Figure 1.
(a) Geographical locations and (b) land use types of the meteorological stations used in this study for Heilongjiang Province, northeast China.
Figure 1.
(a) Geographical locations and (b) land use types of the meteorological stations used in this study for Heilongjiang Province, northeast China.
Figure 2.
Spatial variation of annual average ET0 from 1964 to 2013 in Heilongjiang Province, northeast China.
Figure 2.
Spatial variation of annual average ET0 from 1964 to 2013 in Heilongjiang Province, northeast China.
Figure 3.
Spatial variation of seasonal ET0 during 1964 to 2013 in Heilongjiang Province, northeast China. (a: spring; b: summer; c: autumn; d: winter).
Figure 3.
Spatial variation of seasonal ET0 during 1964 to 2013 in Heilongjiang Province, northeast China. (a: spring; b: summer; c: autumn; d: winter).
Figure 4.
(a) Temporal trends of interannual ET0 for different elevations during 1964 to 2013 and (b) the spatial pattern of the Modified Mann–Kendall (MMK) test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 4.
(a) Temporal trends of interannual ET0 for different elevations during 1964 to 2013 and (b) the spatial pattern of the Modified Mann–Kendall (MMK) test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 5.
(a) Temporal trends of spring ET0 for different elevations from 1964 to 2013 and (b) spatial pattern of MMK test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 5.
(a) Temporal trends of spring ET0 for different elevations from 1964 to 2013 and (b) spatial pattern of MMK test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 6.
(a) Temporal trends of summer ET0 for different elevations from 1964 to 2013 and (b) spatial pattern of MMK test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 6.
(a) Temporal trends of summer ET0 for different elevations from 1964 to 2013 and (b) spatial pattern of MMK test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 7.
(a) Temporal trends of autumn ET0 for different elevations from 1964 to 2013 and (b) spatial pattern of MMK test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0-200 m, the Red thick and solid line is the linear trend of ET0 at 200-400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 7.
(a) Temporal trends of autumn ET0 for different elevations from 1964 to 2013 and (b) spatial pattern of MMK test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0-200 m, the Red thick and solid line is the linear trend of ET0 at 200-400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 8.
(a) Temporal trends of winter ET0 for different elevations from 1964 to 2013 and (b) spatial pattern of MMK test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 8.
(a) Temporal trends of winter ET0 for different elevations from 1964 to 2013 and (b) spatial pattern of MMK test in Heilongjiang Province, northeast China. Down ** indicates the decreasing trend at the 0.01 significance level, Down * indicates the decreasing trend at 0.05 significance level, and not significant means no significantly decreasing trend. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 9.
Trend of (a) winter maximum temperature (Tmax), and (b) winter minimum temperature (Tmin) at different elevations from 1964 to 2013 in Heilongjiang Province, northeast China. As the change slopes show, winter Tmin increased much more than winter Tmax in China’s northernmost region. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 9.
Trend of (a) winter maximum temperature (Tmax), and (b) winter minimum temperature (Tmin) at different elevations from 1964 to 2013 in Heilongjiang Province, northeast China. As the change slopes show, winter Tmin increased much more than winter Tmax in China’s northernmost region. (Green thick and solid line is the linear trend of ET0 at 0–200 m, the Red thick and solid line is the linear trend of ET0 at 200–400 m, Blue thick and solid line is the linear trend of ET0 at >400 m).
Figure 10.
The wavelet coherence (a) between winter ET0 and Tmax and (b) between winter ET0 and Tmin in Heilongjiang Province. A significance level of 5% against red noise is exhibited as a thick contour, and the relative phase relationship is denoted as arrows (with anti-phase pointing left and in-phase pointing right).
Figure 10.
The wavelet coherence (a) between winter ET0 and Tmax and (b) between winter ET0 and Tmin in Heilongjiang Province. A significance level of 5% against red noise is exhibited as a thick contour, and the relative phase relationship is denoted as arrows (with anti-phase pointing left and in-phase pointing right).
Table 1.
Geographical location and elevation of the 27 meteorological stations used in this study for estimating reference evapotranspiration for Heilongjiang Province, northeast China.
Table 1.
Geographical location and elevation of the 27 meteorological stations used in this study for estimating reference evapotranspiration for Heilongjiang Province, northeast China.
Station | Latitude | Longitude | Elevation | Station | Latitude | Longitude | Elevation |
---|
Fujin | 47.23 | 131.98 | 66.4 | Huma | 51.72 | 126.65 | 201.4 |
Jiamusi | 46.82 | 130.28 | 81.2 | Tieli | 46.98 | 128.02 | 210.5 |
baoqing | 46.32 | 132.18 | 83 | Sunwu | 49.43 | 127.35 | 234.5 |
Yilan | 46.30 | 129.58 | 100.1 | Keshan | 48.05 | 125.88 | 234.6 |
Hulin | 45.77 | 132.97 | 100.2 | Hailun | 47.43 | 126.97 | 239.2 |
Tonghe | 45.97 | 128.73 | 110.6 | Yichun | 47.73 | 128.92 | 240.9 |
Harbin | 45.75 | 126.77 | 142.3 | Mudanjiang | 44.57 | 129.60 | 241.4 |
Qiqihar | 47.38 | 123.92 | 147.1 | Nenjiang | 49.17 | 125.23 | 242.2 |
Anda | 46.38 | 125.32 | 149.3 | Mingshui | 47.17 | 125.90 | 247.2 |
Tailai | 46.40 | 123.42 | 149.5 | Beian | 48.7 | 126.4 | 347.2 |
Fuyu | 47.80 | 124.48 | 162.7 | Jixi | 45.2 | 130.80 | 415.8 |
Aihui | 50.25 | 127.45 | 153.4 | Mohe | 52.97 | 122.52 | 433.1 |
Beilin | 46.62 | 126.97 | 179.6 | Suifenhe | 44.38 | 131.17 | 567.8 |
Shangzhi | 45.22 | 127.97 | 189.7 | | | | |
Table 2.
Average ET0 (±std) of different seasons at different elevations in Heilongjiang Province, northeast China.
Table 2.
Average ET0 (±std) of different seasons at different elevations in Heilongjiang Province, northeast China.
Variable | Elevation (m a.s.l.) | Annual | Spring | Summer | Autumn | Winter |
---|
ET0 (mm) | 0–200 | 772.5 ± 48.3 | 262.0 ± 25.2 | 324.5 ± 30.3 | 146.9 ± 15.9 | 39.2 ± 6.1 |
200–400 | 705.4 ± 38.5 | 240.6 ± 22.1 | 309.4 ± 26.3 | 125.5 ± 12.4 | 30.0 ± 4.0 |
>400 | 668.1 ± 31.8 | 224.7 ± 17.4 | 284.3 ± 22.4 | 122.8 ± 11.5 | 36.4 ± 4.5 |
Mean | 715.3 ± 38.4 | 242.4 ± 21.2 | 306.1 ± 25.8 | 131.7 ± 12.7 | 35.2 ± 4.7 |
Table 3.
Seasonal and interannual variation of ET0 from 1964 to 2013 at different elevations in Heilongjiang Province, Northeast China.
Table 3.
Seasonal and interannual variation of ET0 from 1964 to 2013 at different elevations in Heilongjiang Province, Northeast China.
Variable | Elevation (m a.s.l.) | Annual (Z) | Spring (Z) | Summer (Z) | Autumn (Z) | Winter (Z) |
---|
ET0 (mm/10 year) | 0–200 | −10.7 ** (−2.7) | −5.1 ** (−2.8) | −3.4 ** (−2.5) | −2.6 ** (−2.4) | 0.3 (0.5) |
200–400 | −7.2 ** (−2.4) | −4.2 ** (−2.7) | −2.4 ** (−2.4) | −1.2 (−1.9) | 0.5 (0.8) |
>400 | −4.1 ** (−2.3) | −3.3 ** (−2.6) | −2.3 ** (−2.2) | 0.6 (0.3) | 0.9 (1.1) |
Mean | −7.4 ** (−2.5) | −4.2 ** (−2.7) | −2.7 ** (−2.4) | −1.1 (−1.3) | 0.6 (0.8) |
Table 4.
Average wind speed (WS), maximum and minimum temperature (Tmax, Tmin)), sunshine duration (SD), and relative humidity (RH) during the four seasons at different elevations in Heilongjiang Province, northeast China.
Table 4.
Average wind speed (WS), maximum and minimum temperature (Tmax, Tmin)), sunshine duration (SD), and relative humidity (RH) during the four seasons at different elevations in Heilongjiang Province, northeast China.
Variable | Elevation (m a.s.l.) | Annual | Spring | Summer | Autumn | Winter |
---|
WS (m/s) | 0–200 | 3.3 | 4.0 | 2.8 | 3.3 | 3.0 |
200–400 | 2.8 | 3.5 | 2.6 | 2.8 | 2.2 |
>400 | 2.7 | 3.3 | 2.3 | 2.7 | 2.7 |
Mean | 2.9 | 3.6 | 2.6 | 2.9 | 2.6 |
Tmax (°C) | 0–200 | 9.0 | 11.2 | 26.2 | 9.8 | −11.3 |
200–400 | 8.1 | 10.5 | 25.8 | 8.9 | −12.7 |
>400 | 7.5 | 9.6 | 24.9 | 8.3 | −12.8 |
Mean | 8.2 | 10.4 | 25.6 | 9.0 | −12.3 |
Tmin (°C) | 0–200 | −2.4 | −1.5 | 15.7 | −1.4 | −22.4 |
200–400 | −4.1 | −3.0 | 14.6 | −3.1 | −25.1 |
>400 | −5.1 | −4.3 | 13.0 | −4.2 | −24.8 |
Mean | −3.9 | −2.9 | 14.4 | −2.9 | −24.1 |
SD (h/d) | 0–200 | 7.2 | 8.2 | 8.3 | 6.7 | 5.7 |
200–400 | 7.1 | 8.1 | 8.2 | 6.5 | 5.6 |
>400 | 6.9 | 8.0 | 7.8 | 6.4 | 5.5 |
Mean | 7.1 | 8.1 | 8.1 | 6.5 | 5.6 |
RH (%) | 0–200 | 64.9 | 53.7 | 73.4 | 64.9 | 67.6 |
200–400 | 67.5 | 55.8 | 74.6 | 67.9 | 71.6 |
>400 | 69.5 | 56.8 | 76.9 | 68.0 | 68.3 |
Mean | 67.3 | 55.4 | 75.0 | 66.9 | 69.2 |
Table 5.
Decadal changes in wind speed (WS), maximum and minimum temperature (Tmax, Tmin), subnshine duration (SD), and relative humidity (RH) from 1964 to 2013 in Heilongjiang Province, northeast China.
Table 5.
Decadal changes in wind speed (WS), maximum and minimum temperature (Tmax, Tmin), subnshine duration (SD), and relative humidity (RH) from 1964 to 2013 in Heilongjiang Province, northeast China.
Variable | Elevation (m a.s.l.) | Interannual | Spring | Summer | Autumn | Winter |
---|
WS (m/s/10 year) | 0–200 | −0.31 | −0.41 | −0.22 | −0.31 | −0.31 |
200–400 | −0.22 | −0.29 | −0.21 | −0.19 | −0.23 |
>400 | −0.13 | −0.13 | 0.09 | −0.13 | −0.13 |
Mean | −0.22 | −0.28 | −0.11 | −0.21 | −0.22 |
Tmax (°C/10 year) | 0–200 | 0.21 | 0.11 | 0.22 | 0.29 | 0.35 |
200–400 | 0.32 | 0.14 | 0.19 | 0.31 | 0.36 |
>400 | 0.23 | 0.12 | 0.12 | 0.33 | 0.44 |
Mean | 0.25 | 0.12 | 0.18 | 0.31 | 0.38 |
Tmin (°C/10 year) | 0–200 | 0.46 | 0.53 | 0.52 | 0.53 | 0.61 |
200–400 | 0.58 | 0.61 | 0.51 | 0.62 | 0.73 |
>400 | 0.43 | 0.42 | 0.34 | 0.49 | 0.59 |
Mean | 0.49 | 0.52 | 0.46 | 0.55 | 0.64 |
SD (h/d/10 year) | 0–200 | −0.12 | −0.14 | −0.14 | −0.12 | −0.10 |
200–400 | −0.11 | −0.13 | −0.19 | −0.11 | −0.09 |
>400 | −0.13 | −0.18 | −0.22 | −0.13 | −0.11 |
Mean | −0.12 | −0.15 | −0.18 | −0.12 | −0.10 |
RH (%/10 year) | 0–200 | −0.12 | 0.18 | −0.23 | −0.22 | −0.31 |
200–400 | −0.21 | 0.22 | −0.33 | −0.43 | −0.43 |
>400 | 0.02 | 0.53 | 0.19 | −0.14 | −0.38 |
Mean | −0.10 | 0.31 | −0.12 | −0.26 | −0.37 |
Table 6.
Correlation coefficients between ET0 and meteorological parameters, including wind speed (WS), maximum and minimum temperature (Tmax, Tmin), sunshine duration (SD), and relative humidity (RH) from 1964 to 2013 at different elevations in Heilongjiang Province, northeast China.
Table 6.
Correlation coefficients between ET0 and meteorological parameters, including wind speed (WS), maximum and minimum temperature (Tmax, Tmin), sunshine duration (SD), and relative humidity (RH) from 1964 to 2013 at different elevations in Heilongjiang Province, northeast China.
Time | Elevation (m a.s.l.) | WS | Tmax | Tmin | SD | RH |
---|
Annual | 0–200 | 0.41 | 0.39 | −0.11 | 0.61 * | −0.68 * |
200–400 | 0.49 * | 0.32 | −0.13 | 0.67 * | −0.62 * |
>400 | 0.43 | 0.31 | −0.09 | 0.72 * | −0.81 * |
Mean | 0.44 | 0.34 | −0.11 | 0.67 * | −0.70 * |
Spring | 0–200 | 0.41 | 0.72 * | 0.23 | 0.49 * | −0.81 * |
200–400 | 0.52 * | 0.68 * | 0.21 | 0.51 * | −0.82 * |
>400 | 0.19 | 0.61 * | 0.19 | 0.52 * | −0.85 * |
Mean | 0.30 | 0.67 | 0.21 | 0.51 | −0.83 * |
Summer | 0–200 | 0.32 | 0.71 * | 0.01 | 0.86 * | −0.93 * |
200–400 | 0.31 | 0.73 * | −0.09 | 0.88 * | −0.91 * |
>400 | 0.4 | 0.8 * | −0.1 | 0.90 * | −0.82 * |
Mean | 0.34 | 0.75 * | −0.06 | 0.87 * | −0.89 * |
Autumn | 0–200 | 0.40 | 0.43 | −0.13 | 0.82 * | −0.94 * |
200–400 | 0.41 | 0.51 * | −0.18 | 0.79 * | −0.83 * |
>400 | 0.32 | 0.58 * | 0.11 | 0.73 * | −0.92 * |
Mean | 0.38 | 0.51 * | −0.07 | 0.78 * | −0.90 * |
Winter | 0–200 | 0.11 | 0.91 * | 0.79 * | 0.43 | −0.77 * |
200–400 | 0.22 | 0.83 * | 0.81 * | 0.42 | −0.61 * |
>400 | 0.09 | 0.83 * | 0.73 * | 0.03 | −0.63 * |
Mean | 0.14 | 0.86 * | 0.78 * | 0.29 | −0.67 * |
Table 7.
Seasonal and annual average sensitivity coefficients for individual climatic factors, including wind speed (WS), maximum and minimum temperature (Tmax, Tmin), sunshine duration (SD), and relative humidity (RH) to ET0 from 1964 to 2013 at different elevations in Heilongjiang Province, northeast China.
Table 7.
Seasonal and annual average sensitivity coefficients for individual climatic factors, including wind speed (WS), maximum and minimum temperature (Tmax, Tmin), sunshine duration (SD), and relative humidity (RH) to ET0 from 1964 to 2013 at different elevations in Heilongjiang Province, northeast China.
Time | Elevation (m a.s.l.) | WS | Tmax | Tmin | SD | RH |
---|
Annual | 0–200 | 0.15 | 0.16 | 0.05 | 0.06 | −0.33 |
200–400 | 0.11 | 0.14 | 0.08 | 0.05 | −0.29 |
>400 | 0.14 | 0.17 | 0.10 | 0.03 | −0.31 |
Mean | 0.13 | 0.16 | 0.07 | 0.05 | −0.31 |
Spring | 0–200 | 0.16 | 0.08 | 0.04 | 0.06 | −0.34 |
200–400 | 0.13 | 0.07 | 0.02 | 0.05 | −0.33 |
>400 | 0.15 | 0.05 | 0.02 | 0.05 | −0.32 |
Mean | 0.15 | 0.07 | 0.03 | 0.05 | −0.33 |
Summer | 0–200 | 0.20 | 0.07 | −0.04 | 0.15 | −0.45 |
200–400 | 0.13 | 0.05 | −0.02 | 0.14 | −0.44 |
>400 | 0.13 | 0.04 | −0.01 | 0.12 | −0.43 |
Mean | 0.15 | 0.05 | −0.02 | 0.14 | −0.44 |
Autumn | 0–200 | 0.19 | 0.16 | −0.03 | 0.02 | −0.33 |
200–400 | 0.14 | 0.14 | 0.08 | 0.02 | −0.22 |
>400 | 0.23 | 0.14 | 0.11 | 0.00 | −0.33 |
Mean | 0.19 | 0.15 | 0.05 | 0.01 | −0.29 |
Winter | 0–200 | 0.04 | 0.31 | 0.21 | 0.00 | −0.21 |
200–400 | 0.03 | 0.33 | 0.23 | 0.00 | −0.18 |
>400 | 0.05 | 0.43 | 0.28 | −0.04 | −0.15 |
Mean | 0.04 | 0.35 | 0.24 | −0.01 | −0.18 |