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  <rdf:Description rdf:about="https://doi.org/10.2136/sssaj1995.03615995005900050022x">
    <dct:isReferencedBy>IMPACT4SOIL</dct:isReferencedBy>
    <dct:isReferencedBy>OpenAire</dct:isReferencedBy>
    <dct:isReferencedBy>Crossref</dct:isReferencedBy>
    <dct:isReferencedBy>Microsoft Academic Graph</dct:isReferencedBy>
    <dct:isPartOf>Soil Science Society of America Journal</dct:isPartOf>
    <dct:license>Closed Access</dct:license>
    <dct:created>2010-07-27</dct:created>
    <dc:description>Abstract&lt;p&gt;Long&#65506;&#65408;&#65424;term N fertilization affects soil organic N reserves, N mineralization potential, and crop response to applied N, but little information is available on the influence of short&#65506;&#65408;&#65424;term N fertilizer (STN) management on soil organic N availability and crop response. This study was conducted to determine if STN changes soil N supplying capability to corn (Zea mays L.) after 3 yr of differential N fertilization on a Fayette silt loam soil (fine&#65506;&#65408;&#65424;silty, mixed, mesic Typic Hapludalf) in Wisconsin. Various rates of N fertilizer (0&#65506;&#65408;&#65427;402 kg N ha&#65506;&#65416;&#65426;1) were applied to corn in 1983, 1984, and 1985, and their residual effects on corn response were evaluated in 1986. Soil profile No3&#65506;&#65408;&#65424;N levels in spring 1986 were very low in all plots (48 &#65474;&#65457; 4 kg ha&#65506;&#65416;&#65426;1 [90 cm]&#65506;&#65416;&#65426;1), yet grain yields and N uptake were significantly increased by STN applications. Corn N uptake was linearly related to the total amount of N returned to soil in crop residues during the previous 3 yr. Increased organic N availability under high STN management was equivalent to a 78 kg N ha&#65506;&#65416;&#65426;1 rate, or 47% of the N fertilizer required for optimum crop yields. In aerobic incubations (40 wk) of spring 1986 soil (0&#65506;&#65408;&#65427;30 cm), STN additions increased N release only in the first few weeks. Kinetics of N mineralization were best described by a two&#65506;&#65408;&#65424;component model in which the active fraction (NA) of soil organic N was highly correlated with corn N uptake (r = 0.88). Simulation of field conditions showed that 95% of NA is available before crop maturity. A phosphate&#65506;&#65408;&#65424;borate buffer organic N availability index was significantly and consistently related to STN treatments. Relative increases in total soil organic N corresponded with the 3&#65506;&#65408;&#65424;yr N balance between fertilizer additions and grain removals, and were about 10 times larger than mineralizable N. These results indicate that immobilization of excess mineral N into stable soil organic N during decomposition of crop residues should be considered in determining the environmental risk of N fertilization. Although labile organic N is a small fraction of the total fertilizer N contribution to soil N, its quantification should allow a more accurate assessment of crop N needs.&lt;/p&gt;</dc:description>
    <dc:subject>2. Zero hunger</dc:subject>
    <dc:subject>0401 agriculture, forestry, and fisheries</dc:subject>
    <dc:subject>04 agricultural and veterinary sciences</dc:subject>
    <dc:subject>15. Life on land</dc:subject>
    <dc:subject>6. Clean water</dc:subject>
    <dc:creator rdf:resource="https://orcid.org/0000-0002-3128-4101"/>
    <dc:creator>Matias B. Vanotti, Larry G. Bundy, S. A. Leclerc, </dc:creator>
    <dc:date>1995-09-01</dc:date>
    <dc:type>journalpaper</dc:type>
    <dct:abstract>Abstract&lt;p&gt;Long&#65506;&#65408;&#65424;term N fertilization affects soil organic N reserves, N mineralization potential, and crop response to applied N, but little information is available on the influence of short&#65506;&#65408;&#65424;term N fertilizer (STN) management on soil organic N availability and crop response. This study was conducted to determine if STN changes soil N supplying capability to corn (Zea mays L.) after 3 yr of differential N fertilization on a Fayette silt loam soil (fine&#65506;&#65408;&#65424;silty, mixed, mesic Typic Hapludalf) in Wisconsin. Various rates of N fertilizer (0&#65506;&#65408;&#65427;402 kg N ha&#65506;&#65416;&#65426;1) were applied to corn in 1983, 1984, and 1985, and their residual effects on corn response were evaluated in 1986. Soil profile No3&#65506;&#65408;&#65424;N levels in spring 1986 were very low in all plots (48 &#65474;&#65457; 4 kg ha&#65506;&#65416;&#65426;1 [90 cm]&#65506;&#65416;&#65426;1), yet grain yields and N uptake were significantly increased by STN applications. Corn N uptake was linearly related to the total amount of N returned to soil in crop residues during the previous 3 yr. Increased organic N availability under high STN management was equivalent to a 78 kg N ha&#65506;&#65416;&#65426;1 rate, or 47% of the N fertilizer required for optimum crop yields. In aerobic incubations (40 wk) of spring 1986 soil (0&#65506;&#65408;&#65427;30 cm), STN additions increased N release only in the first few weeks. Kinetics of N mineralization were best described by a two&#65506;&#65408;&#65424;component model in which the active fraction (NA) of soil organic N was highly correlated with corn N uptake (r = 0.88). Simulation of field conditions showed that 95% of NA is available before crop maturity. A phosphate&#65506;&#65408;&#65424;borate buffer organic N availability index was significantly and consistently related to STN treatments. Relative increases in total soil organic N corresponded with the 3&#65506;&#65408;&#65424;yr N balance between fertilizer additions and grain removals, and were about 10 times larger than mineralizable N. These results indicate that immobilization of excess mineral N into stable soil organic N during decomposition of crop residues should be considered in determining the environmental risk of N fertilization. Although labile organic N is a small fraction of the total fertilizer N contribution to soil N, its quantification should allow a more accurate assessment of crop N needs.&lt;/p&gt;</dct:abstract>
    <dc:title/>
    <dc:identifier>10.2136/sssaj1995.03615995005900050022x</dc:identifier>
    <dct:references>https://doi.org/10.2136/sssaj1995.03615995005900050022x</dct:references>
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