Chin J Plant Ecol ›› 2009, Vol. 33 ›› Issue (5): 958-965.DOI: 10.3773/j.issn.1005-264x.2009.05.015
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ZHAO Xiao-Wei1,2(), TANG Xue-Xi1, WANG You1,*(
)
Received:
2008-11-25
Revised:
2009-05-15
Online:
2009-11-25
Published:
2009-09-30
Contact:
WANG You
ZHAO Xiao-Wei, TANG Xue-Xi, WANG You. INTERACTIONS BETWEEN TWO SPECIES OF MARINE BLOOM MICROALGAE UNDER CONTROLLED LABORATORY CONDITIONS: HETEROSIGMA AKASHIWO AND KARENIA MIKIMOTOI[J]. Chin J Plant Ecol, 2009, 33(5): 958-965.
种群生长参数 The growth parameters of population | 起始密度 Initial cell densities | ||
---|---|---|---|
0.5 (×104 cell·mL-1) | 1.0 (×104 cell·mL-1) | 5.0 (×104 cell·mL-1) | |
生长回归方程 The logistic equation | N=49.566 4/(1+e4.144 4-0.473 9t) (R2=0.992 5) | N=44.666 1/(1+e4.532 1-0.654 7t) (R2=0.957 8) | N=42.813 2/(1+e4.433 7-0.851 0t) (R2=0.964 9) |
环境负载能力K Environment carry capacity (×104 cell·mL-1) | 49.566 4 | 44.666 1 | 42.813 2 |
瞬时增长率 Instantaneous rate of increase (r) | 0.473 9 | 0.654 7 | 0.851 0 |
到达拐点时间Tp The time at inflexion point (d) | 8.7 | 6.9 | 5.2 |
进入指数生长期的时间 The time of entering exponential phase (d) | 6.0 | 5.0 | 3.0 |
进入静止期的时间 The time of entrering stationary growth phase (d) | 19.0 | 14.0 | 10.0 |
Table 1 The growth parameters of Heterosigma akashiwo population at different initial cell densities
种群生长参数 The growth parameters of population | 起始密度 Initial cell densities | ||
---|---|---|---|
0.5 (×104 cell·mL-1) | 1.0 (×104 cell·mL-1) | 5.0 (×104 cell·mL-1) | |
生长回归方程 The logistic equation | N=49.566 4/(1+e4.144 4-0.473 9t) (R2=0.992 5) | N=44.666 1/(1+e4.532 1-0.654 7t) (R2=0.957 8) | N=42.813 2/(1+e4.433 7-0.851 0t) (R2=0.964 9) |
环境负载能力K Environment carry capacity (×104 cell·mL-1) | 49.566 4 | 44.666 1 | 42.813 2 |
瞬时增长率 Instantaneous rate of increase (r) | 0.473 9 | 0.654 7 | 0.851 0 |
到达拐点时间Tp The time at inflexion point (d) | 8.7 | 6.9 | 5.2 |
进入指数生长期的时间 The time of entering exponential phase (d) | 6.0 | 5.0 | 3.0 |
进入静止期的时间 The time of entrering stationary growth phase (d) | 19.0 | 14.0 | 10.0 |
种群生长参数 The growth parameters of population | 起始密度 Initial cell densities | ||
---|---|---|---|
0.5 (×104 cell·mL-1) | 1.0 (×104 cell·mL-1) | 5.0 (×104 cell·mL-1) | |
生长回归方程 The logistic equation | N=80.631 2/(1+e3.575 8-0.324 2t) (R2=0.990 3) | N=77.928 8/(1+e3.655 4-0.384 2t) (R2=0.993 6) | N=76.711 1/(1+e3.161 9-0.494 0t) (R2=0.985 1) |
环境负载能力K Environment carry capacity (×104 cell·mL-1) | 80.631 2 | 77.928 8 | 76.711 1 |
瞬时增长率 Instantaneous rate of increase (r) | 0.324 2 | 0.384 2 | 0.494 0 |
到达拐点时间Tp The time at inflexion point (d) | 11.0 | 9.5 | 6.4 |
进入指数生长期的时间 The time of entering exponential phase (d) | 9.0 | 7.0 | 4.0 |
进入静止期的时间 The time of entrering stationary growth phase (d) | 26.0 | 22.0 | 12.0 |
Table 2 The growth parameters of Karenia mikimotoi population at different initial cell densities
种群生长参数 The growth parameters of population | 起始密度 Initial cell densities | ||
---|---|---|---|
0.5 (×104 cell·mL-1) | 1.0 (×104 cell·mL-1) | 5.0 (×104 cell·mL-1) | |
生长回归方程 The logistic equation | N=80.631 2/(1+e3.575 8-0.324 2t) (R2=0.990 3) | N=77.928 8/(1+e3.655 4-0.384 2t) (R2=0.993 6) | N=76.711 1/(1+e3.161 9-0.494 0t) (R2=0.985 1) |
环境负载能力K Environment carry capacity (×104 cell·mL-1) | 80.631 2 | 77.928 8 | 76.711 1 |
瞬时增长率 Instantaneous rate of increase (r) | 0.324 2 | 0.384 2 | 0.494 0 |
到达拐点时间Tp The time at inflexion point (d) | 11.0 | 9.5 | 6.4 |
进入指数生长期的时间 The time of entering exponential phase (d) | 9.0 | 7.0 | 4.0 |
进入静止期的时间 The time of entrering stationary growth phase (d) | 26.0 | 22.0 | 12.0 |
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