cach cas04 trinh bay each tinh ch d co muoi an tinh khiet

Cho bi~t cong thirc mot muoi X va vhh phuong trinh hoa hoc trong cac tnrong hop sau:.. X tac dung voi dd HC} va dd NaOH d~u cho khi.[r]

DE THI CHQN DQI TUYEN ~QC SINH GIOI LOP 9 MON THI: HOA HOC.

Ngay thi: Thu Bay 04/01/2020

Tho; gian lamwbai: 120 phut (khong kJphat i1~)

NAM HQC: 2019-2020

CaD 1: (4.0 d)

1.1 Cho sa db di€u che nhtr sau :

Vi€t cacphirong trinh hoa hoc xay ?

Cho bi~t phfin h6n hQ"Pkhi X va Y Neu each phan biet h6n hQ"PX?

1.2. Mu6i an co lfin tap chdt : Na2S04, NaBr,

CaCh, CaS04 trinh bay each tinh ch~ d~ co muoi an tinh khiet

H61l bqp

kbiX

csco

CllSO,;

Nooc

brom(du)

CaD 2: (4.0 d)

2.1 Cho bi~t cong thirc mot muoi X va vhh phuong trinh hoa hoc cac tnrong hop sau:

X tac dung voi dd HC} va dd NaOH d~u cho

X tac dung dd HCI co va tac dung voi dd NaOH cho k~t tua

2.2 Duoc dung them mot thuoc thu, tim each nhan bi~t cac dung dich cac lo mdt nhan : Ba(OH)2, Ba(N03)2, KC1, H2S04, HN03

Call 3: ( 4.0 d):

Hoa tan h~t 24,16 gam h6n hQ"PX g6m Cu va Fe304 dung dich HCl loang du thay lai 6,4 gam Cu khong tan M~t khac hoa tan h~t 24,16 gam h6n hQ"Ptren 240 gam dung dich HN03 31,5% (dung du) thu duQ'c dung dich Y (khong ch(ra NH4N03) Cho 600 ml dung dich NaOH 2M vao dung dich Y LQc b6 k~t tlia, co ci;lndung dich nuac lQc sau nung t6"i kh6i luqng khong dbi thu duQ'c 78,16 gam chdt rin khan Bi€t cac phim (rng

xay hoan toano

3.1 Tinh kh6i luqng m6i chAttrong X

3.2 Tinh n6ng dQ % clia CU(N03)2 co dung dich Y

Call 4: ( 4.0 d):

4.1 TrQn 10,8 gam bQt nhom vai 34,8g bQt Fe304 rbi ti~n hanh phan (rng nhi~t nhom di€u ki~n khong co khong Hoa tan h6n hQ'p r~n sau phan (rng b~ng dung dich H2S041oang ~u thu duQ'c 10,752 lit H2(dktc) Tinh hi~u sudt phan (rng nhi~t nhom? (gia su Fe304 chi bi

khu Fe)

4.2 D6t chay hoan toim m gam mQt mfiu than chua 8% t(.lPch~t b~ng oxi thu dUQ"c2,24 lit h6n hQ"PA gbm hQ'PchAt (dktc) Svc tir tir.A vao 40 ml dd ch(ra Ba(OH)2 1M va KOH 0,5M sau phan (rng thu duQ'c 5,91 gam k~t tlia Tinh m va th~ tich oxi tham gia phan Ung

C,D : ( 4.0 d):

5.1 H6n hop X g6m CH4,C2H4,C2H2

_ D6t chay 21,6 gam X thu duoc m g C02 va 32,4 gam H20

_ 11, lit X (dktc) tac dung vrri dd B dirthico 0,35 mol Brz phan irng

Xac dinh m va % th~ tich cac t ing X

5.2 H6n hQ'PX g6m hydrocacbon (A) it oxi (cy l~ mol ttrong img lit 1:7) D6t chay hoan toan X thu duoc Y (g6m va hoi) ngung tu h~t hoi mroc Y thi duqc h6n hopZ

g6m khi cotY l~ moll: Xac di cong thirc phan tft va vi~t cong thirc c~u tao cua A.

Cho H=l; C=12 ; N=14 ;0= 16; =23 ; S=32 ;K=39 ;C=40 ;Fe=56 ; Cu=64 ;Ba=137

-H8t-~ I' HU'O'NG DAN CHAM MON HOA HOC QUAN GO VAp NAM HOC 2019-2020 .

,

Cau NQi dung Di€m

1 1.1 - pthh: CaS03 + 2HCl + CaCh + S02 + H2O 0,5d

2d CaC03 + 2HCl + CaCh + S02 + H2O

H6n hop X g6m C02 va S02 0,5<1

Khi Y la CO2 0,25d

Nhan biet C02,S02 X ta dung Br2 0,25d

S02 +Br2 + H20 + 2HBr + H2SO4 0,5d

1.2 Muoi an co 1fin tap chat : Na2S04, NaBr, CaCl«, CaS04:

2d Cho mu6i an co lfin tap chelt vao dung dich BaCh dir: 0,75d Na2S04 + BaCh ~ BaS04 + 2NaCl

CaS04 + BaCh ~ BaS04 + CaCh

Loc bok~t tua, dung dich mroc loc g6m: NaCl, CaCh, NaBr va 0,75d BaCh duo Cho tac dung voi Na2C03 dir

CaCh + Na2C03 ~ CaC03 + 2NaCl BaCh + Na2C03 ~ BaC03 + 2NaCl

Dung dich lai gom NaCl, NaBr, va Na2C03 du, cho tac 0,25d dung voi dung dich HCl dir :

Na2C03 + 2HCl ~ NaCl + C02 + H2O

Sue Clo du vao dung dich ,r6i co can dung dich thu duoc 0,25d NaCI khan

Cli + 2NaBr -+ 2NaCl + Br2 2.1 X co th~ la NH4HC03

(2d) NH4HC03 + HCl + NH4Cl + C02 + H2O 1d

NH4HC03 + NaOH +NaHC03 + NH3 + H2O X co th~ la Ca(HC03)2

Ca(HC03)2 + 2HCl + CaCh + 2C02 + 2H20 ld

Ca(HC03)2 +2NaOH +CaC03 +Na2C03 +2H20 2.2 Nh~n biet : Ba(OH)2, Ba(N03)2, KCl, H2S04, HN03.

(2d) - Dung quy tim nhan Ba(OH)z (hoa xanh) , dung dich lai 0,5 0

chia lam nhom :

- Nhom : HN03, H2S04 lam quy tim hoa - Nhom : Ba(N03)2, KCl Khong lam dbi mau quy

-Dung Ba(OH)2 cho vao mfiu eua nhom 1, H2S04 t~o ket tua 0,750 tr~ng , l;;tila HN03

Ba(OH)2 + H2S04 + BaS04t + 2H20

- Dung H2S04 dtinh~n bi~t cho vao mfiu nh6m chMtl;loket tila 0,75d

la Ba(N03)2 , mftu l;;tila KCl

H2S04 + Ba(N03)2 +BaS041 + 2HN03

-D~t a s6mol Cu phan img, b his6mol Fe304 ban dau

=> 64a+ 232b = 24,16 - 6,4 = 17,76 (I)

3 3.1

1,5d

0,25d "

PhU(Jl1gtrinh phan irng

0,5d

b ~ 8b 2b b

Cu + 2FeCb ~ CuCh + 2Fe~h (2)

b f -2b b 2b

0,25d V~y a=b; theo 1~ a= b =0 06

V~y 24,16 gam X co: ( ,16 mol Cu; 0,06 mol Fe304

~ mcu=0,16.64= 10,24 (gam; mFeP4= 0,06.232= 13,92 (gam) 0,5d

3.2 Tile dung voi dung dich ID~03: nHNO] (bd)= 1,2 mol

2,5d Sa db:

+ 1~2(mol)NaOH t

[ {NaOH Nung

dd NaN03 [

dd Y X+HNO~

Khi

0,5d Ta co: N~u NaOH h~t

chat rAn chi co: NaN02 = 1,2.69 =82,8 gam> 78,16

~ NaOH phai dir: theo So' d4~tren ta co:

O,5d x+y= 1,2; 40x+69y =78, => x= 0,16; y = 1,04

0,25d kl2

k

24,16 0,18 0,16

k= sf, mol HN03 phan irng v ;iX;

nNaNO = 0,16.2 + 0.18.3 + nUN03 du = 1,04

2

O,5d

~ -~ -+~~~

=> nHNO,dir= 0,18 mol O,25d

O,25d nHNO, pu (*) = 1,2 - 0,1~= 1,02(mol) =k

Theo bao toan khoi hrong:I

I

i

-mkhi=24,16 + 63.1,02 -( 0,18.242+ 0,16.188+ 18.1,02/2) = 5,6g 0,25d

=>C% (CU(N03)2)= 0,16.188 =11,634% 240 + 24,16 - 5,6

4 4.1 Mol Al=0,4; mol Fe304= 0,15 0,25d

2d Phan irng: 8A1 + 3Fe304 ~ 4Ah03 + 9Fe 0,5d

8x 3x 9x

R~n sau chua: Ah03 ; Fe304; Al (0,4-8x); Fe(9x) 0,25d

Cac phan img voi H2SO4

Fe304 + 4H2S04 ~ FeS04 +Fe2(S04)3 + 4H20

Ah03 + 3H2S04 ~ Ah(S04)3 + 3H20 0,5d

2Al + 3H2S04 ~ Ah(S04)3 + 3H2

Fe + H2S04 ~ FeS04 + H2

Tilso mol H2 ta co:

1,5(0,4-8x) + 9x = 0,48 ~ x = 0,04; 0,25d

T h;' 0,4 0,15 ~ H ' h h h;' , ? d

a t ay 8=-3- ; nen tm t eo c at nao cung iroc

H = 8_0,04.100 =80 (%) 0,25d

0,4

4.2 Cac phan irng :

2d C + 02 ~ CO2 0,5d

C + 02 ~ 2CO

H6n hop A g6m hai hQ'Pchdt nen 02 h~t

BT cho C ta co mol C = mol hh A = 0,1 0,5d

m = 12.0,1.100/92 = 1,304(gam)

Mol Ba(OHh = 0,04; mol KOH = 0,02; mol BaC03 = 0,03

Ta thdy molt < mol Ba(OH)2

Co tnrong hQ'P: TH 1: k~t tua chua tan:

C02 + Ba(OH)2 ~ BaC03 + H2O 0,5d

0,03 0,03

Mol C02 = 0,03; mol CO=0,07

Mol 02 = mol C02 + Y2mol CO

~ mol 02 = 0,065 (mol) V02 = 1,456 (1)

TH2: k~t tua tan phful

C02 + Ba(OH)2 ~ Bae03 +H2O O,5d

I

5 5.1 X g6m CRt; C2Rt; C2H2;

C02 +KOH ~ KHC03 + Hfl

0,02 0,02

C02 +BaC03 +H20 - BaObC03)2 0,01 0,01

Mol C02 =0,07 Mol CO=O,I Mol 02 =mol C02 +Y2mol ~O

=>mol 02 = 0,085 (mol) V b2 = 1,904 (1)

O,5d

O,5d

O,25d

O,25d

O,5d

,,

Giai (1),(2),(3),(4) => a=O,2 ; b=0,15; c=O,I; k=2

5.2 H6n hop X: CnH2n+2-2k(k 18 (, lien k~t7t)

2d Phanirngchay:

3n+1-k

CnH2n+2-2k+ 02 -~ n C02 +(n +1 -k) H20

1 (l,5n +0,5 - 0,5k) n (n + - k)

co tY l~ moll: => n= ~ +0,5k - 1,5n

=> 4n - I =l3 => k=3; n=4

O,25d

0,5d

0,5d h6n hop Z gomC02 (n); va b2 dir (7 - (l,5n +0,5 - 0,5k»; 0,25d 2d Phan irngvoi Br2

C2H4 +Br2 ~ C2H4EIto2

C2H2 +2Br2 ~ C2H2tlr4

f)~t a.b,c la so mol CH4;C2H ; C2H2;trong 11,2 lit hh X a+ b +C =0,5 (It

b +2c = 0,35 2)

f)~t ka,kb,kc 18.so mol CH4; ~2H4; C2H2; 21,6 ghh X

16ka+28kb +26kc = 21,~ (3) 2ka + 2kb +kc = 1,8 (4)

%CH4 = 50%; %C2H4=30~~; %C2H2=20%_

m = 66 (gam)