A novel optical sensor designed to measure methane bubble sizes in situ

被引:20
作者
Delwiche, Kyle [1 ]
Senft-Grupp, Schuyler [1 ]
Hemond, Harold [1 ]
机构
[1] MIT, Civil & Environm Engn, 77 Massachusetts Ave, Cambridge, MA 02139 USA
基金
美国国家科学基金会;
关键词
LAKE; EBULLITION; EMISSIONS; TRANSPORT; FLUXES;
D O I
10.1002/lom3.10060
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
This work presents a novel design for an optical bubble size sensor that is rugged, economical to build, and capable of accurately measuring methane bubble sizes in aquatic environments over long deployment periods. The sensor intercepts rising gas bubbles, elongates them in a thin glass tube, and routes elongated bubbles past an optical detector. The optical detector records information on bubble rise velocity and travel time, which can be combined with the flow path geometry to calculate bubble volume at flow rates up to 3 bubbles/second. The sensor circuitry is powered by 6-V C alkaline battery packs and is cased in a waterproof housing built from commercially available PVC pipe fittings. Laboratory testing indicates the sensor can accurately measure bubble volumes up to 1 mL in volume. We deployed the sensor in a lake with a history of methane ebullition and gathered data on bubble size distributions (most bubbles were between 0.025 mL and 0.2 mL) as well as the precise timing of bubbling events. The sensor also includes an optional gas collection system to allow for bulk gas sampling.
引用
收藏
页码:712 / 721
页数:10
相关论文
共 26 条
[11]   Correlation of shape and size of methane bubbles in fine-grained muddy aquatic sediments with sediment fracture toughness [J].
Katsman, Regina .
JOURNAL OF STRUCTURAL GEOLOGY, 2015, 70 :56-64
[12]   Acoustic monitoring of gas emissions from the seafloor. Part I: quantifying the volumetric flow of bubbles [J].
Leblond, Isabelle ;
Scalabrin, Carla ;
Berger, Laurent .
MARINE GEOPHYSICAL RESEARCH, 2014, 35 (03) :191-210
[13]   The bubble mechanism for methane transport from the shallow sea bed to the surface: A review and sensitivity study [J].
Leifer, I ;
Patro, RK .
CONTINENTAL SHELF RESEARCH, 2002, 22 (16) :2409-2428
[14]   Sediment Trapping by Dams Creates Methane Emission Hot Spots [J].
Maeck, Andreas ;
DelSontro, Tonya ;
McGinnis, Daniel F. ;
Fischer, Helmut ;
Flury, Sabine ;
Schmidt, Mark ;
Fietzek, Peer ;
Lorke, Andreas .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2013, 47 (15) :8130-8137
[15]   Fate of rising methane bubbles in stratified waters:: How much methane reaches the atmosphere? [J].
McGinnis, D. F. ;
Greinert, J. ;
Artemov, Y. ;
Beaubien, S. E. ;
Wuest, A. .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2006, 111 (C9)
[16]   Quantifying gas ebullition with echosounder: the role of methane transport by bubbles in a medium-sized lake [J].
Ostrovsky, I. ;
McGinnis, D. F. ;
Lapidus, L. ;
Eckert, W. .
LIMNOLOGY AND OCEANOGRAPHY-METHODS, 2008, 6 :105-118
[17]   Methane bubbles in Lake Kinneret: Quantification and temporal and spatial heterogeneity [J].
Ostrovsky, I .
LIMNOLOGY AND OCEANOGRAPHY, 2003, 48 (03) :1030-1036
[18]   Behavior of methane seep bubbles over a pockmark on the Cascadia continental margin [J].
Salmi, Marie S. ;
Johnson, H. Paul ;
Leifer, Ira ;
Keister, Julie E. .
GEOSPHERE, 2011, 7 (06) :1273-1283
[19]   A conduit dilation model of methane venting from lake sediments [J].
Scandella, Benjamin P. ;
Varadharajan, Charuleka ;
Hemond, Harold F. ;
Ruppel, Carolyn ;
Juanes, Ruben .
GEOPHYSICAL RESEARCH LETTERS, 2011, 38
[20]  
St Louis VL, 2000, BIOSCIENCE, V50, P766, DOI 10.1641/0006-3568(2000)050[0766:RSASOG]2.0.CO