| 1 |
FALKOWSKI P, SCHOLES R J, BOYLE E, et al.. The global carbon cycle: A test of our knowledge of earth as a system. Science, 2000, 290 (5490): 291- 296.
|
| 2 |
NELLEMANN C, CORCORAN E, DUARTE C, et al. Blue Carbon: The Role of Healthy Oceans in Binding Carbon [M]. Norway: Birkeland Trykkeri AS, 2009: 35-50.
|
| 3 |
任黎华. 桑沟湾筏式养殖长牡蛎及其主要滤食性附着生物固碳功能研究 [D]. 山东 青岛: 中国科学院研究生院(海洋研究所), 2014: 1-38.
|
| 4 |
LESTER S E, DUBEL A K, HERNÁN G, et al.. Spatial planning principles for marine ecosystem restoration. Frontiers in Marine Science, 2020, 7, 328.
|
| 5 |
陈鹭真, 潘良浩, 邱广龙.. 中国滨海蓝碳及其人为活动影响. 广西科学院学报, 2021, 37 (3): 186- 194.
|
| 6 |
RAW J L, VAN NIEKERK L, CHAUKE O, et al.. Blue carbon sinks in South Africa and the need for restoration to enhance carbon sequestration. Science of the Total Environment, 2023, 859, 160142.
|
| 7 |
沈新强, 全为民, 袁骐.. 长江口牡蛎礁恢复及碳汇潜力评估. 农业环境科学学报, 2011, 30 (10): 2119- 2123.
|
| 8 |
奉杰, 张涛, 马培振, 等.. 牡蛎礁碳源–汇功能研究进展与展望. 渔业科学进展, 2022, 43 (5): 115- 125.
|
| 9 |
王桃妮, 张子莲, 全为民.. 牡蛎礁生境: 海岸带可持续发展的潜在碳汇. 生态学报, 2024, 44 (7): 2706- 2716.
|
| 10 |
DAME R F, SPURRIER J D, WOLAVER T G.. Carbon, nitrogen and phosphorus processing by an oyster reef. Marine Ecology Progress Series, 1989, 54 (3): 249- 256.
|
| 11 |
张永雨, 张继红, 梁彦韬, 等.. 中国近海养殖环境碳汇形成过程与机制. 中国科学(地球科学), 2017, 47 (12): 1414- 1424.
|
| 12 |
李娇, 李梦迪, 公丕海, 等.. 海洋牧场渔业碳汇研究进展. 渔业科学进展, 2022, 43 (5): 142- 150.
|
| 13 |
刘慧, 唐启升.. 国际海洋生物碳汇研究进展. 中国水产科学, 2011, 18 (3): 695- 702.
|
| 14 |
公丕海, 李娇, 关长涛, 等.. 莱州湾增殖礁附着牡蛎的固碳量试验与估算. 应用生态学报, 2014, 25 (10): 3032- 3038.
|
| 15 |
胡学东. 国家蓝色碳汇研究报告——国家蓝碳行动可行性研究 [M]. 北京: 中国书籍出版社, 2020: 1-53.
|
| 16 |
张继红, 方建光, 唐启升.. 中国浅海贝藻养殖对海洋碳循环的贡献. 地球科学进展, 2005, 20 (3): 359- 365.
|
| 17 |
TANG Q, ZHANG J, FANG J.. Shellfish and seaweed mariculture increase atmospheric CO2 absorption by coastal ecosystems. Marine Ecology Progress Series, 2011, 424, 97- 104.
|
| 18 |
纪建悦, 王萍萍.. 我国海水养殖业碳汇能力测度及其影响因素分解研究. 海洋环境科学, 2015, 34 (6): 871- 878.
|
| 19 |
李娇, 公丕海, 关长涛, 等.. 人工鱼礁材料添加物碳封存能力及其对褶牡蛎(Ostrea plicatula)固碳量的影响. 渔业科学进展, 2016, 37 (6): 100- 104.
|
| 20 |
张麋鸣, 颜金培, 叶旺旺, 等.. 福建省贝藻类养殖碳汇及其潜力评估. 应用海洋学学报, 2022, 41 (1): 53- 59.
|
| 21 |
陈燕珊, 万萌萌, 林锟, 等.. 渤海湾渔业碳汇分析与预测初探. 海洋科学, 2022, 46 (9): 77- 84.
|
| 22 |
施凯, 肖玉林, 孙春阳, 等.. 海南岛东西近岸典型牡蛎礁总碳库储量及其变化评估. 海洋与湖沼, 2024, 55 (5): 1191- 1200.
|
| 23 |
FODRIE F J, RODRIGUEZ A B, GITTMAN R K, et al.. Oyster reefs as carbon sources and sinks. Proceedings Biological Sciences, 2017, 284 (1859): 20170891.
|
| 24 |
唐启升, 蒋增杰, 毛玉泽.. 渔业碳汇与碳汇渔业定义及其相关问题的辨析. 渔业科学进展, 2022, 43 (5): 1- 7.
|
| 25 |
WARREN C E, DAVIS G E. Laboratory studies on the feeding, bioenergetics and growth of fish [M]// The Biological Basis for Freshwater Fish Production. Oxford: Blackwell Scientific Publication, 1967: 175-214.
|
| 26 |
TUROLLA E, CASTALDELLI G, FANO E A, et al.. Life cycle assessment (LCA) proves that Manila clam farming (Ruditapes philippinarum) is a fully sustainable aquaculture practice and a carbon sink. Sustainability, 2020, 12 (13): 5252.
|
| 27 |
杨林, 郝新亚, 沈春蕾, 等.. 碳中和目标下中国海洋渔业碳汇能力与潜力评估. 资源科学, 2022, 44 (4): 716- 729.
|
| 28 |
BERNARD F R.. Annual biodeposition and gross energy budget of mature Pacific oysters, Crassostrea gigas. Journal of the Fisheries Research Board of Canada, 1974, 31 (2): 185- 190.
|
| 29 |
GILES H, PILDITCH C A.. Effects of diet on sinking rates and erosion thresholds of mussel Perna canaliculus biodeposits. Marine Ecology Progress Series, 2004, 282, 205- 219.
|
| 30 |
宁波上航测绘股份有限公司. 天津市海洋生态保护修复项目牡蛎礁面积测量项目技术报告 [R]. 浙江 宁波: 宁波上航测绘股份有限公司, 2024.
|
| 31 |
国家质量监督检验检疫总局, 中国国家标准化管理委员会. 海洋调查规范 第6部分: 海洋生物调查: GB/T 12763.6—2007 [S]. 北京: 中国标准出版社, 2008: 48-51.
|
| 32 |
杨茜, 孙耀.. IPCC驱动下的林地碳汇估算方法进展. 渔业科学进展, 2013, 34 (1): 38- 43.
|
| 33 |
周毅, 杨红生, 刘石林, 等.. 烟台四十里湾浅海养殖生物及附着生物的化学组成、有机净生产量及其生态效应. 水产学报, 2002, 26 (1): 21- 27.
|
| 34 |
尹钰文, 车鉴, 魏海峰, 等.. 辽宁省2010—2019年海水养殖贝藻类碳汇能力评估. 海洋开发与管理, 2022, 39 (9): 17- 23.
|
| 35 |
崔晨. 祥云湾海洋牧场人工鱼礁区碳汇功能初步研究 [D]. 河北 保定: 河北农业大学, 2020: 14-15.
|
| 36 |
RAHMAN M F, BILLAH M M, KLINE R J, et al.. Effects of elevated temperature on 8-OHdG expression in the American oyster (Crassostrea virginica): Induction of oxidative stress biomarkers, cellular apoptosis, DNA damage and γH2AX signaling pathways. Fish and Shellfish Immunology Reports, 2023, 4, 100079.
|
| 37 |
RAHMAN M S, RAHMAN M S.. Effects of elevated temperature on prooxidant-antioxidant homeostasis and redox status in the American oyster: Signaling pathways of cellular apoptosis during heat stress. Environmental Research, 2021, 196, 110428.
|
| 38 |
JAFARI F, NAEEMI A S, SOHANI M M, et al.. Effect of elevated temperature, sea water acidification, and phenanthrene on the expression of genes involved in the shell and pearl formation of economic pearl oyster (Pinctada radiata). Marine Pollution Bulletin, 2023, 196, 115603.
|
| 39 |
JOUBERT C, LINARD C, LE MOULLAC G, et al.. Temperature and food influence shell growth and mantle gene expression of shell matrix proteins in the pearl oyster Pinctada margaritifera. PLoS One, 2014, 9 (8): e103944.
|