Seeking Solutions to Precarious Working in the Growth of New Zealand Dairy Farming — A Research Agenda

2016 ◽  
pp. 219-241
Author(s):  
Rupert Tipples
2016 ◽  
Vol 78 ◽  
pp. 7-10
Author(s):  
C.W. Holmes

New Zealand dairy farming has lost its competitive edge


In this first edition book, editors Jolly and Jarvis have compiled a range of important, contemporary gifted education topics. Key areas of concern focus on evidence-based practices and research findings from Australia and New Zealand. Other contributors include 14 gifted education experts from leading Australian and New Zealand Universities and organisations. Exploring Gifted Education: Australian and New Zealand Perspectives, introduced by the editors, is well organised. Jolly and Jarvis’s central thesis in their introduction is to acknowledge the disparity between policy, funding and practice in Australia and New Zealand. Specifically, in relation to Australia, they note that a coordinated, national research agenda is absent, despite recommendations published by the Australian Senate Inquiry almost 20 years ago.


2021 ◽  
pp. 100197
Author(s):  
Adrian Fernandez-Perez ◽  
Bart Frijns ◽  
Ilnara Gafiatullina ◽  
Alireza Tourani-Rad

2019 ◽  
Vol 11 (17) ◽  
pp. 4809 ◽  
Author(s):  
Hafiz Muhammad Abrar Ilyas ◽  
Majeed Safa ◽  
Alison Bailey ◽  
Sara Rauf ◽  
Marvin Pangborn

Dairy farming is constantly evolving to more intensive systems of management, which involve more consumption of energy inputs. The consumption of these energy inputs in dairy farming contributes to climate change both with on-farm emissions from the combustion of fossil fuels, and by off-farm emissions due to production of farm inputs (such as fertilizer, feed supplements). The main purpose of this research study was to evaluate energy-related carbon dioxide emissions, the carbon footprint, of pastoral and barn dairy systems located in Canterbury, New Zealand. The carbon footprints were estimated based on direct and indirect energy sources. The study results showed that, on average, the carbon footprints of pastoral and barn dairy systems were 2857 kgCO2 ha−1 and 3379 kgCO2 ha−1, respectively. For the production of one tonne of milk solids, the carbon footprint was 1920 kgCO2 tMS−1 and 2129 kgCO2 tMS−1, respectively. The carbon emission difference between the two systems indicates that the barn system has 18% and 11% higher carbon footprint than the pastoral system, both per hectare of farm area and per tonne of milk solids, respectively. The greater carbon footprint of the barn system was due to more use of imported feed supplements, machinery usage and fossil fuel (diesel and petrol) consumption for on-farm activities.


2017 ◽  
Vol 13 (2) ◽  
Author(s):  
James Gluck ◽  
Michael Macaulay

In November 2015 the Organised Crime and Anti-corruption Legislation Bill was passed by Parliament. An omnibus bill, it amended numerous different acts in relation to (among other things) money laundering, organised crime, corruption and bribery offences. One of its stated aims was to bring New Zealand legislation up to date to enable New Zealand to finally ratify the United Nations Convention against Corruption (UNCAC), which it did in December that year. The merits and potential demerits of the bill have been discussed previously (Macaulay and Gregory, 2015), but one thing that requires further attention is the creation of a new offence of ‘trading in influence’.


2020 ◽  
Vol 60 (1) ◽  
pp. 67
Author(s):  
Ranvir Singh ◽  
David J. Horne

Context Dairy farming will be increasingly scrutinised for its environmental impacts, in particular for its impacts on freshwater quality in New Zealand and elsewhere. Management and mitigation of high nitrate losses is one of the greatest water-quality challenges facing dairy farming in New Zealand and other countries. Management of critical flow pathways and nitrate-attenuation capacity could offer potential solutions to this problem and help maintain dairy-farming productivity, while reducing its water-quality impacts. Aims The present paper reviewed the key water-quality issues faced by dairy farming and assessed potential of emerging edge-of-paddock technologies, and catchment-scale nutrient-attenuation practices, to reduce nitrate losses from dairy farming to receiving water bodies. Methods We developed a conceptual catchment-scale modelling analysis assessing potential natural and built attenuation of nitrate losses from dairy farming in the Tararua and Rangitikei catchments (located in the lower part of the North Island, New Zealand). Key results This exploratory analysis suggests that a reduction of greater than 25% in the river nitrate loads from dairy-farming areas could potentially be achieved by spatially aligning dairy land with areas of high subsurface nitrate-attenuation capacity, and by managing critical flow pathways using innovative edge-of-field technologies such as controlled drainage, drainage-water harvesting for supplemental irrigation, woodchip bioreactors, and constructed wetlands in the study catchments. Conclusions The research findings highlighted the potential to better understand, map and effectively utilise existing natural and new built-in nitrate-attenuation capacity to significantly reduce water-quality impacts from dairy farming across environmentally sensitive agricultural catchments. This knowledge and tools could help farmers close the gap between what can be achieved with current, in-field mitigation practises and the nitrogen-loss allocation imposed by regulatory authorities. Implications However, the research findings presented here are based on a coarse-scale, conceptual modelling analysis, and therefore further research is recommended to develop tools and practices to better understand, map and effectively utilise existing natural and new built-in nitrogen attenuation capacity at farm-scale to achieve productive and environmentally friendly pastoral dairy farming across agricultural landscapes.


2014 ◽  
Vol 63 (1) ◽  
pp. 31-36 ◽  
Author(s):  
JR Webster ◽  
KE Schütz ◽  
MA Sutherland ◽  
M Stewart ◽  
DJ Mellor

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