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w (NH3¡¤H20)= c(HCl)V1(HCl)M(NH3¡¤H20) ¡Á10-3/V£¨Ñù£©£¬

w (NH4Cl) = [c(NaOH)V2(NaOH)M(NH4Cl)£­c (HCl)V1(HCl)M(NH3¡¤H20)] ¡Á10-3/V£¨Ñù£©£¬ (4) NaH2P04 + Na2HP04

ÓÃNaOH±ê×¼ÈÜÒºµÎ¶¨NaH2P04£¬ÒÔ·Ó̪ºÍ°ÙÀï·Ó̪Ϊָʾ¼Á£¬²âNaH2P04Á¿£¬ÏûºÄÌå»ýΪV1£»ÔÙ¼ÓÈëÂÈ»¯¸ÆÈÜÒº¼ÌÐøÓÃNaOH±ê×¼ÈÜÒºµÎ¶¨ÊͷųöµÄÇâÀë×Ó£¬ÏûºÄNaOHÌå»ýΪV2£¬

w (NaH2P04)= c (NaOH)V1 (NaOH)M(NaH2P04) ¡Á10-3/V£¨Ñù£©£¬

w (Na2HP04)= [c(NaOH)V2 (NaOH)]M(NaHP04)£­c (NaOH)V1 (NaOH)]M(NaH2P04)] ¡Á10-3/V£¨Ñù£©£¬ (5) NaH2P04 + H3P04

ÓÃNaOH±ê×¼ÈÜÒºµÎ¶¨H3P04£¬ÒÔäå¼×·ÓÂ̺ͼ׻ù³ÈΪָʾ¼Á£¬²âH3P04Á¿£¬ÏûºÄÌå»ýΪV1£»ÒÔ·Ó̪ºÍ°ÙÀï·Ó̪Ϊָʾ¼Á£¬²âNaH2P04Á¿£¬ÏûºÄNaOHÌå»ýΪV2£»

w (H3P04) = c (NaOH)V1 (NaOH)M(H3P04) ¡Á10-3/V£¨Ñù£©£¬

w NaH2P04= [c (NaOH)V2 (NaOH)]M(NaH2P04)£­c (NaOH)V1 (NaOH)]M(H3P04)] ¡Á10-3/V£¨Ñù£©£¬ (6) NaOH+Na3P04

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w(NaOH) = c (HCl)V2(HCl)M(NaOH) ¡Á10-3/V£¨Ñù£©£¬ w(Na3P04) = c (HCl)£¨V1£­V2£©(HCl)M(Na3P04) ¡Á10-3/V£¨Ñù£©£¬

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c(HCl)?V1(1) V1 = V2ʱ£¬×é³ÉΪNa2C03 c (Na2C03) =

25.00c(HCl)?V2

25.00c(HCl)?V1£¨3£©V2 = 0£¬V1¡Ù 0ʱ£¬×é³ÉΪNa0H c (Na0H)=

25.00£¨2£©V1 = 0£¬V2¡Ù 0ʱ£¬×é³ÉΪNaHC03, c (NaHC03) =(4 ) V1£¾V2ʱ£¬×é³ÉΪNa2C03ºÍNa0H c (Na0H) =£¨5£©V1£¼V2ʱ£¬×é³ÉΪNa2C03ºÍNaHC03,

c (NaHC03)=

(V1?V2)?c(HCl) c (Na2C03)=V2?c(HCl)

25.0025.00V?c(HCl)(V2?V1)?c(HCl) c (Na2C03) =1

25.0025.00

8£®ÓÐÒ»ÈÜÒº£¬¿ÉÄÜÊÇNa3P04¡¢Na2HP04¡¢NaH2P04¡¢»òËûÃǵĻìºÏÎÈçºÎÅжÏÆä×é·Ö£¬²¢²â¶¨¸÷×é·ÖµÄº¬Á¬Á¿£¿ËµÃ÷ÀíÓÉ¡£

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w£¨Na3P04£©= [c (HCl)V1(HCl)M(Na3P04) ¡Á10-3/£¨G ¡Á 25.00/250.0£©] ¡Á100% £¨2£© V1= 0£¬V2 ¡Ù 0ʱ£¬×é³ÉΪNa2HP04,

w£¨Na2HP04£©= [c (HCl)V2(HCl)M(Na2HP04) ¡Á10-3/£¨G ¡Á25.00/250.0£©] ¡Á100% £¨3£© V1= 0£¬V2 = 0ʱ£¬²»±»µÎ¶¨£¬×é³ÉΪNaH2P04 £¨4£© V1£¼V2ʱ£¬×é³ÉΪNa3P04ºÍNa2HP04,

w(Na3P04) = [c (HCl)V1(HCl)M(Na3P04) ¡Á10-3/£¨G ¡Á25.00/250.0£©] ¡Á100% w(Na2HP04) = [c (HCl)(V2£­V1)(HCl)M(Na2HP04) ¡Á10-3/£¨G ¡Á25.00/250.0£©] ¡Á100%

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1.ÏÂÁи÷ÖÖÈõËáµÄpKaÒÑÔÚÀ¨ºÅÄÚ×¢Ã÷£¬ÇóËüÃǵĹ²éî¼îµÄpKb£»

(1)HCN(9.21)£»(2)HCOOH(3.74)£»(3)±½·Ó(9.95)£»(4)±½¼×Ëá(4.21)¡£ ½â£º(1) HCN pKb=14.00£­9.25= 4.79 (2) HCOOH pKb=14.00£­3.74=10.26

(3)±½·Ó pKb=14.00£­9.95 = 4.05 (4)±½¼×Ëá pKb=14.00£­4.21= 9.79

2. ÒÑÖªH3PO4µÄpKa=2.12£¬pKa=7.20£¬pKa=12.36¡£ÇóÆä¹²éî¼îPO43-µÄpKb1£¬HPO42-µÄpKb2£®ºÍH2PO4- µÄpKb3¡£

½â£ºPO43 pKb1=14.00£­12.36 =1.64

HPO42- pKb2=14.00£­7.20 = 6.80 H2PO4- pKb3=14.00£­2.12 =11.88 3£®ÒÑÖªçúçêËá(CH2COOH)2(ÒÔH2A±íʾ)µÄpKal =4.19£¬pKb1=5.57¡£ÊÔ¼ÆËãÔÚpH4.88ºÍ5£®00ʱH2A¡¢HA-ºÍA2-µÄ·Ö²¼ÏµÊý¦Ä2¡¢`¦Ä1ºÍ¦Ä0¡£Èô¸ÃËáµÄ×ÜŨ¶ÈΪ0.01mol¡¤L-1£¬ÇópH£½4.88ʱµÄÈýÖÖÐÎʽµÄƽºâŨ¶È¡£

½â£ºpH=4.88 ¡²H+¡³=1.32¡Á10-5

(1.32?10?5)2 ??(H2A)? = 0.145

(1.32?10?5)2?6.46?10?5?1.32?10?5?2.69?10?6?6.46?10?51.32?10?5?6.46?10?5 ?1(HA)?= 0.710

(1.32?10?5)2?6.46?10?5?1.32?10?5?2.69?10?6?6.46?10?5?6.46?10?5?2.96?10?6 ?0(A)?= 0.145

(1.32?10?5)2?6.46?10?5?1.32?10?5?2.69?10?6?6.46?10?52? pH=5.00

(1.0?10?5)2??(H2A)?= 0.109

(1.0?10?5)2?6.46?10?5?1.0?10?5?2.69?10?6?6.46?10?51.0?10?5?6.46?10?5??1(HA)?= 0.702

(1.0?10?5)2?6.46?10?5?1.0?10?5?2.69?10?6?6.46?10?56.46?10?5?2.96?10?6 ?0(A)?= 0.189

(1.0?10?5)2?6.46?10?5?1.0?10?5?2.69?10?6?6.46?10?5 pH=4.88 c (H2A) = 0.01mol¡¤L-1 c (H2A) = 0.145¡Á0.01=1.45¡Á10-3mol¡¤L c (HA-) = 0.710¡Á0.01= 7.10¡Á10-3mol¡¤L c (A2-) = 0.145¡Á0.01=1.45¡Á10-3mol¡¤L-1

2?

4. ·Ö±ð¼ÆËãH2CO3(pKa1= 6.38£¬pKa2 =10.25)ÔÚpH=7.10£¬8.32¼°9.50ʱ£¬H2CO3£¬HCO3-ºÍCO32-µÄ·Ö²¼ÏµÊý¦Ä2` ¦Ä1ºÍ¦Ä0¡£

½â£ºpH=7.10

(10?7.10)2 ?2(H2CO3)?= 0.160

(10?7.10)2?10?6.38?10?7.10?10?10.25?10?6.3810?7.10?10?6.38?1(HCO)?= 0.839

(10?7.10)2?10?6.38?10?7.10?10?6.38?10?10.25?310?6.38?10?10.25?0(CO)?= 0.001

(10?7.10)2?10?6.38?10?7.10?10?6.38?10?10.252?3pH=8.32

(10?8.32)2?2(H2CO3)? = 0.0112

(10?8.32)2?10?6.38?10?8.32?10?10.25?10?6.3810?8.32?10?6.38 ?1(HCO)?= 0.979

(10?8.32)2?10?6.38?10?8.32?10?6.38?10?10.25?310?6.38?10?10.25 ?0(CO)?= 0.0115

(10?8.32)2?10?6.38?10?8.32?10?6.38?10?10.252?3 pH=9.50

(10?9.50)2-4

?2(H2CO3)?= 6.34¡Á10

(10?9.50)2?10?6.38?10?9.50?10?10.25?10?6.3810?9.50?10?6.38 ?1(HCO)?= 0.851

(10?9.50)2?10?6.38?10?9.50?10?6.38?10?10.25?310?6.38?10?10.25 ?0(CO)?= 0.150

(10?9.50)2?10?6.38?10?9.50?10?6.38?10?10.252?3

5£®ÒÑÖªHOAcµÄpKa =4.74£¬NH3¡¤H20µÄpKb=4.74¡£¼ÆËãÏÂÁи÷ÈÜÒºµÄpH£º

(1) 0.10 mol¡¤L-1HOAc£» (2) 0.10 mol¡¤L-1NH3¡¤H2O£» (3) 0.15 mo1¡¤L-1NH4Cl£» (4) 0.15 mol¡¤L-1NaOAc¡£ ½â£º(1) 0.1mol¡¤L-1HAc

¡ß c/Ka?0.1£¾1010?5c?Ka?0.1?10?4.74£¾10Kw

?4.74?1.35?10?3(mol?L?1) ¡à¡²H+¡³=0.1?10pH=2.87

(2) 0.10 mol¡¤L-1NH3¡¤H2O ?c/Kb?0.1£¾10510?4.74c?Kb?0.1?10?4.74£¾10Kw

?[OH?]?0.1?10?4.74?1.35?10?3(mol?L?1)pH?11.13

(3) 0.15 mo1¡¤L-1NH4Cl ?c/Ka?

0.15£¾10510?9.26c?Ka?0.15?10?9.26£¾10Kw

?[H?]?0.15?10?9.26?9.03?10?6(mol?L?1)pH?5.04

(4) 0.15 mol¡¤L-1NaOAc