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  • 3as.ency-education · ii 2759 - 𝛽 − 2760 →2608 𝑖+−10 • 28 𝑖60 • 𝑖61 28 𝑖62 28 58.iii-7 ( )= 0 −𝜆 -8
5
( 3 + + ) 3+ =0 0 = 0.81 = 100 = 0.3 () 2 () [ 3+ ]( ⁄) - - ( 3+ ) ( 3 + 2 ) - [ 3+ ]() [ 3+ ]() = 2 2 () 2 () [ 3+ ] = () [ 3+ ] = 8 - = 1 2 × [ 3+ ] = 2 = 6 3 + - 12 - = 5 () = 27. −1 = 24. −1 3as.ency-education.com

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Page 1: 3as.ency-education · ii 2759 - 𝛽 − 2760 →2608 𝑖+−10 • 28 𝑖60 • 𝑖61 28 𝑖62 28 58.iii-7 ( )= 0 −𝜆 -8

(𝐻3𝑂+ + 𝐶𝑙−)𝐴𝑙

𝐴𝑙3+𝑡 = 0𝑚0 = 0.81𝑔

𝑉 = 100𝑚𝐿𝐶 = 0.3 𝑚𝑜𝑙 𝑙⁄

𝑡(𝑚𝑖𝑛)𝑉𝐻2

(𝑚𝑙)

[𝐴𝑙3+](𝑚 𝑚𝑜𝑙 𝑙⁄ )

-

-

(𝐴𝑙3+ 𝐴𝑙⁄ )(𝐻3𝑂+ 𝐻2⁄ )

- 𝑥𝑚𝑎𝑥

[𝐴𝑙3+](𝑡)[𝐴𝑙3+](𝑡) =2𝑉𝐻2

(𝑡)

3𝑉×𝑉𝑀

𝑉𝐻2(𝑡)𝑉𝑀

[𝐴𝑙3+] = 𝑓(𝑡)

[𝐴𝑙3+]𝑓𝑡 = 8𝑚𝑖𝑛

- 𝑡𝑣 =1

𝑑[𝐴𝑙3+]

𝑑𝑡

𝑡 = 2𝑚𝑖𝑛 𝑡 = 6𝑚𝑖𝑛

𝐻3𝑂+

- 𝑡1 2⁄

- 𝑡 = 5𝑚𝑖𝑛

𝑀(𝐴𝑙) = 27𝑔. 𝑚𝑜𝑙−1𝑉𝑀 = 24𝐿. 𝑚𝑜𝑙−1

3as.ency-education.com

Page 2: 3as.ency-education · ii 2759 - 𝛽 − 2760 →2608 𝑖+−10 • 28 𝑖60 • 𝑖61 28 𝑖62 28 58.iii-7 ( )= 0 −𝜆 -8

𝐶𝑜60

I. 1(𝑁 − 𝑍)

-

-

-

-

𝐶𝑜2760

-

60

II. 60

𝑚0

2𝐴

1-

2-

𝐴(𝑡) = 𝐴0𝑒−𝜆𝑡

3- 𝐴0

𝑡 = 0

4- 𝑡 = 𝜏

𝜏𝜆

5- 𝑚0

6- 5

- 𝐴

- 100𝑘𝐵𝑞

𝑁𝐴 = 6.02 × 1023𝑚𝑜𝑙−1

1

2

3as.ency-education.com

Page 3: 3as.ency-education · ii 2759 - 𝛽 − 2760 →2608 𝑖+−10 • 28 𝑖60 • 𝑖61 28 𝑖62 28 58.iii-7 ( )= 0 −𝜆 -8

التمرين األول:

-

-

𝐴𝑙 = 𝐴𝑙3+ + 3𝑒−

2𝐻3𝑂+ + 2𝑒− = 𝐻2 + 2𝐻2𝑂

2𝐴𝑙(𝑠) + 6𝐻3𝑂+(𝑎𝑞) = 2𝐴𝑙3+

(𝑎𝑞) + 3𝐻2(𝑔) + 6𝐻2𝑂(𝑙)

-

𝑛0(𝐴𝑙) =𝑚

𝑀=

0.81

27= 0.03𝑚𝑜𝑙

𝑛0(𝐻3𝑂+) = 𝐶𝑉 = 0.3 × 0.1 = 0.03𝑚𝑜𝑙

2𝐴𝑙(𝑠) + 6𝐻3𝑂+(𝑎𝑞) = 2𝐴𝑙3+

(𝑎𝑞) + 3𝐻2(𝑔) + 6𝐻2𝑂(𝑙)

00𝑛0(𝐻3𝑂+)𝑛0(𝐴𝑙)

3𝑥2𝑥𝑛0(𝐻3𝑂+) − 6𝑥𝑛0(𝐴𝑙) − 2𝑥

3𝑥𝑓2𝑥𝑓𝑛0(𝐻3𝑂+) − 6𝑥𝑓𝑛0(𝐴𝑙) − 2𝑥𝑓

{𝑛0(𝐴𝑙) − 2𝑥𝑚𝑎𝑥 = 0

𝑛0(𝐻3𝑂+) − 6𝑥𝑚𝑎𝑥 = 0⟹ {

𝑥𝑚𝑎𝑥 =𝑛0(𝐴𝑙)

2= 0.015𝑚𝑜𝑙

𝑥𝑚𝑎𝑥 =𝑛0(𝐻3𝑂+)

6= 0.005𝑚𝑜𝑙

𝑥𝑚𝑎𝑥 = 0.005𝑚𝑜𝑙

[𝐴𝑙3+](𝑡)[𝐴𝑙3+](𝑡) =2𝑉𝐻2

(𝑡)

3𝑉×𝑉𝑀

[𝐴𝑙3+](𝑡) =2𝑥

𝑉

𝑛(𝐻2) =𝑉𝐻2

(𝑡)

𝑉𝑀= 3𝑥 ⟹ 𝑥 =

𝑉𝐻2(𝑡)

3𝑉𝑀

⟹ [𝐴𝑙3+](𝑡) =2𝑥

𝑉=

2𝑉𝐻2(𝑡)

3𝑉 × 𝑉𝑀

[𝐴𝑙3+](𝑡) =2𝑉𝐻2

(𝑡)

3𝑉 × 𝑉𝑀=

2𝑉𝐻2(𝑡)

3 × 0.1 × 24=

2

7.2× 𝑉𝐻2

(𝑡)

𝑡(𝑚𝑖𝑛)𝑉𝐻2

(𝑚𝑙)

[𝐴𝑙3+](𝑚 𝑚𝑜𝑙 𝑙⁄ )

3as.ency-education.com

Page 4: 3as.ency-education · ii 2759 - 𝛽 − 2760 →2608 𝑖+−10 • 28 𝑖60 • 𝑖61 28 𝑖62 28 58.iii-7 ( )= 0 −𝜆 -8

[𝐴𝑙3+]𝑓

[𝐴𝑙3+]𝑓 =2𝑥𝑓

𝑉=

2 × 0.005

0.1= 0.1𝐿

[𝐴𝑙3+]𝑓 = 100𝑚𝑚𝑜𝑙/𝑙

- 𝑡 = 8𝑚𝑖𝑛

-

𝑣 =1

𝑉×

𝑑𝑥

𝑑𝑡

[𝐴𝑙3+] =2𝑥

𝑉⟹ 𝑥 =

[𝐴𝑙3+]𝑉

2

⟹ 𝑣 =1

𝑉×

𝑑𝑥

𝑑𝑡=

1

𝑉×

𝑑 ([𝐴𝑙3+]𝑉

2 )

𝑑𝑡=

1

𝑑[𝐴𝑙3+]

𝑑𝑡

𝑣2 =1

𝑑[𝐴𝑙3+]

𝑑𝑡=

1

(54 − 18) × 10−3

3 − 1= 0.009𝑚𝑜𝑙/𝑙. 𝑚𝑖𝑛

𝑣6 =1

𝑑[𝐴𝑙3+]

𝑑𝑡=

1

(75 − 63) × 10−3

7 − 5= 0.003𝑚𝑜𝑙/𝑙. 𝑚𝑖𝑛

𝐻3𝑂+

𝑣′ = −𝑑𝑛𝐻3𝑂+

𝑑𝑡= −

𝑑(𝑛0(𝐻3𝑂+) − 6𝑥)

𝑑𝑡= 6

𝑑𝑥

𝑑𝑡= 6 ×

𝑉

𝑉×

𝑑𝑥

𝑑𝑡= 6 × 𝑉 × 𝑣

𝑣′2 = 6 × 𝑉 × 𝑣 = 6 × 0.1 × 0.009 = 0.0054𝑚𝑜𝑙/𝑚𝑖𝑛

𝑣′6 = 6 × 𝑉 × 𝑣 = 6 × 0.1 × 0.003 = 0.0018𝑚𝑜𝑙/𝑚𝑖𝑛

- 𝑡1 2⁄

𝑡 = 𝑡1 2⁄ ⟹ 𝑥 =𝑥𝑓

2 ⟹ [𝐴𝑙3+] =

[𝐴𝑙3+]𝑓

2=

100

2= 50𝑚𝑚𝑜𝑙/𝑙

⟹ 𝑡1 2⁄ ≈ 3.5𝑚𝑖𝑛

- 𝑡 = 5𝑚𝑖𝑛

𝑡 = 5𝑚𝑖𝑛 ⟹ 𝑥 =[𝐴𝑙3+]𝑉

2=

63.19 × 10−3 × 0.1

2= 3.16 × 10−3𝑚𝑜𝑙

[𝐴𝑙3+] = 0.063𝑚𝑜𝑙/𝑙

[𝐻3𝑂+] =𝑛0(𝐻3𝑂+) − 6𝑥

𝑉=

0.03 − 6 × 3.16 × 10−3

0.1= 0.11𝑚𝑜𝑙/𝑙

[𝐶𝑙−] = 0.3𝑚𝑜𝑙/𝑙

3as.ency-education.com

Page 5: 3as.ency-education · ii 2759 - 𝛽 − 2760 →2608 𝑖+−10 • 28 𝑖60 • 𝑖61 28 𝑖62 28 58.iii-7 ( )= 0 −𝜆 -8

II.

- 𝐶𝑜2759

• 𝐶𝑜2760 → 𝑁𝑖28

60 + 𝑒−10𝛽−

• 60𝑁𝑖2861𝑁𝑖28

62𝑁𝑖2858

III.

7-

8- 𝑁(𝑡) = 𝑁0𝑒−𝜆𝑡

𝐴 = − 𝑑𝑁(𝑡)

𝑑𝑡⇒ 𝐴 = −

𝑑(𝑁0𝑒−𝜆𝑡)

𝑑𝑡= 𝜆𝑁0𝑒−𝜆𝑡

𝑡 = 0 ⇒ 𝐴0 = 𝜆𝑁0

⇒ 𝐴 = 𝜆𝑁0𝑒−𝜆𝑡 ⇒ 𝐴(𝑡) = 𝐴0𝑒−𝜆𝑡

9- 𝐴0 = 29.22 × 1010𝐵𝑞.

10- 𝑡 = 𝜏

𝑡 = 𝜏 ⇒ 𝐴(𝜏) = 𝐴0𝑒−𝜆𝜏 = 𝐴0𝑒−1 = 0.37𝐴0

⇒ 𝐴(𝜏) = 0.37 × 29.22 × 1010 = 10.8 × 1010𝐵𝑞

• 𝜏 = 7.6𝑎𝑛𝑠 .

𝜆 =1

𝜏=

1

7.6= 0.131𝑎𝑛𝑠−1

𝜆 =1

𝜏=

1

7.6 × 365.25 × 24 × 3600⇒ 𝜆 = 4.16 × 10−9𝑠−1

11- 𝑚0

𝐴0 = 𝜆𝑁0 = 𝜆 ×𝑚0 × 𝑁𝐴

𝑀⇒ 𝑚0 =

𝐴0 × 𝑀

𝜆 × 𝑁𝐴

⇒ 𝑚0 =𝐴0 × 𝑀

𝜆 × 𝑁𝐴=

29.22 × 1010 × 60

4.16 × 10−9 × 6.02 × 1023⇒ 𝑚0 = 7 × 10−3𝑔

12- 𝐴

𝐴(𝑡) = 𝐴0𝑒−𝜆𝑡 = 29.22 × 1010 × 𝑒−0.131×5 = 15.17 × 1010𝐵𝑞

𝐴(𝑡) = 𝐴0𝑒−𝜆𝑡 ⇒𝐴(𝑡)

𝐴0= 𝑒−𝜆𝑡 ⇒ 𝑙𝑛

𝐴(𝑡)

𝐴0= −𝜆𝑡 ⇒ 𝑡 =

1

𝜆× 𝑙𝑛

𝐴0

𝐴(𝑡)= 𝜏 𝑙𝑛

𝐴0

𝐴(𝑡)

𝑡 = 𝜏 𝑙𝑛𝐴0

𝐴(𝑡)= 7.6 × 𝑙𝑛 (

29.22 × 1010

100 × 103) = 113.14𝑎𝑛𝑠

• 113.14 − 5 = 108.14 𝑎𝑛𝑠

3as.ency-education.com


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