Comparison of a laser methane detector with the GreenFeed and two breath analysers for on-farm measurements of methane emissions from dairy cows

被引:38
作者
Sorg, Diana [1 ,7 ]
Difford, Gareth F. [2 ,3 ]
Muehlbach, Sarah [1 ]
Kuhla, Bjoern [4 ]
Swalve, Hermann H. [1 ]
Lassen, Jan [2 ,6 ]
Strabel, Tomasz [5 ]
Pszczola, Marcin [5 ]
机构
[1] Martin Luther Univ Halle Wittenberg, Inst Agr & Nutr Sci, Anim Breeding, Theodor Lieser Str 11, D-06120 Halle, Germany
[2] Aarhus Univ, Dept Mol Biol & Genet, Ctr Quantitat Genet & Genom, Blichers Alle 20, DK-8830 Tjele, Denmark
[3] Wageningen Univ, Anim Breeding & Genom Ctr, POB 338, NL-6700 AH Wageningen, Netherlands
[4] Leibniz Inst Farm Anim Biol FBN, Inst Nutr Physiol Oskar Kellner, Wilhelm Stahl Allee 2, D-18196 Dummerstorf, Germany
[5] Poznan Univ Life Sci, Dept Genet & Anim Breeding, Wolynska 33, PL-60637 Poznan, Poland
[6] Viking Genet, Ebeltoftvej 16, DK-8960 Randers SO, Denmark
[7] German Environm Agcy Umweltbundesamt, Worlitzer Pl 1, D-06844 Dessau Rosslau, Germany
关键词
Laser methane detector; GreenFeed; Sniffer; Methane emission; CONCORDANCE CORRELATION-COEFFICIENT; HEXAFLUORIDE TRACER TECHNIQUE; ENTERIC METHANE; RESPIRATION CHAMBERS; GENETIC CORRELATION; SAMPLING VARIANCE; AGREEMENT; SYSTEM; ACCURACY; ANIMALS;
D O I
10.1016/j.compag.2018.08.024
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
To measure methane (CH4) emissions from cattle on-farm, a number of methods have been developed. Combining measurements made with different methods in one data set could lead to an increased power of further analyses. Before combining the measurements, their agreement must be evaluated. We analysed data obtained with a handheld laser methane detector (LMD) and the GreenFeed system (GF), as well as data obtained with LMD and Fourier Transformed Infrared (FTIR) and Non-dispersive Infrared (NDIR) breath analysers (sniffers) installed in the feed bin of automatic milking systems. These devices record short-term breath CH4 concentrations from cows and make it possible to estimate daily CH4 production in g/d which is used for national CH4 emission inventories and genetic studies. The CH4 is released by cows during eructation and breathing events, resulting in peaks of CH4 concentrations during a measurement which represent the respiratory cycle. For LMD, the average CH4 concentration of all peaks during the measurement (P_MEAN in ppm x meter) was compared with the average daily CH4 production (g/d) measured by GF on 11 cows. The comparison showed a low concordance correlation coefficient (CCC; 0.02) and coefficient of individual agreement (CIA; 0.06) between the methods. The repeated measures correlation (r(p)) of LMD and GF, which can be seen as a proxy for the genetic correlation, was, however, relatively strong (0.66). Next, based on GF, a prediction equation for estimating CH4 in g/d (LMD_cal) using LMD measurements was developed. LMD cal showed an improved agreement with GF (CCC = 0.22, CIA = 0.99, r(p) = 0.74). This prediction equation was used to compare repeated LMD measurements (LMD_val in g/d) with CH4 (g/d) measured with FTIR (n = 34 cows; Data Set A) or NDIR (n = 39 cows; Data Set B) sniffer. A low CCC (A: 0.28; B: 0.17), high CIA (A: 0.91; B: 0.87) and strong r(p) (A: 0.57; B: 0.60) indicated that there was some agreement and a minimal re-ranking of the cows between sniffer and LMD. Possible sources of disagreement were cow activity (LMD: standing idle; sniffer: eating and being milked) and the larger influence of wind speed on LMD measurement. The LMD measurement was less repeatable (0.14-0.27) than the other techniques studied (0.47-0.77). Nevertheless, GF, LMD and the sniffers ranked the cows similarly. The LMD, due to its portability and flexibility, could be used to study CH4 emissions on herd or group level, as a validation tool, or to strengthen estimates of genetic relationships between small-scale research populations.
引用
收藏
页码:285 / 294
页数:10
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