1615051015_fitria Harleni_tugas 3 Geokimia Geothermal.docx
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Nama : Fitria Harleni NPM : 1615051015 TUGAS 3 GEOKIMIA GEOTHERMAL
1.) Diketahui: Hl,265 = 1159 J/gm Hl,265 = x H1,100 + y Hv,100 x+y=1 Sehingga, y step 1 Hl,265 Hl,265 Hl,265 - Hl,11 bar Hl,265 - Hl,11 bar y (Hv,11 bar - H1,11 bar)
= (1-y) H1,11 bar + y Hv,11 bar = H1,11 bar – y H1,11 bar + y Hv,11 bar = – y H1,11 bar + y Hv,11 bar = y (Hv,11 bar - y H1,11 bar) = H1,265 - H1,11 bar
H1,265− H1,11 bar
y step 1
= Hv,11 bar −H1,11 bar =
1159− 781 2781−781 378
= 2000 = 0,189
Jika nilai Ccl adalah 1145 mg/kg Maka, CCl, step 1 = CCl,
180
=
CCl, 180 = CCl, 180 =
Ccl 265 (1−y) 1145
(1−y) 1145 (1−0,189) 1145 (0,811)
CCl, 180 = 1.411,83724 CCl, 180 = 1.412 mg/kg
y step 2 Hl,11 = (1-y) H1,6 bar + y Hv,6 bar Hl,11 = H1,6 bar – y H1,6 bar + y Hv, 6 bar Hl,11 - H1,6 bar = – y H1,6 bar + y Hv,6 bar Hl,11 - H1,6 bar = y (Hv,6 bar - y H1,6 bar) y (Hv,6 bar - H1,6 bar) = H1,11 - H1,6 bar H1,11− H1,6 bar
y step 2
= Hv,6 bar −H1,6 bar 781− 670
= 2757−670 111
= 2087 = 0,053
Jika nilai CCl Step 1 adalah 1412 mg/kg Maka, CCl, step 2 = CCl,
180
=
CCl, 180 = CCl, 180 =
Ccl Step 1 (1−y) 1412
(1−y) 1412 (1−0,053) 1412 (0,947)
CCl, 180 = 1491 CCl, 180 = 1.491 mg/kg
y step 3 Hl,6 = (1-y) H1,1 bar + y Hv,1 bar Hl,6 = H1,1 bar – y H1,1 bar + y Hv,1 bar Hl,6 - H1,1 bar = – y H1,1 bar + y Hv,1 bar Hl,6 - H1,1 bar = y (Hv,1 bar - y H1,1 bar) y (Hv,1 bar - H1,1 bar) = H1,6 - H1,1 bar
H1,6− H1,1 bar
y step 3
= Hv,1 bar −H1,1 bar 670− 419
= 2676 −419 251
= 2257 = 0,111 Jika nilai Ccl step 2 adalah 1491 mg/kg Maka, CCl, step 2 = CCl,
180
=
CCl, 180 = CCl, 180 =
Ccl step 2 (1−y) 1491
(1−y) 1491 (1−0,111) 1491 (0,889)
CCl, 180 = 1677 CCl, 180 = 1677 mg/kg
2.) Diketahui: Hl,265 = 1159 J/gm Hl,180 = Hv,180 =
Jika: H1,265 = x Hl,180 + y Hv,180 x+y =1 x
= (1-y)
H1,265 H1,265 H1,265 - H1,180 bar
= (1-y) Hl,180 bar + y Hv,180 bar = H1,180 bar – y H1,180 bar + y Hv,180 bar = – y H1,180 bar + y Hv,180 bar
H1,265 - H1,180 bar y (Hv,180 bar - H1,180 bar)
= y (Hv,180 bar - y H1,180 bar) = H1,265 - H1,180 bar H1,265− Hl,180bar
= Hv,180 bar –H1,180 bar =
1159− 764 2779−764 395
= 2150 = 0,196
1.) Diketahui: Hl,265 = 1159 J/gm Hl,265 = x H1,100 + y Hv,100 x+y=1 Sehingga, y step 1 Hl,265 Hl,265 Hl,265 - Hl,11 bar Hl,265 - Hl,11 bar y (Hv,11 bar - H1,11 bar)
= (1-y) H1,11 bar + y Hv,11 bar = H1,11 bar – y H1,11 bar + y Hv,11 bar = – y H1,11 bar + y Hv,11 bar = y (Hv,11 bar - y H1,11 bar) = H1,265 - H1,11 bar
H1,265− H1,11 bar
y step 1
= Hv,11 bar −H1,11 bar =
1159− 781 2781−781 378
= 2000 = 0,189
Jika nilai Ccl adalah 1145 mg/kg Maka, CCl, step 1 = CCl,
180
=
CCl, 180 = CCl, 180 =
Ccl 265 (1−y) 1145
(1−y) 1145 (1−0,189) 1145 (0,811)
CCl, 180 = 1.411,83724 CCl, 180 = 1.412 mg/kg
y step 2 Hl,11 = (1-y) H1,6 bar + y Hv,6 bar Hl,11 = H1,6 bar – y H1,6 bar + y Hv, 6 bar Hl,11 - H1,6 bar = – y H1,6 bar + y Hv,6 bar Hl,11 - H1,6 bar = y (Hv,6 bar - y H1,6 bar) y (Hv,6 bar - H1,6 bar) = H1,11 - H1,6 bar H1,11− H1,6 bar
y step 2
= Hv,6 bar −H1,6 bar 781− 670
= 2757−670 111
= 2087 = 0,053
Jika nilai CCl Step 1 adalah 1412 mg/kg Maka, CCl, step 2 = CCl,
180
=
CCl, 180 = CCl, 180 =
Ccl Step 1 (1−y) 1412
(1−y) 1412 (1−0,053) 1412 (0,947)
CCl, 180 = 1491 CCl, 180 = 1.491 mg/kg
y step 3 Hl,6 = (1-y) H1,1 bar + y Hv,1 bar Hl,6 = H1,1 bar – y H1,1 bar + y Hv,1 bar Hl,6 - H1,1 bar = – y H1,1 bar + y Hv,1 bar Hl,6 - H1,1 bar = y (Hv,1 bar - y H1,1 bar) y (Hv,1 bar - H1,1 bar) = H1,6 - H1,1 bar
H1,6− H1,1 bar
y step 3
= Hv,1 bar −H1,1 bar 670− 419
= 2676 −419 251
= 2257 = 0,111 Jika nilai Ccl step 2 adalah 1491 mg/kg Maka, CCl, step 2 = CCl,
180
=
CCl, 180 = CCl, 180 =
Ccl step 2 (1−y) 1491
(1−y) 1491 (1−0,111) 1491 (0,889)
CCl, 180 = 1677 CCl, 180 = 1677 mg/kg
2.) Diketahui: Hl,265 = 1159 J/gm Hl,180 = Hv,180 =
Jika: H1,265 = x Hl,180 + y Hv,180 x+y =1 x
= (1-y)
H1,265 H1,265 H1,265 - H1,180 bar
= (1-y) Hl,180 bar + y Hv,180 bar = H1,180 bar – y H1,180 bar + y Hv,180 bar = – y H1,180 bar + y Hv,180 bar
H1,265 - H1,180 bar y (Hv,180 bar - H1,180 bar)
= y (Hv,180 bar - y H1,180 bar) = H1,265 - H1,180 bar H1,265− Hl,180bar
= Hv,180 bar –H1,180 bar =
1159− 764 2779−764 395
= 2150 = 0,196
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