WATER MOTION, MARINE MACROALGAL PHYSIOLOGY, AND PRODUCTION
Top Cited Papers
- 1 June 2000
- journal article
- review article
- Published by Wiley in Journal of Phycology
- Vol. 36 (3) , 453-472
- https://doi.org/10.1046/j.1529-8817.2000.99139.x
Abstract
Water motion is a key determinant of marine macroalgal production, influencing directly or indirectly physiological rates and community structure. Our understanding of how marine macroalgae interact with their hydrodynamic environment has increased substantially over the past 20 years, due to the application of tools such as flow visualization to aquatic vegetation, and in situ measurements of seawater velocity and turbulence. This review considers how the hydrodynamic environment in which macroalgae grow influences their ability to acquire essential resources and how macroalgae might respond physiologically to fluctuations in their hydrodynamic regime with a focus on: (1) the biochemical processes occurring within the diffusion boundary layer (DBL) that might reduce rates of macroalgal production; (2) time scales over which measurements of velocity and DBL processes should be made, discussing the likelihood of in situ mass transfer limitation; (3) if and how macroalgal morphology influences resource acquisition in slow flows; and (4) ecobiomechanics and how hydrodynamic drag might influence resource acquisition and allocation. Finally, the concept that macroalgal production is enhanced in wave‐exposed versus sheltered habitats is discussed.Keywords
This publication has 187 references indexed in Scilit:
- Effect of canopy biomass and wave exposure on growth inLaminaria hyperborea(Laminariaceae: Phaeophyta)European Journal of Phycology, 1998
- Effects of wave exposure and intraspecific density on the growth and survivorship ofSargassum muticum(Sargassaceae: Phaeophyta)European Journal of Phycology, 1998
- The changing irradiance environment: consequences for marine macrophyte physiology, productivity and ecologyEuropean Journal of Phycology, 1997
- Experimental evidence that Fucus vesiculosus (Phaeophyta) controls filamentous algae by means of the whiplash effectEuropean Journal of Phycology, 1996
- A preliminary evaluation of wave attenuation by four species of seagrassEstuarine, Coastal and Shelf Science, 1992
- Growth rate and carbon affinity ofUlva lactuca under controlled levels of carbon, pH and oxygenMarine Biology, 1990
- Effects of high-frequency light fluctuations on growth and photoacclimation of the red algaChondrus crispusMarine Biology, 1990
- Storm wave induced mortality of giant kelp, Macrocystis pyrifera, in Southern CaliforniaEstuarine, Coastal and Shelf Science, 1989
- Algae on the moveTransactions of the Botanical Society of Edinburgh, 1988
- Hairs, phosphatase activity and environmental chemistry inStigeoclonium, ChaetophoraandDraparnaldia(Chaetophorales)British Phycological Journal, 1987