{"id":{"repo_id":"qu-belfast","oai_identifier":"oai:pure.qub.ac.uk/portal:studenttheses/5e4c54af-868c-46b2-ab71-f631cbd97790"},"canonical_url":"https://search.dev.ndltd.org/etd/qu-belfast/oai:pure.qub.ac.uk/portal:studenttheses/5e4c54af-868c-46b2-ab71-f631cbd97790","repository":{"repo_id":"qu-belfast","name":"Queen's University Belfast","base_url":"https://pureadmin.qub.ac.uk/ws/oai"},"display":{"title":"Soil properties, lime and phosphorus fertiliser management affecting grass production in Ireland","abstract":"<p class=\"MsoNormal\">Phosphorus (P) is a macro nutrient and is an essential element required by grasslands for optimum production and herbage P concentration for animal dietary requirements. However phosphorus is a finite resource and efforts must be made to reduce P needs in grassland to prolong its remaining lifespan. In Ireland current P fertiliser recommendations do not account for soil type differences, but large differences in fertiliser P responses can exist across differing soil types. The use of this one size fits all P fertiliser recommendation system can result in the depletion or over supply of P fertilisers compared to grassland P requirements. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Lime applications to grassland soils have been found to have both significant positive and negative effects on soil P availability over shorter and longer term studies. Given the finite nature of rock P and potential for P fixation with acid cations in the soil there is need for a greater understanding of the effects of lime and soil P interactions under Irish grassland soil conditions. When lime applications strategies are combined with applied P fertilisers this could result in decreased requirement for fertiliser P for grass production by significantly improving P assimilation by the grass plant. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Developing soil specific P fertiliser recommendations is one way of elongating P reserves. The aim of this project was to i) investigate the soil physical and chemical characteristics effecting soil P availability, ii) to determine the fate of chemical and organic P source fertilisers across differing grassland soils and iii) to aid in the development of new soil specific P fertiliser recommendations for Irish grassland farms. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">To achieve these aims a series of experiments were designed and undertaken to evaluate the fate of P fertilisers across a range of the most important agricultural grassland soils in Ireland. A controlled soil - only incubation study was undertaken across 22 grassland soils to investigate the fate of applied P fertilisers (chemical and organic P) with and without lime applications. A simulated grass silage (3 cut) pot study was then conducted across the same range of soils under semi – natural environmental conditions for the development of a model on the effect of P source fertilisers also with and without lime incorporations on soil P and herbage dry matter yield. Finally an intensive simulated grazed grass (9 cut) field plot study across contrasting soil types was undertaken to determine the response to fertiliser P on soil P, herbage dry matter yield and herbage P concentration where trial plots received lime treatments based on previous lime applications. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">The incubation study identified a number of soil physical and chemical properties effecting the change in soil test P from applied P fertilisers. In these mineral grassland soils clay and organic matter had significant negative correlations (P&lt;0.0001) with the change in soil P levels (-0.46 &amp; -0.42). While soil chemical properties aluminium and calcium displayed similar negative correlations with the change in soil test P (r = -0.33 &amp; -0.37). Soil pH correction through lime addition was found to significantly increase soil test P (P&gt;&lt;0.0001) (r = 0.48), while applications of organic P (dairy slurry) to low P and low pH soils showed greater returns in soil test P with 124% fertiliser P replacement value, when compared to chemical P additions in these incubated soils.&gt;&lt;0.0001) with the change in soil P levels (-0.46 &amp; -0.42). While soil chemical properties aluminium and calcium displayed similar negative correlations with the change in soil test P (r = -0.33 &amp; -0.37). Soil pH correction through lime addition was found to significantly increase soil test P (P&lt;0.0001) (r = 0.48), while applications of organic P (dairy slurry) to low P and low pH soils showed greater returns in soil test P with 124% fertiliser P replacement value, when compared to chemical P additions in these incubated soils.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Following on from this the grassland pot study showed a wide range of dry matter yield responses across a range of differing soil types. Predictive models for soil P and herbage dry matter yield were developed from the results of this trial to determine the factors effecting future changes in soil P and in the prediction of herbage dry matter yield. The models developed had a good fit to the data generated for the soil and grassland prediction models (R 2 = 0.76 &amp; 0.71 respectively). Both models identified soil pH as the single biggest factor effecting soil P and herbage dry matter yield (DMY) across these grassland soils. These results indicate that an additional 20kg P ha-1 above current recommendations would be required to maintain soil P levels in these recently reseeded intensively managed mineral grassland soils.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Finally the results of the contrasting grassland field study found that soil pH management is a key determinant for increasing and maintaining soil P availability for optimum grassland production and in meeting herbage P concentrations. This trial found a significant increase in soil P (2.23 mg P L-1 ) from lime applications in the first year after lime application. It also found that P fertiliser applications ≥40 kg P ha-1 were required to meet herbage P concentration targets (3.5 mg P kg-1 ) and that lime applications in conjunction with adequate P fertiliser was necessary to sustain high DMY in the longer term.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">This project and its findings will further develop our knowledge on soil P, herbage P and herbage DMY for the future development of soil specific P fertiliser recommendations in Irish grassland soils.</p>","abstract_html":"&lt;p class=&quot;MsoNormal&quot;&gt;Phosphorus (P) is a macro nutrient and is an essential element required by grasslands for optimum production and herbage P concentration for animal dietary requirements. However phosphorus is a finite resource and efforts must be made to reduce P needs in grassland to prolong its remaining lifespan. In Ireland current P fertiliser recommendations do not account for soil type differences, but large differences in fertiliser P responses can exist across differing soil types. The use of this one size fits all P fertiliser recommendation system can result in the depletion or over supply of P fertilisers compared to grassland P requirements. &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt; &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt;Lime applications to grassland soils have been found to have both significant positive and negative effects on soil P availability over shorter and longer term studies. Given the finite nature of rock P and potential for P fixation with acid cations in the soil there is need for a greater understanding of the effects of lime and soil P interactions under Irish grassland soil conditions. When lime applications strategies are combined with applied P fertilisers this could result in decreased requirement for fertiliser P for grass production by significantly improving P assimilation by the grass plant. &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt; &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt;Developing soil specific P fertiliser recommendations is one way of elongating P reserves. The aim of this project was to i) investigate the soil physical and chemical characteristics effecting soil P availability, ii) to determine the fate of chemical and organic P source fertilisers across differing grassland soils and iii) to aid in the development of new soil specific P fertiliser recommendations for Irish grassland farms. &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt; &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt;To achieve these aims a series of experiments were designed and undertaken to evaluate the fate of P fertilisers across a range of the most important agricultural grassland soils in Ireland. A controlled soil - only incubation study was undertaken across 22 grassland soils to investigate the fate of applied P fertilisers (chemical and organic P) with and without lime applications. A simulated grass silage (3 cut) pot study was then conducted across the same range of soils under semi – natural environmental conditions for the development of a model on the effect of P source fertilisers also with and without lime incorporations on soil P and herbage dry matter yield. Finally an intensive simulated grazed grass (9 cut) field plot study across contrasting soil types was undertaken to determine the response to fertiliser P on soil P, herbage dry matter yield and herbage P concentration where trial plots received lime treatments based on previous lime applications. &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt; &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt;The incubation study identified a number of soil physical and chemical properties effecting the change in soil test P from applied P fertilisers. In these mineral grassland soils clay and organic matter had significant negative correlations (P&amp;lt;0.0001) with the change in soil P levels (-0.46 &amp;amp; -0.42). While soil chemical properties aluminium and calcium displayed similar negative correlations with the change in soil test P (r = -0.33 &amp;amp; -0.37). Soil pH correction through lime addition was found to significantly increase soil test P (P&amp;gt;&amp;lt;0.0001) (r = 0.48), while applications of organic P (dairy slurry) to low P and low pH soils showed greater returns in soil test P with 124% fertiliser P replacement value, when compared to chemical P additions in these incubated soils.&amp;gt;&amp;lt;0.0001) with the change in soil P levels (-0.46 &amp;amp; -0.42). While soil chemical properties aluminium and calcium displayed similar negative correlations with the change in soil test P (r = -0.33 &amp;amp; -0.37). Soil pH correction through lime addition was found to significantly increase soil test P (P&amp;lt;0.0001) (r = 0.48), while applications of organic P (dairy slurry) to low P and low pH soils showed greater returns in soil test P with 124% fertiliser P replacement value, when compared to chemical P additions in these incubated soils.&lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt; &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt;Following on from this the grassland pot study showed a wide range of dry matter yield responses across a range of differing soil types. Predictive models for soil P and herbage dry matter yield were developed from the results of this trial to determine the factors effecting future changes in soil P and in the prediction of herbage dry matter yield. The models developed had a good fit to the data generated for the soil and grassland prediction models (R 2 = 0.76 &amp;amp; 0.71 respectively). Both models identified soil pH as the single biggest factor effecting soil P and herbage dry matter yield (DMY) across these grassland soils. These results indicate that an additional 20kg P ha-1 above current recommendations would be required to maintain soil P levels in these recently reseeded intensively managed mineral grassland soils.&lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt; &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt;Finally the results of the contrasting grassland field study found that soil pH management is a key determinant for increasing and maintaining soil P availability for optimum grassland production and in meeting herbage P concentrations. This trial found a significant increase in soil P (2.23 mg P L-1 ) from lime applications in the first year after lime application. It also found that P fertiliser applications ≥40 kg P ha-1 were required to meet herbage P concentration targets (3.5 mg P kg-1 ) and that lime applications in conjunction with adequate P fertiliser was necessary to sustain high DMY in the longer term.&lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt; &lt;/p&gt; &lt;p class=&quot;MsoNormal&quot;&gt;This project and its findings will further develop our knowledge on soil P, herbage P and herbage DMY for the future development of soil specific P fertiliser recommendations in Irish grassland soils.&lt;/p&gt;","abstract_has_math":false,"creators":["Fox, Ian"],"institution":"Queen's University Belfast","degree_name":"Doctor of Philosophy","degree_level":"Doctoral Thesis","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Wall, David","Bailey, John"],"committee_chairs":[],"committee_members":[],"year":2020,"date_issued":"2020-12","date_published":"2020-12","updated_at":"2026-07-24T03:55:31Z","subjects":["lime","Phosphorus","fertiliser use efficiency","soil fertility","soil nutrient availability","grassland production","herbage p concentration"],"languages":["eng"],"rights":[],"rights_urls":[],"identifier_entries":[{"key":"dc:identifier","label":"Identifier","values":["oai:pure.qub.ac.uk/portal:studenttheses/5e4c54af-868c-46b2-ab71-f631cbd97790"],"render_values":[{"text":"oai:pure.qub.ac.uk/portal:studenttheses/5e4c54af-868c-46b2-ab71-f631cbd97790","href":null,"code":true}]}]},"links":{"outbound_url":"https://pure.qub.ac.uk/en/studentTheses/5e4c54af-868c-46b2-ab71-f631cbd97790","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Wall, David","Bailey, John"]},{"key":"dc:contributor.sponsor","label":"Sponsor","values":["Queen's University Belfast","Teagasc - Irish Agriculture and Food Development Authority"]},{"key":"dc:creator","label":"Author","values":["Fox, Ian"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2020-12"]},{"key":"dc:date.issued","label":"Date","values":["2020-12"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["School of Biological Sciences"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["Queen's University Belfast"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://pure.qub.ac.uk/en/studentTheses/5e4c54af-868c-46b2-ab71-f631cbd97790"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["Doctoral Thesis"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Doctor of Philosophy"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["lime","Phosphorus","fertiliser use efficiency","soil fertility","soil nutrient availability","grassland production","herbage p concentration"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["eng"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["oai:pure.qub.ac.uk/portal:studenttheses/5e4c54af-868c-46b2-ab71-f631cbd97790","https://pure.qub.ac.uk/en/studentTheses/5e4c54af-868c-46b2-ab71-f631cbd97790"]},{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://pure.qub.ac.uk/files/218165328/Thesis_Final_with_Thesis_Deposit_Form_22.09.2020.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p class=\"MsoNormal\">Phosphorus (P) is a macro nutrient and is an essential element required by grasslands for optimum production and herbage P concentration for animal dietary requirements. However phosphorus is a finite resource and efforts must be made to reduce P needs in grassland to prolong its remaining lifespan. In Ireland current P fertiliser recommendations do not account for soil type differences, but large differences in fertiliser P responses can exist across differing soil types. The use of this one size fits all P fertiliser recommendation system can result in the depletion or over supply of P fertilisers compared to grassland P requirements. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Lime applications to grassland soils have been found to have both significant positive and negative effects on soil P availability over shorter and longer term studies. Given the finite nature of rock P and potential for P fixation with acid cations in the soil there is need for a greater understanding of the effects of lime and soil P interactions under Irish grassland soil conditions. When lime applications strategies are combined with applied P fertilisers this could result in decreased requirement for fertiliser P for grass production by significantly improving P assimilation by the grass plant. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Developing soil specific P fertiliser recommendations is one way of elongating P reserves. The aim of this project was to i) investigate the soil physical and chemical characteristics effecting soil P availability, ii) to determine the fate of chemical and organic P source fertilisers across differing grassland soils and iii) to aid in the development of new soil specific P fertiliser recommendations for Irish grassland farms. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">To achieve these aims a series of experiments were designed and undertaken to evaluate the fate of P fertilisers across a range of the most important agricultural grassland soils in Ireland. A controlled soil - only incubation study was undertaken across 22 grassland soils to investigate the fate of applied P fertilisers (chemical and organic P) with and without lime applications. A simulated grass silage (3 cut) pot study was then conducted across the same range of soils under semi – natural environmental conditions for the development of a model on the effect of P source fertilisers also with and without lime incorporations on soil P and herbage dry matter yield. Finally an intensive simulated grazed grass (9 cut) field plot study across contrasting soil types was undertaken to determine the response to fertiliser P on soil P, herbage dry matter yield and herbage P concentration where trial plots received lime treatments based on previous lime applications. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">The incubation study identified a number of soil physical and chemical properties effecting the change in soil test P from applied P fertilisers. In these mineral grassland soils clay and organic matter had significant negative correlations (P&lt;0.0001) with the change in soil P levels (-0.46 &amp; -0.42). While soil chemical properties aluminium and calcium displayed similar negative correlations with the change in soil test P (r = -0.33 &amp; -0.37). Soil pH correction through lime addition was found to significantly increase soil test P (P&gt;&lt;0.0001) (r = 0.48), while applications of organic P (dairy slurry) to low P and low pH soils showed greater returns in soil test P with 124% fertiliser P replacement value, when compared to chemical P additions in these incubated soils.&gt;&lt;0.0001) with the change in soil P levels (-0.46 &amp; -0.42). While soil chemical properties aluminium and calcium displayed similar negative correlations with the change in soil test P (r = -0.33 &amp; -0.37). Soil pH correction through lime addition was found to significantly increase soil test P (P&lt;0.0001) (r = 0.48), while applications of organic P (dairy slurry) to low P and low pH soils showed greater returns in soil test P with 124% fertiliser P replacement value, when compared to chemical P additions in these incubated soils.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Following on from this the grassland pot study showed a wide range of dry matter yield responses across a range of differing soil types. Predictive models for soil P and herbage dry matter yield were developed from the results of this trial to determine the factors effecting future changes in soil P and in the prediction of herbage dry matter yield. The models developed had a good fit to the data generated for the soil and grassland prediction models (R 2 = 0.76 &amp; 0.71 respectively). Both models identified soil pH as the single biggest factor effecting soil P and herbage dry matter yield (DMY) across these grassland soils. These results indicate that an additional 20kg P ha-1 above current recommendations would be required to maintain soil P levels in these recently reseeded intensively managed mineral grassland soils.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Finally the results of the contrasting grassland field study found that soil pH management is a key determinant for increasing and maintaining soil P availability for optimum grassland production and in meeting herbage P concentrations. This trial found a significant increase in soil P (2.23 mg P L-1 ) from lime applications in the first year after lime application. It also found that P fertiliser applications ≥40 kg P ha-1 were required to meet herbage P concentration targets (3.5 mg P kg-1 ) and that lime applications in conjunction with adequate P fertiliser was necessary to sustain high DMY in the longer term.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">This project and its findings will further develop our knowledge on soil P, herbage P and herbage DMY for the future development of soil specific P fertiliser recommendations in Irish grassland soils.</p>"]},{"key":"dc:title","label":"Title","values":["Soil properties, lime and phosphorus fertiliser management affecting grass production in Ireland"]}]}],"canonical_facts":{"dc:contributor.advisor":["Wall, David","Bailey, John"],"dc:contributor.sponsor":["Queen's University Belfast","Teagasc - Irish Agriculture and Food Development Authority"],"dc:creator":["Fox, Ian"],"dc:date":["2020-12"],"dc:date.issued":["2020-12"],"dc:description.abstract":["<p class=\"MsoNormal\">Phosphorus (P) is a macro nutrient and is an essential element required by grasslands for optimum production and herbage P concentration for animal dietary requirements. However phosphorus is a finite resource and efforts must be made to reduce P needs in grassland to prolong its remaining lifespan. In Ireland current P fertiliser recommendations do not account for soil type differences, but large differences in fertiliser P responses can exist across differing soil types. The use of this one size fits all P fertiliser recommendation system can result in the depletion or over supply of P fertilisers compared to grassland P requirements. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Lime applications to grassland soils have been found to have both significant positive and negative effects on soil P availability over shorter and longer term studies. Given the finite nature of rock P and potential for P fixation with acid cations in the soil there is need for a greater understanding of the effects of lime and soil P interactions under Irish grassland soil conditions. When lime applications strategies are combined with applied P fertilisers this could result in decreased requirement for fertiliser P for grass production by significantly improving P assimilation by the grass plant. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Developing soil specific P fertiliser recommendations is one way of elongating P reserves. The aim of this project was to i) investigate the soil physical and chemical characteristics effecting soil P availability, ii) to determine the fate of chemical and organic P source fertilisers across differing grassland soils and iii) to aid in the development of new soil specific P fertiliser recommendations for Irish grassland farms. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">To achieve these aims a series of experiments were designed and undertaken to evaluate the fate of P fertilisers across a range of the most important agricultural grassland soils in Ireland. A controlled soil - only incubation study was undertaken across 22 grassland soils to investigate the fate of applied P fertilisers (chemical and organic P) with and without lime applications. A simulated grass silage (3 cut) pot study was then conducted across the same range of soils under semi – natural environmental conditions for the development of a model on the effect of P source fertilisers also with and without lime incorporations on soil P and herbage dry matter yield. Finally an intensive simulated grazed grass (9 cut) field plot study across contrasting soil types was undertaken to determine the response to fertiliser P on soil P, herbage dry matter yield and herbage P concentration where trial plots received lime treatments based on previous lime applications. </p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">The incubation study identified a number of soil physical and chemical properties effecting the change in soil test P from applied P fertilisers. In these mineral grassland soils clay and organic matter had significant negative correlations (P&lt;0.0001) with the change in soil P levels (-0.46 &amp; -0.42). While soil chemical properties aluminium and calcium displayed similar negative correlations with the change in soil test P (r = -0.33 &amp; -0.37). Soil pH correction through lime addition was found to significantly increase soil test P (P&gt;&lt;0.0001) (r = 0.48), while applications of organic P (dairy slurry) to low P and low pH soils showed greater returns in soil test P with 124% fertiliser P replacement value, when compared to chemical P additions in these incubated soils.&gt;&lt;0.0001) with the change in soil P levels (-0.46 &amp; -0.42). While soil chemical properties aluminium and calcium displayed similar negative correlations with the change in soil test P (r = -0.33 &amp; -0.37). Soil pH correction through lime addition was found to significantly increase soil test P (P&lt;0.0001) (r = 0.48), while applications of organic P (dairy slurry) to low P and low pH soils showed greater returns in soil test P with 124% fertiliser P replacement value, when compared to chemical P additions in these incubated soils.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Following on from this the grassland pot study showed a wide range of dry matter yield responses across a range of differing soil types. Predictive models for soil P and herbage dry matter yield were developed from the results of this trial to determine the factors effecting future changes in soil P and in the prediction of herbage dry matter yield. The models developed had a good fit to the data generated for the soil and grassland prediction models (R 2 = 0.76 &amp; 0.71 respectively). Both models identified soil pH as the single biggest factor effecting soil P and herbage dry matter yield (DMY) across these grassland soils. These results indicate that an additional 20kg P ha-1 above current recommendations would be required to maintain soil P levels in these recently reseeded intensively managed mineral grassland soils.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">Finally the results of the contrasting grassland field study found that soil pH management is a key determinant for increasing and maintaining soil P availability for optimum grassland production and in meeting herbage P concentrations. This trial found a significant increase in soil P (2.23 mg P L-1 ) from lime applications in the first year after lime application. It also found that P fertiliser applications ≥40 kg P ha-1 were required to meet herbage P concentration targets (3.5 mg P kg-1 ) and that lime applications in conjunction with adequate P fertiliser was necessary to sustain high DMY in the longer term.</p> <p class=\"MsoNormal\"> </p> <p class=\"MsoNormal\">This project and its findings will further develop our knowledge on soil P, herbage P and herbage DMY for the future development of soil specific P fertiliser recommendations in Irish grassland soils.</p>"],"dc:identifier":["oai:pure.qub.ac.uk/portal:studenttheses/5e4c54af-868c-46b2-ab71-f631cbd97790","https://pure.qub.ac.uk/en/studentTheses/5e4c54af-868c-46b2-ab71-f631cbd97790"],"dc:identifier.uri":["https://pure.qub.ac.uk/files/218165328/Thesis_Final_with_Thesis_Deposit_Form_22.09.2020.pdf"],"dc:language":["eng"],"dc:publisher.department":["School of Biological Sciences"],"dc:publisher.institution":["Queen's University Belfast"],"dc:relation.isreferencedby":["https://pure.qub.ac.uk/en/studentTheses/5e4c54af-868c-46b2-ab71-f631cbd97790"],"dc:subject":["lime","Phosphorus","fertiliser use efficiency","soil fertility","soil nutrient availability","grassland production","herbage p concentration"],"dc:title":["Soil properties, lime and phosphorus fertiliser management affecting grass production in Ireland"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["Doctoral Thesis"],"dc:type.qualificationname":["Doctor of Philosophy"]},"updated_at":"2026-07-24T03:55:31Z"}