LAMPIRAN
Lampiran 1. Alat dan Bahan yang Digunakan pada Penelitian
No. Alat dan Bahan Spesifikasi Unit/Satuan Pemeliharaan dan Percobaan
1. Akuarium pemeliharaan 100 x 45 x 45 cm 2/- 2. Akuarium pemeliharaan 90 x 50 x 45 cm 1/-
3. Akuarium filter - 2/-
4. Akuarium filter - 1/-
5. Sekat jaring 50 x 45 cm 6/
6. Sekat jaring 50 x 40 cm 2/-
7. Pipa paralon 0.5 inci 6 m/-
8. Siku-siku 0.5 inci 24/-
9. Kunci pompa 0.5 inci 3/-
10. Pompa air - 3/-
11. Selang aerasi - 6 m/-
12. Setelan angin 1 lubang - 9/-
13. Batu aerasi - 9/-
14. Pompa angin - 1/-
15. Air laut - 1000 liter/-
16. Air tawar - 100 liter/-
17. Bioball duri - 300/-
18. Arang batok - 7.5 kg/-
19. Kapas filter 2 x 1 m 1/-
20. Grafel Pecahan karang mati 8 kg/- 21. Pemanas air akuarium RS308 150 W 2/-
22. Termometer - 3/ ⁰C
23. Refraktometer Hand-Held Refractometer 1/
o/
oo24. Anemon pasir Heteractis malu 9/- Pengambilan dan Pembuatan Preparat
25. Pipet tetes - 1/-
26. Pinset - 1/-
27. Gunting bedah - 1/-
28. Tabung reaksi 15 ml 6/-
29. Oven - 1/-
30. Inkubator - 1/-
31. Mikrotom - 1/-
32. Pencetak parafin - 51/-
33. Gelas objek - 131/-
34. Gelas penutup - 131/-
Pengukuran Parameter
35. Mikroskop cahaya Olympus CX21LEDFS1 Olympus CX41
1/-
36. Mikrometer objektif - 1/-
37. Laptop - 1/-
38. Alat mikrofotografi Kamera digital Optilab 1/- 39. Software mikrofotografi Optilab Viewer, Image
Raster, ImageJ, Stream Start
1/-
Lanjutan Lampiran 1. Alat dan Bahan yang Digunakan pada Penelitian
No Alat dan Bahan Spesifikasi Unit/Satuan Pengukuran Parameter
40. Kamera digital - 1/-
41. Botol sampel Kaca dan plastik 72/-
42. Spektrofotometer - 1/-
43. pH meter - 1/-
44. Botol sampel (untuk air) 50 ml 3/-
45. Gelas beker - 10/-
46. Tabung reaksi - 3/-
47. Pipet volumetrik - 2/-
48. Bulb - 1/-
49. Akuades - 5 liter/-
50. Larutan fenol - 20 ml/-
51. Larutan sodium nitroprusit - 20 ml/- 52. Larutan oxydizing solution Sodium Hipoklorit 5% dan
Larutan Alkalin 20%
50 ml/- 53. Larutan pewarna nitrit - 8 ml/-
54. Kertas saring - 30/-
55. Botol semprot - 1/-
Lampiran 2. Bagan Pengambilan Sampel Bagan untuk Satu Kali Pengambilan Sampel
Sampel 28 ⁰C 29 ⁰C 30 ⁰C
Total a1
t1 Y
111Y
211Y
311t2 Y
112Y
212Y
312t3 Y
113Y
213Y
313a2
t1 Y
121Y
221Y
321t2 Y
122Y
222Y
322t3 Y
123Y
223Y
323a3
t1 Y
131Y
231Y
331t2 Y
132Y
232Y
332t3 Y
133Y
233Y
333Jumlah Y
1= 9 Y
2= 9 Y
3= 9 27
Ket: 1. Y menunjukkan sampel
2. angka subskrip pertama menunjukkan jenis perlakuan
3. angka subskrip kedua menunjukkan anemon
4. angka subskrip ketiga menunjukkan tentakel
Lampiran 3. Data Pengamatan Kualitas Air
Data Pengamatan Suhu dan Salinitas Air Laut pada Akuarium pada Tahap I, Istirahat dan Tahap II
No Tanggal Suhu (
oC) Salinitas (
o/
oo)
K P1 P2 K P1 P2
1. 5/11/2011 28 28 28 32.5 32.5 32.5 2. 5/12/2011 28 29 30 32.5 32.5 33
3. 5/13/2011 28 28 31 33 32.5 33
4. 5/14/2011 28 28 29 33 33.5 33
5. 5/15/2011 28 28 28 33 34 32.5
6. 5/16/2011 28.5 28.5 28.5 33 34 32.5
7. 5/17/2011 28 28 28 33 33 32.5
8. 5/18/2011 28 29 30 33 34 33.5
9. 5/19/2011 28 29 30 33 33 33
10. 5/23/2011 28 28 28 33 33 33
Keterangan : K (kontrol), P1(perlakuan 1), dan P2(perlakuan 2)
Data Pengamatan pH, Ammonia dan Nitrit Air Laut pada Akuarium pada Masa Aklimatisasi, Tahap I, Pemulihan dan Tahap II
No Tanggal pH Nitrit (mg/lt) Amonia (mg/lt)
Keterangan K P1 P2 K P1 P2 K P1 P2
1. 4/14/2011 7.99 7.92 7.92 0.021 0.014 0.004 0.055 0.091 0.028 Langsung 2. 5/15/2011 7.97 7.83 7.77 0.036 0.019 0.015 0.028 0.024 0.024 Langsung 3. 5/16/2011 7.7 7.7 7.7 0.006 0.003 0.002 0.131 0.198 0.144 Disimpan dalam chiller selama 2 hari 4. 5/17/2011 7.7 7.7 7.7 0.001 0.009 0.003 0.061 0.049 0.068 Disimpan dalam chiller selama 1 hari 5. 5/19/2011 7.7 7.8 7.7 0.019 0.047 0.047 0.001 0.000 0.010 Disimpan dalam chiller selama 4 hari Keterangan : K (kontrol), P1(perlakuan 1), dan P2(perlakuan 2)
Data Kualitas Air Selama Perlakuan
Parameter Kualitas Air
Akuarium Percobaan Akuarium Air Laut
aAlam
Salinitas (‰) 32.5-34 34-36 32-40
bNitrit (mg/lt) 0.001-0.047 1.0-3.0 0.39
cAmonia (mg/lt) 0.001-0.198 0.1-1 0.2
cpH 7.77-7.99 8.2-8.6 8.0-8.3
da Nursaiful (2004)
b Veron (1986 dalam Hoegh-Guldberg (1999))
c D’Elia (1988 dalam Muller-Parker dan Davy (2001))
d Stambler (2010)
Lampiran 4. Laju Pembelahan Zooxanthellae dengan Peningkatan Suhu 1 ⁰C dan 2 ⁰C
Unit Perlakuan IM (%)
Perlakuan Jam ke- (tn) Rataan SD
Kontrol (28⁰C)
0 0.033 1.41 24 0.036 0.80 48 0.038 0.67 144 0.069 0.91 168 0.072 0.81 192 0.071 1.08
Jumlah 0.053 0.026
Perlakuan 1 (29⁰C)
0 0.042 0.81 24 0.051 0.79 48 0.037 0.83 144 0.086 3.72 168 0.042 2.31 192 0.055 1.32
Jumlah 0.050 0.024
Perlakuan 2 (30⁰C)
0 0.031 0.80 24 0.058 0.67 48 0.035 0.46 144 0.072 1.28 168 0.041 1.54 192 0.044 1.77
Jumlah 0.047 0.022
Lampiran 5. Hasil Analisis Regresi IM dengan Waktu
Persamaan Regresi Y = α e
βxTransformasi ln( y ) = ln α + β x
Kontrol (28 ⁰C)
Regression Analysis: ln (IM) versus waktu
The regression equation is ln (IM) = - 3,54 + 0,00501 waktu
Predictor Coef SE Coef T P Constant -3,54370 0,08847 -40,05 0,000 waktu 0,0050084 0,0007276 6,88 0,000
S = 0,398981 R-Sq = 47,7% R-Sq(adj) = 46,7%
Analysis of Variance
Source DF SS MS F P Regression 1 7,5421 7,5421 47,38 0,000 Residual Error 52 8,2777 0,1592
Total 53 15,8198
Unusual Observations
Obs waktu ln (IM) Fit SE Fit Residual St Resid 6 0 -2,6883 -3,5437 0,0885 0,8555 2,20R 10 24 -2,3645 -3,4235 0,0754 1,0590 2,70R 12 24 -4,4229 -3,4235 0,0754 -0,9993 -2,55R R denotes an observation with a large standardized residual.
Residual
Percent
1,0 0,5 0,0 -0,5 -1,0 99 90 50
10 1
Fitted Value
Residual
-2,50 -2,75 -3,00 -3,25 -3,50 1,0 0,5 0,0 -0,5 -1,0
Residual
Frequency
1,0 0,5 0,0 -0,5 -1,0 12
9 6 3 0
Observation Order
Residual
50 45 40 35 30 25 20 15 10 5 1 1,0 0,5 0,0 -0,5 -1,0
Normal Probability Plot of the Residuals Residuals Versus the Fitted Values
Histogram of the Residuals Residuals Versus the Order of the Data Residual Plots for ln (IM)
Lanjutan Lampiran 5. Hasil Analisis Regresi IM dengan Waktu
ln (IM)
Percent
-2,0 -2,5
-3,0 -3,5
-4,0 -4,5
99
95 90
80 70 60 50 40 30 20
10 5
1
Mean
>0,150 -3,063 StDev 0,5463
N 54
KS 0,098
P-Value
Probability Plot of ln (IM) Normal
Perlakuan 1 (29 ⁰C)
Regression Analysis: ln (IM) versus waktu
The regression equation is ln (IM) = - 3,23 + 0,00167 waktu
45 cases used, 9 cases contain missing values
Predictor Coef SE Coef T P Constant -3,2301 0,1025 -31,52 0,000 waktu 0,0016653 0,0009346 1,78 0,082
S = 0,459036 R-Sq = 6,9% R-Sq(adj) = 4,7%
Analysis of Variance
Source DF SS MS F P Regression 1 0,6690 0,6690 3,17 0,082 Residual Error 43 9,0607 0,2107
Total 44 9,7297
Unusual Observations
Obs waktu ln (IM) Fit SE Fit Residual St Resid 8 0 -4,1352 -3,2301 0,1025 -0,9051 -2,02R 41 168 -3,9120 -2,9503 0,1058 -0,9617 -2,15R R denotes an observation with a large standardized residual.
Lanjutan Lampiran 5. Hasil Analisis Regresi IM dengan Waktu
Residual
Percent
1,0 0,5 0,0 -0,5 -1,0 99 90 50
10 1
Fitted Value
Residual
-2,9 -3,0
-3,1 -3,2
1,0 0,5 0,0 -0,5 -1,0
Residual
Frequency
0,75 0,50 0,25 0,00 -0,25 -0,50 -0,75 -1,00 12
9 6 3 0
Observation Order
Residual
50 45 40 35 30 25 20 15 10 5 1 1,0 0,5 0,0 -0,5 -1,0
Normal Probability Plot of the Residuals Residuals Versus the Fitted Values
Histogram of the Residuals Residuals Versus the Order of the Data
Residual Plots for ln (IM)
ln (IM)
Percent
-2,0 -2,5
-3,0 -3,5
-4,0 -4,5
99
95 90 80 70 60 50 40 30 20 10 5
1
Mean
>0,150 -3,094 StDev 0,4702
N 45
KS 0,088
P-Value
Probability Plot of ln (IM) Normal
Perlakuan 2 (30 ⁰C)
Regression Analysis: ln (IM)_1 versus jam ke-
The regression equation is
ln (IM)_1 = - 3,30 + 0,00119 jam ke-
Predictor Coef SE Coef T P Constant -3,2999 0,1171 -28,19 0,000 jam ke- 0,0011945 0,0009628 1,24 0,220
Lanjutan Lampiran 5. Hasil Analisis Regresi IM dengan Waktu
S = 0,527948 R-Sq = 2,9% R-Sq(adj) = 1,0%
Analysis of Variance
Source DF SS MS F P Regression 1 0,4290 0,4290 1,54 0,220 Residual Error 52 14,4939 0,2787
Total 53 14,9230
Unusual Observations
Obs jam ke- ln (IM)_1 Fit SE Fit Residual St Resid 51 192 -4,8283 -3,0706 0,1171 -1,7578 -3,41R R denotes an observation with a large standardized residual.
Residual
Percent
1 0
-1 -2
99
90
50
10
1
Fitted Value
Residual
-3,10 -3,15 -3,20 -3,25 -3,30 1
0
-1
-2
Residual
Frequency
0,8 0,4 0,0 -0,4 -0,8 -1,2 -1,6 10,0
7,5
5,0
2,5
0,0
Observation Order
Residual
50 45 40 35 30 25 20 15 10 5 1 1
0
-1
-2
Normal Probability Plot of the Residuals Residuals Versus the Fitted Values
Histogram of the Residuals Residuals Versus the Order of the Data Residual Plots for ln (IM)_1
Lanjutan Lampiran 5. Hasil Analisis Regresi IM dengan Waktu
ln (IM)_1
Percent
-2,0 -2,5
-3,0 -3,5
-4,0 -4,5
-5,0
99
95 90
80 70 60 50 40 30 20
10 5
1
Mean
>0,150 -3,185 StDev 0,5306
N 54
KS 0,086
P-Value
Probability Plot of ln (IM)_1 Normal
Lampiran 6. Hasil Analisis Regresi IM dengan Kualitas Air
Persamaan regresi y = β0 + β1x
1+ β2x
2 + β3x
3+ β4x
4
x
1+ β2x
2 + β3x
3+ β4x
4
x
3+ β4x
4
Kontrol (28 ⁰C)
Regression Analysis: IM versus Sal; pH; Nitrit; Amonia
* Sal is (essentially) constant
* Sal has been removed from the equation.
* pH is (essentially) constant
* pH has been removed from the equation.
* Amonia is highly correlated with other X variables
* Amonia has been removed from the equation.
Weighted analysis using weights in IM
The regression equation is IM = 0,0755 - 0,089 Nitrit
18 cases used, 36 cases contain missing values or had zero weight
Predictor Coef SE Coef T P VIF Constant 0,075547 0,006757 11,18 0,000 Nitrit -0,0886 0,4983 -0,18 0,861 1,0
S = 0,00503377 R-Sq = 0,2% R-Sq(adj) = 0,0%
Analysis of Variance
Source DF SS MS F P Regression 1 0,00000080 0,00000080 0,03 0,861 Residual Error 16 0,00040542 0,00002534
Total 17 0,00040622
Unusual Observations
Obs Nitrit IM Fit SE Fit Residual St Resid 29 0,0010 0,10400 0,07546 0,00639 0,02854 2,00R R denotes an observation with a large standardized residual.
Lanjutan Lampiran 6. Hasil Analisis Regresi IM dengan Kualitas Air
Residual
Percent
0,050 0,025
0,000 -0,025
-0,050 99 90 50
10 1
Fitted Value
Residual
0,0756 0,0752 0,0748 0,0744 0,0740 0,02 0,00 -0,02 -0,04
Residual
Frequency
0,03 0,02 0,01 0,00 -0,01 -0,02 -0,03 -0,04 4 3 2 1 0
Observation Order
Residual
50 45 40 35 30 25 20 15 10 5 1 0,02 0,00 -0,02 -0,04
Normal Probability Plot of the Residuals Residuals Versus the Fitted Values
Histogram of the Residuals Residuals Versus the Order of the Data
Residual Plots for IM
RESI1
Percent
0,050 0,025
0,000 -0,025
-0,050
99
95 90 80 70 60 50 40 30 20
10 5 1
Mean
>0,150 -0,004660 StDev 0,01863
N 18
KS 0,107
P-Value
Probability Plot of RESI1 Normal
Perlakuan 1 (29 ⁰C)
Regression Analysis: IM versus Sal; pH; Nitrit; Amonia
* Sal is (essentially) constant
* Sal has been removed from the equation.
* Nitrit is highly correlated with other X variables
* Nitrit has been removed from the equation.
Lanjutan Lampiran 6. Hasil Analisis Regresi IM dengan Kualitas Air
* Amonia is highly correlated with other X variables
* Amonia has been removed from the equation.
Weighted analysis using weights in IM
The regression equation is IM = 2,83 - 0,356 pH
12 cases used, 42 cases contain missing values or had zero weight
Predictor Coef SE Coef T P VIF Constant 2,835 1,119 2,53 0,030 pH -0,3558 0,1446 -2,46 0,034 1,0
S = 0,00649581 R-Sq = 37,7% R-Sq(adj) = 31,5%
Analysis of Variance
Source DF SS MS F P Regression 1 0,00025542 0,00025542 6,05 0,034 Residual Error 10 0,00042196 0,00004220
Total 11 0,00067738
Residual
Percent
0,050 0,025 0,000 -0,025 -0,050 99 90 50
10 1
Fitted Value
Residual
0,10 0,09 0,08 0,07 0,06 0,02 0,00 -0,02 -0,04
Residual
Frequency
0,02 0,00 -0,02 -0,04 3
2 1
0
Observation Order
Residual
50 45 40 35 30 25 20 15 10 5 1 0,02 0,00 -0,02 -0,04
Normal Probability Plot of the Residuals Residuals Versus the Fitted Values
Histogram of the Residuals Residuals Versus the Order of the Data
Residual Plots for IM
Lanjutan Lampiran 6. Hasil Analisis Regresi IM dengan Kualitas Air
RESI1
Percent
0,050 0,025
0,000 -0,025
-0,050 -0,075
99
95 90 80 70 60 50 40 30 20
10 5 1
Mean
>0,150 -0,006377 StDev 0,02327
N 12
KS 0,133
P-Value
Probability Plot of RESI1 Normal
Perlakuan 2 (30 ⁰C)
Regression Analysis: IM versus Sal; pH; Nitrit; Amonia
* pH is (essentially) constant
* pH has been removed from the equation.
* Nitrit is highly correlated with other X variables
* Nitrit has been removed from the equation.
* Amonia is highly correlated with other X variables
* Amonia has been removed from the equation.
Weighted analysis using weights in IM
The regression equation is IM = 0,676 - 0,0188 Sal
Predictor Coef SE Coef T P VIF Constant 0,6760 0,2766 2,44 0,018 Sal -0,018827 0,008410 -2,24 0,029 1,0
S = 0,00455619 R-Sq = 8,8% R-Sq(adj) = 7,0%
Lanjutan Lampiran 6. Hasil Analisis Regresi IM dengan Kualitas Air
Analysis of Variance
Source DF SS MS F P Regression 1 0,00010404 0,00010404 5,01 0,029 Residual Error 52 0,00107946 0,00002076
Total 53 0,00118350
Unusual Observations
Obs Sal IM Fit SE Fit Residual St Resid 15 33,0 0,086000 0,054685 0,003017 0,031315 2,05R 29 32,5 0,108000 0,064099 0,004346 0,043901 3,33R R denotes an observation with a large standardized residual.
Residual
Percent
0,050 0,025 0,000 -0,025 -0,050 99
90
50
10
1
Fitted Value
Residual
0,065 0,060 0,055 0,050 0,045 0,050
0,025
0,000
-0,025
-0,050
Residual
Frequency
0,04 0,02 0,00 -0,02 -0,04 10,0
7,5
5,0
2,5 0,0
Observation Order
Residual
50 45 40 35 30 25 20 15 10 5 1 0,050
0,025
0,000
-0,025
-0,050
Normal Probability Plot of the Residuals Residuals Versus the Fitted Values
Histogram of the Residuals Residuals Versus the Order of the Data Residual Plots for IM
RESI1
Percent
0,050 0,025
0,000 -0,025
-0,050 -0,075
99
95 90
80 70 60 50 40 30 20
10 5
1
Mean
>0,150 -0,009476 StDev 0,02165
N 54
KS 0,067
P-Value
Probability Plot of RESI1 Normal
Lampiran 7. Laju Pembelahan Zooxanthellae dengan Peningkatan Suhu 3⁰ C dan 5⁰ C
Unit Perlakuan IM (%)
Perlakuan Jam ke- (tn) Rataan SD
Kontrol (28⁰C)
0 2.49 0.72 0.5 1.91 0.6
3 2.87 1.11 6 7.27 2.88 9 3.76 1.09 12 2.56 0.51 15 2.56 0.56 18 2.4 0.78 21 2.31 0.58 24 2.24 0.56 27 3.22 0.68 30 7.67 1.2 33 3.62 1.02 36 2.53 0.57 39 2.31 0.58 42 1.53 0.71 45 1.29 0.39 48 1.16 0.38
Perlakuan 1 (31⁰C)
0 1.51 0.66 0.5 5.24 10.59
3 3.91 2.88 6 3.27 2.46 9 1.8 0.71 12 1.64 0.49 15 1.67 0.53 18 2 0.77 21 1.84 0.56 24 2.04 0.55 27 1.69 0.61 30 3 1.18 33 2.18 0.55 36 2.02 0.67 39 1.8 0.74 42 1.36 0.49 45 1.16 0.46 48 0.96 0.41
Lanjutan Lampiran 7. Laju Pembelahan Zooxanthellae dengan Peningkatan Suhu 3⁰ C dan 5⁰ C
Unit Perlakuan IM (%)
Perlakuan Jam ke- (tn) Rataan SD
Perlakuan 2 (33⁰C)
0 1.82 0.56 0.5 9.75 1.66
3 5.96 1.39 6 1.91 0.93 9 1.84 0.73 12 1.8 0.53 15 1.82 0.6 18 1.62 0.49 21 1.67 0.68 24 1.64 0.62 27 1.4 0.51 30 1.76 0.05 33 1.42 0.45 36 1.2 0.44 39 1.11 0.4 42 0.6 0.35 45 0.44 0.6 48 0.38 0.53
62
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