Crop harvest removal — Cropland phosphorus in Nicaragua
Nicaragua: Crop harvest removal — Cropland phosphorus was 7,966 t in 2023. ▲ Rising
Crop harvest removal — Cropland phosphorus in Nicaragua, 1961–2023
Source: Food and Agriculture Organization of the United Nations. Measured in t.
Analysis
Nicaragua recorded 7,966 t for crop harvest removal — cropland phosphorus in 2023.
That represents a change of down 9.2% on the previous year and up 3.1% over ten years.
Over the whole period, crop harvest removal — cropland phosphorus in Nicaragua peaked at 8,777 t in 2022 and was at its lowest, 2,649 t, in 1961.
That places Nicaragua 103rd out of 186 countries with data for 2023, putting it in the middle of the range.
The long-run direction has been consistently rising across the 63 years of available data.
Crop harvest removal — Cropland phosphorus in Nicaragua, year by year
| Year | t | Change |
|---|---|---|
| 1961 | 2,649 t | — |
| 1962 | 3,442 t | +30.0% |
| 1963 | 3,977 t | +15.5% |
| 1964 | 4,881 t | +22.7% |
| 1965 | 5,894 t | +20.7% |
| 1966 | 5,498 t | -6.7% |
| 1967 | 5,915 t | +7.6% |
| 1968 | 5,618 t | -5.0% |
| 1969 | 5,356 t | -4.7% |
| 1970 | 4,623 t | -13.7% |
| 1971 | 5,087 t | +10.0% |
| 1972 | 5,272 t | +3.6% |
| 1973 | 5,616 t | +6.5% |
| 1974 | 7,345 t | +30.8% |
| 1975 | 6,665 t | -9.3% |
| 1976 | 6,301 t | -5.5% |
| 1977 | 6,739 t | +6.9% |
| 1978 | 7,736 t | +14.8% |
| 1979 | 6,878 t | -11.1% |
| 1980 | 3,224 t | -53.1% |
| 1981 | 5,569 t | +72.7% |
| 1982 | 5,198 t | -6.7% |
| 1983 | 5,669 t | +9.1% |
| 1984 | 6,105 t | +7.7% |
| 1985 | 5,443 t | -10.8% |
| 1986 | 4,867 t | -10.6% |
| 1987 | 4,518 t | -7.2% |
| 1988 | 4,140 t | -8.4% |
| 1989 | 3,813 t | -7.9% |
| 1990 | 3,956 t | +3.7% |
| 1991 | 4,047 t | +2.3% |
| 1992 | 4,043 t | -0.1% |
| 1993 | 3,611 t | -10.7% |
| 1994 | 3,668 t | +1.6% |
| 1995 | 4,310 t | +17.5% |
| 1996 | 4,534 t | +5.2% |
| 1997 | 4,347 t | -4.1% |
| 1998 | 4,762 t | +9.6% |
| 1999 | 4,752 t | -0.2% |
| 2000 | 5,417 t | +14.0% |
| 2001 | 5,218 t | -3.7% |
| 2002 | 5,736 t | +9.9% |
| 2003 | 6,780 t | +18.2% |
| 2004 | 5,823 t | -14.1% |
| 2005 | 6,644 t | +14.1% |
| 2006 | 6,265 t | -5.7% |
| 2007 | 6,279 t | +0.2% |
| 2008 | 6,090 t | -3.0% |
| 2009 | 6,849 t | +12.5% |
| 2010 | 6,555 t | -4.3% |
| 2011 | 7,450 t | +13.7% |
| 2012 | 8,006 t | +7.5% |
| 2013 | 7,729 t | -3.5% |
| 2014 | 7,206 t | -6.8% |
| 2015 | 6,835 t | -5.1% |
| 2016 | 7,593 t | +11.1% |
| 2017 | 7,993 t | +5.3% |
| 2018 | 8,028 t | +0.4% |
| 2019 | 8,038 t | +0.1% |
| 2020 | 8,256 t | +2.7% |
| 2021 | 8,434 t | +2.2% |
| 2022 | 8,777 t | +4.1% |
| 2023 | 7,966 t | -9.2% |
Nicaragua compared with similar countries
- Nicaragua's 7,966 t is below the median for lower middle income countries, which is 13,407 t, 59% of the median. (40 countries reporting)
- Nicaragua's 7,966 t is above the median for Latin America & Caribbean, which is 5,386 t, 1.5× the median. (32 countries reporting)
Biggest year-on-year movements
Years where Crop harvest removal — Cropland phosphorus in Nicaragua changed far more than this series normally does. A large move can be a real event or a change in how the figure was measured — the source note below says who published it.
| Year | Change | From | To |
|---|---|---|---|
| 1981 | +72.7% | 3,224 t | 5,569 t |
Averages by decade
| Decade | Average | Lowest | Highest | Years |
|---|---|---|---|---|
| 1960s | 4,803 t | 2,649 t | 5,915 t | 9 |
| 1970s | 6,226 t | 4,623 t | 7,736 t | 10 |
| 1980s | 4,855 t | 3,224 t | 6,105 t | 10 |
| 1990s | 4,203 t | 3,611 t | 4,762 t | 10 |
| 2000s | 6,110 t | 5,218 t | 6,849 t | 10 |
| 2010s | 7,543 t | 6,555 t | 8,038 t | 10 |
| 2020s | 8,358 t | 7,966 t | 8,777 t | 4 |
Countries ranked near Nicaragua
- 100 Kyrgyzstan 9,445 t compare
- 101 Honduras 8,290 t compare
- 102 Ireland 8,191 t compare
- 104 Cuba 7,938 t compare
- 105 South Sudan 7,705 t compare
- 106 Central African Republic 7,590 t compare
More environment data for Nicaragua
- Historical exposure to drought — Land soil moisture anomaly 3.64 Percentage change (2025)
- Historical exposure to drought — Cropland soil moisture anomaly 4.53 Percentage change (2025)
- Standard Deviation, annual growth rate 0 % change on previous year (2024)
- Standard Deviation 0.243 °C (2024)
- Temperature change 1.89 °C (2024)
- Wood-based panels — Production, annual growth rate 0 % change on previous year (2023)
- Total greenhouse gas emissions excluding LULUCF (Mt CO2e), annual 1.04 % change on previous year (2024)
- Total greenhouse gas emissions excluding LULUCF (Mt CO2e), per unit 0 Mt CO2e per US$ of GDP (2024)
- Total greenhouse gas emissions excluding LULUCF (Mt CO2e), per capita 0 Mt CO2e per person (2024)
- Methane (CH4) emissions from Agriculture (Mt CO2e), annual growth rate -0.0474 % change on previous year (2024)
Frequently asked questions
- What is crop harvest removal — cropland phosphorus in Nicaragua?
- Crop harvest removal — cropland phosphorus in Nicaragua was 7,966 t in 2023, according to Food and Agriculture Organization of the United Nations.
- What is the highest crop harvest removal — cropland phosphorus recorded in Nicaragua?
- The highest recorded value was 8,777 t in 2022.
- What is the lowest crop harvest removal — cropland phosphorus recorded in Nicaragua?
- The lowest recorded value was 2,649 t in 1961.
- How does Nicaragua rank for crop harvest removal — cropland phosphorus?
- Nicaragua ranks 103rd out of 186 countries with data for 2023.
- Is crop harvest removal — cropland phosphorus rising or falling in Nicaragua?
- Over the last ten years it is up 3.1%. The long-run trend across the full record is rising.
- Where does this Nicaragua data come from?
- The figures come from Food and Agriculture Organization of the United Nations, published as part of Crop harvest removal — Cropland phosphorus. Statizoid updates them automatically from the source API.
Download this data
CSV · JSON — 63 observations, free to reuse under CC BY-NC-SA 3.0 IGO (FAO).
About this data
The Cropland Nutrient balance domain contains information on the flows of nitrogen, phosphorus, and potassium from mineral fertilizer, manure applied, atmospheric deposition, crop removal, and biological fixation over cropland and per unit area of cropland. The flows are aggregated to total inputs and total outputs, from which the overall nutrient balance and nutrient use efficiency on cropland are calculated. Statistics are disseminated in units of tonnes and in kg/ha, as appropriate. Nutrient use efficiency is expressed as a fraction (%).