3,14 ⋅ (3 ⋅10 −10 ) 2 ⋅ 2582 Пусть х – кол-во столкновений.1VNмножитель , т.к. в столкновении участвуют две молекулы.х=22p3KT13KT pπd 2 2υ; υ; n=; V =l==2KTlm0m0KTnπd 2V ==6 pπd 2m 0 KTm0 =; N=pVN AmNA =;MRT6 p 2VNAπd 2M; ⇒х=2RTNANA=MKT99=6 1,32 ⋅ 0,00253 ⋅ 6,02 ⋅10 23 ⋅ 3,14 ⋅ (3 ⋅10 −10 ) 228,31 ⋅ 4006,02 ⋅10 230,044 ⋅ 1,38 ⋅10 − 23 ⋅ 400== 1,33 ⋅ 1022 с-1.583 Пусть х – среднее расстояние, х3 = V0 – объем занимаемый одной11V 1х3 = = ; x =; l=;молекулой ⇒ Nx3 = V3N nnnπd 2 22х nπd 2 2N mN A; М = 0,002 кг/моль –== n 3 πd 2 2 ; n ==3VMVlnх−?l2х mN A водород, = 3πd 2 2.l MV 584 На больших высотах, т.к.
там концентрация молекул меньше, а значитсилы взаимного притяжения и отталкивания меньше.585 р = 830 кПа; V = 20 л = 0,02 м3; Т = 17° С = 290 К; М = 2⋅10-3 Кг/мольmpV =RT;MpVM 8,3 ⋅10 5 ПА ⋅ 2 ⋅10 −2 м 3 ⋅ 2 ⋅10 −3 кг / моль== 1,4 ⋅10 − 2 кг = 14 г.ДжRT28,31⋅ 2,9 ⋅10 КК ⋅ моль586 р = 105 Па; Т = 20° = С = 293 К; V = 100 л = 0,1 м3; ν − ? N - ?m=10 5 Па ⋅10 −1 м 3= 4,1моль.Дж8,31⋅ 2,93 ⋅10 2 КК ⋅ кг1=24,6 ⋅ 1023.N = NAν= 4,1 моль ⋅ 6 1023моль587 М = 28 ⋅ 10-3 кг/моль; m = 2 г = 2 ⋅ 10-3 кг; V = 830 см3 = 8,3⋅10-7 м3;р = 0,2 МПа = 2 ⋅ 105 Па; Т -?pV = νRT;pV =ν=рV=RTmpVM 2 ⋅10 5 Па ⋅ 8,3 ⋅10 −4 м 3 ⋅ 2,8 ⋅ 10 −2 кг / мольRT; Т === 280 КДжRmM8,31⋅ 2 ⋅10 −3 кгК ⋅ моль588 Т2 = 367° С = 640 К; Т1 = 47° С = 320К; V1 = 1,8 л = 1,8⋅ 10-3 м3;V2 = 0,3 л = 3 ⋅ 10-4 м3; р1 = 105 Па; р2 - ?р1 V1 p 2V 2;=T2T1р 2 = р1V1 T21,8 ⋅10 −3 м 3 640 К= 10 5 Па⋅= 1,2 ⋅10 6 Па = 1,2МПа.V2 T10,3 ⋅10 −3 м 3 320 К589 V = 40 л = 40 ⋅ 10-3 м3; m = 1,98 кн; М = 4,4 ⋅ 10-2 кг/моль;100р = 30 ⋅ 105 Н/м = 3 ⋅ 106 Н/м2; Т - ?mRT;pV =MpVM 3 ⋅10 6 Па ⋅ 4 ⋅10 −2 м 3 ⋅ 4,4 ⋅10 −2 кг / моль== 3,2 ⋅10 2 К = 320 К .ДжRm8,31⋅1,98кгК ⋅ моль590 m = 16г = 1,6⋅ 102 кг; р = 1 МПа = 106Па; Т = 112° С = 385К;V = 1,6л = 1,6 ⋅ 10-3м3; М - ?Дж1,6 ⋅10 −3 кг ⋅ 8,31⋅ 3,85 ⋅10 2 КmRTmКмоль⋅=RT; M ==pV =MpV10 6 Па ⋅1,6 ⋅10 −3= 32 ⋅ 10-3 кг/моль.
Это кислород О2.4591 р1 = 500 кПа; α = ; р2 - ?5(1 − α ) mmр1 =RT ; р2 = (1 - α) р1 = 100 кПа.RT ; р2 =MM592 V = 200 л = 2 ⋅ 10-1 м3; р1 = 100 кПа = 105 Па; Т1 = 17° С = 290 К;кг; р2 = 300 кПА = 3 ⋅ 105 Па; Т = 47° С = 320 К; ∆ m - ?Т = 4 ⋅ 10-3мольpmRmm + ∆mRT1 ;RT2 ;p, V == 1 ; p 2V =MV T1MMТ=p 2 mR ∆mR =+;T2 MV MV pp MVpp2∆mR= 1+; ∆m = 2 − 1 ;T2 T1 MVTT1 R 2 3 ⋅10 5 Па10 5 Па∆m = − 3,2 ⋅10 2 К 2,9 ⋅10 2 К= 56,64 ⋅ 10-3 кг ≈ 57 г. 4 ⋅10 −3 кг / моль ⋅ 2 ⋅10 −1 м 3=Дж8,31К ⋅ моль593 М = 2⋅ 10-3 кг/моль; V = 10 л = 10-2 м3; Т1 = 7° С = 280 К; Т2 = 17° С = =290 К; р = 500 атм = 5 ⋅ 106 Па; ∆m - ?mmpVHpVH; pV = 2 RT2 ; m 2 =;pV = 1 RT1 ; m1 =RT1RT2MM∆m =pVM 11 5 ⋅10 6 Па ⋅10 −2 м 3 ⋅ 2 ⋅10 −3 кг / моль== −×ДжR T1 T2 8,31К ⋅ моль 10 − 2 10 − 2 66 = 10 − 2 ⋅ 2( − )кг = 2 ⋅ (2,14 − 2,07)кг = 10 −2 = = 1,5 г.× −КК2,82,92829594 р1 = 400 Па; Т1 = 200 К; Т2 = 104 К; р2 - ?р1 = nKT1; p2 = 2nKT2;101p2 = 2p1Т210 4 К= 2 ⋅ 4 ⋅10 2 Па ⋅= 4 ⋅10 4 Па = 40кПа.2Т12 ⋅10 К595 Т = 27° С = 300 К; р = 200 кПа = 105 Па; M = 28 ⋅ 10-3 кг/моль; ρ - ?pM 10 5 Па ⋅ 28 ⋅10 −3 кг / мольρmRT ; p =RT ; ρ === 1,1кг.ДжRTMM8,31⋅ 3 ⋅10 2 КК ⋅ моль596 n1 = 2,7 ⋅ 1025 м-3; Т1 = 293 К; р1 = 105 Па; Т2 = 91° С = 364 К;р2 = 800 кПа = 8 ⋅ 105 Па; ρ2 = 5,4 кг/м3; m0 - ?p2 = n2KT2; m0p2 = ρ2KT2;pV =ρ 2 КТ 2 5,4кг / м 3 ⋅1,38 ⋅10 −23 Дж / К ⋅ 364 К== 3,4 ⋅10 − 26 кг.р28 ⋅10 5 ПаПримечание: Плотность газов не бывает 5,4 ⋅ 103 кг/м3.597 m1=7 г=7⋅10-3 кг; Т1 = 27° С = 300 К; р1 = 50 кПа; М2 = 2⋅10-3 кг/моль;Т2 = 60° С = 333 К; р2 = 444 кПа = 4,44 ⋅ 105 Па; m2 = 4г = 4⋅10-3 кг;М1 - ?p Mmmp Mp p1 M 1р1V = 1 RT1 ;; p 2V = 2 RT2 ; 2 2 = 1 1 ;=Vm1T1m1T1M1M2m 2 T2m0 =p 2 m1T1кг4,44 ⋅10 5 Па ⋅ 7 ⋅10 −3 кг ⋅ 3 ⋅10 2 КM2 =⋅ 2 ⋅10 −3=p1 m 2 T2моль5 ⋅10 4 Па ⋅ 4 ⋅ 10 −3 кг ⋅ 3,33 ⋅10 2 К=28 ⋅ 10-3 кг/моль.∆р598 ∆р = gρ∆h; ∆h =;gρM1 =m RT 1,28 ⋅10 −2 ⋅ 8,31 ⋅ (273 + 27)== 0,997 ⋅10 5 Па.M V0,032 ⋅ 0,01рат = 105 Па.300∆h =∆р = 105 – 0,997 ⋅ 105 = 300 Па.;≈ 0,3cмм9,8 ⋅1000pк =599 V = 5л = 5 ⋅ 10-3 м3; М = 2,8⋅ 10-2 кг/м3; р = 0,5 ⋅ 104 Па; рА = 105 Па;Т = 400 К;ν, m, n - ?(p + pA)V = νRT;( р + р А )V 1,5 ⋅10 5 Па ⋅ 5 ⋅10 −3 м 3== 0,226 моль.ДжRT8,31⋅ 4 ⋅10 2 КК ⋅ мольm = νM = 0,226 моль ⋅ 2,8 ⋅ 10-2 кг/моль ≈ 6,3 ⋅ 10-3 кг.ν=N νN A 0,226 моль ⋅ 6 ⋅10 23==≈ 2,7 ⋅10 25 м −3 .−3 3VV5 ⋅10 м600 m1 = 1 кг; М1 = 2,8 ⋅ 10-2 кг/моль; Тв = 350° С = 623 К;N=102М2 = 2 ⋅ 10-3 кг/моль; Т = 20° С = 293 К; α = 5; m2 - ?mmm11 m1pV = 1 RTв ;pV = 2 RT ;Tв = 2 T ;M1M2M2αα M11 M 2 Tв1 623K 2⋅⋅ ⋅ m1 = ⋅⋅ ⋅1кг = 30 г.5 293K 28α М1 T601 р = 700 мм рт.ст.
= 9,31 ⋅ 104 Па; m1 = 4 г = 4 ⋅ 10-3 кг;m2 =М1 = 2 ⋅ 10-3 кг/моль; m2 = 32 г = 3,2 ⋅ 10-2 кг; М2 = 3,2 ⋅ 10-2кг;мольТ = 7°С = 280 К; ρ - ?mmp1V = 1 RT ; p 2 V = 2 RT ; р1 + р2 = р;M1M2V=m1 RT;M 1 p1p1 =р2m1 RT m 2=RT ;M 1 p1 M 2p2 =m M1m2 M 1p1 ; p1 + 2p1 = p;m1 M 2m1 M 2m M1pp; p2 = 2p1 =;m1 M 1m1 M 1m1 M 21+1+m2 M 2m2 M 2m2 M 1m1 M 2RT m1 m 2 ;=+pp M 1 M 2 m + m2p( m1 + m 2 )ρ= 1==V m1 m 2 RT + M1 M 2 m RT m1 RTV= 1=⋅M 1 p1M11+9,31 ⋅ 104 Па (3,2 ⋅ 10−2 кг + 0,4 ⋅ 10−2 кг )= 0,48 кг/м3.−3−2Дж410кг3,210кг⋅⋅8,31+⋅ 2,8 ⋅ 102 К 2 ⋅ 10−3 кг / моль 3,2 ⋅ 10− 2 кг / моль К ⋅ моль602 V1 = 1,64 л = 1,64⋅10-3 м3; m = 12 г; Т1 = 20° С = 293 К;р1 = 5,86 ⋅ 105 Па; V2 = 30 л = 3 ⋅10-2м3; Т2 = 360 К; р2 - ?m O2m N2m RTp O 2 V1 =RT ; p N 2 V1 =RT ; V1 = O 2 1 ;M O2 pO 2M O1M N1=mO2 + mN2 = m; pO2 + pN2 = p1; p N2 =pN 2 + pN 2mm O2= pO 2 N 2 ;M N2M O2mM O2mN 2 M O 2;= p1; p O 2 = p N 2 N 2M N 2 mO 2M N 2 mO 2103PN 2 =PN 2 =P1 V1p1m N 2 M O21+M N 2 mO 2; mO2 = m – mN2;p1 M N 2 (m − m N 2 )p1;=m N 2 M O2M N 2 (m − m N 2 ) + M O 2 m N 21+M N 2 m − m N2M N 2 (m − m N 2 )m= N 2 RT1 ;M N 2 (m − m N 2 ) + M O 2 m N 2 M N 222p1V1 M N2 2 m − p1V1 M N2 2 m N 2 = M N 2 mRT1 mN 2 − M N 2 m N2 RT + M O 2 mN 2 RT1;RT1 ( M O 2 − M N 2 )m N2 2 + ( M N 2 mRT1 + p1V2 M N2 2 )m N 2 − p1V1 H N2 2 m = 0;D = (M N2 mRT1 + p1 N 1 M N 2 )2 + 4 RT1 ( M O 2 − M N 2 ) p1V1 M N2 2 m .Найдем М смеси pV =M =mRT ;MmRT 0,012 ⋅ 8,31(273 + 29)== 0,0304кг / моль.pV5,86 ⋅10 5 ⋅1,64 ⋅10 −3mmкm; Mк = 0,032 Ma = 0,028+ a =Mк Ma Mma = m – mк; m = 0,012;0,12 − m am0,012;+ a =0,0320,028 0,03044,46ma = 0,0197; ma = 4,4 ⋅ 10-3;Во втором баллоне только азот.m a RT1 4,4 ⋅10 −3 ⋅ 8,31 ⋅ 360== 1,56 ⋅10 4 Па.M a V10,028 ⋅ 3 ⋅10 − 2603 l = 85 см = 0,85 м; М1 = 2⋅10-3 кг/моль; М2 = 32 ⋅10-3 кг/моль; х - ?mmpV1 =RT ; pV2 =RT ; V1 + V2 = lS;M1M2V1 = xS, V2 = S (l – x);p=pxS =mRTM1p(l – x)S =pS 1 m;=RT x M 1104mRTM2 mm RTplS = +MM2 1pS 1 mm= +RT l M 1 M 2m 11 m 1=;+l M 1 M 2 x M 11 M1 + M 2l M 1 M 2 1 1= x M ;11 M1 + M 2l M 2 1M232= ; x=l=⋅ 85cм = 80см. xM1 + M 234604 V = 40 л = 4 ⋅ 10-2 м3; р = 15 МПа = 1,5 ⋅ 107 Па; h = 20 м; V′ - ?pVpV = νRT; ( p A + ρghV ′) = νRT ;= 1;ρghV ′pV1,5 ⋅ 10 7 Па ⋅ 4 ⋅10 −2 м 3== 2 м3.ρgh + p A 10 3 кг / м 3 ⋅10 м / с 2 ⋅ 20 м + 10 5 Па605 V = 100 л = 0,1 м3; m1 = 2 г = 2 ⋅ 10-3 кг; М1 = 2 ⋅ 10-3 кг/моль;ν2= 1 моль; Т = 127° С = 400 К; р1, р2 - ?m RTm2ϑRTV; p N 2V = 1 RT ; p N 2 = 1;= νRT ; p N2 =p N2VM 1V2M1р1 = рH2; p2 = pH2 + pN2;Дж2 ⋅10 −3 кг ⋅ 8,31⋅ 4 ⋅10 2 ККмоль⋅≈ 33,2кПа;p1 =2 ⋅10 −3 кг / моль ⋅10 −1 м 3Дж2 ⋅1моль ⋅ 8,31⋅ 4 ⋅10 2 ККмоль⋅≈ 66,5кПа;pN2 =10 −1 м 3p2 = 99,7 кПа.V′=606 V = 200 см2 = 2⋅10-4м3; m1 = 2 мг = 2 ⋅10-6 кг; m2 = 4 мг = 4⋅10-6кг;Т = 270 С = 300 К; р1, р2 - ?mp 2 V = 2 RT ;M2Дж⋅ 3 ⋅10 2 КК ⋅ моль= 1,2 ⋅10 4 Па = 12кПа;−3−4 34 ⋅10 кг / моль ⋅ 2 ⋅10 мДж2 ⋅ 2 ⋅10 −6 кг ⋅ 8,31⋅ 3 ⋅10 2 К2m1 RTКмоль⋅p`=== 25 ⋅10 3 Па =m1V2 ⋅10 −3 кг / моль ⋅ 2 ⋅ 10 − 4 м 3= 25 ⋅ 103 Па = 25 кПа;р1 = р2 + р` = 37 кПа.607 h = 24 cм = 0,24 м; l = 1 м; Т0 = 293 К; рА = 105 Па; ∆h = 6 см;Т1, Т2 - ?p h ϑRp0hS = νRT0; 0 =;ST0m RTp2 = 2=M 2V4 ⋅10 −6 кг ⋅ 8,31p0 = pA + ρ g(l – h) = 105 Па + 13,6⋅ 103 кг/м3 ⋅ 2,8 м/с2 ⋅ 0,76 ≈ 2,01 ⋅ 105 Па;105(pA + ρ g (l – h))hS = ϑ RT0; p1 (h + ∆h)S = νRT1; p1 = pA + ρ g (l – h - ∆h) ==p0 - ρg∆h; (p0 - ρg∆h)( h + ∆h)S = ϑ RT1; (p0 - ρg∆h)( h + ∆h)S =(p0 - ρg∆h)( h + ∆h)S = p 0 hT1 ==( p 0 − ρg∆h )(h + ∆h)p0 hT1;;T0T0 =(2 ⋅10 5 Па − 13,6 ⋅10 3 кг / м 3 ⋅ 9,8 м / с 2 ⋅ 0,06 м) ⋅ 0,3 м2 ⋅10 5 Па ⋅ 0,24 мp2 = pA; p2lS = νRT2;T2 =p 2 l νR;=ST2⋅ 273К ≈ 327 К .p 2l p0 h;=T0T2p2l105 Па ⋅1мT0 =273 = 568К .p0 h2 ⋅105 Па ⋅ 0,24 м608 p1nS = νRT1; p1 = p0 + ρgh; p 2 (hS1 2( p 0 + ρgh)⋅2 p 0 + ρghhShShS −2609 p 0 LS = νRT0 ; pТ0 =νR⋅ T1 ; ;S=T1;T2hS) = νRT2 ; p2 = p0 + ρg h ;22T1 4( p 0 + ρgh);=T22 p 0 + ρghLS= νRT ;3p = p 0 + ρg9 p0TL;= 0 ;3 3 p 0 + ρgL T9p 0T;3p 0 + ρgL4 3πr ;3p + ρgH(p0 + ρgh)V(h) = (p0 + ρgh)V0; V (h) = 0V0 ;p 0 + ρgh610 p(h) = p0 + ρgh; p(h)V(h) = ν RT; V =4 3 p 0 + ρgHV0 ;πr =3p 0 + ρghr =33( p 0 + ρgH )V0 ;4π ( p 0 + ρgh)611 r = 2 см = 2 ⋅10-2 м; Т = 20° С = 293 К; р0 = 105 Па; Т1 = 4° С = 277 К;h = 20 м.p0Tr344 3;=πp 0 r 3 = νRT;πr1 ( p 0 + ρgh) = νRT1 ;3 p + ρgh3T3r1 01r1 = 3T1p0277 K105 Паr=3⋅ 2см = 1,36 см.T p0 + ρgh293K 105 Па + 103 кг / м3 ⋅ 10 м / с ⋅ 20 м612 D = 10 м; m = 10 кг; T1 = 27° C = 300 K; p = 735 мм рт.ст.
![](https://s.studizba.com/z.php?f=/templates/si/i/noavatar.png&w=100&h=100&t=1"){kind=avatar}
