The effect of gravity on surface temperatures of plant leaves. 2003

Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
Graduate School of Agriculture and Biological Sciences, Osaka Prefecture University, Gakuen-cho, Sakai, Osaka, Japan. kitaya@envi.osakafu-u.ac.jp

A fundamental study was conducted to develop a facility having an adequate air circulation system for growing healthy plants over a long-term under microgravity conditions in space. To clarify the effects of gravity on heat exchange between plant leaves and the ambient air, surface temperatures of sweet potato and barley leaves and replica leaves made of wet paper and copper were evaluated at gravity levels of 0.01, 1.0, 1.5 and 2.0 g for 20 s each during parabolic aeroplane flights. Thermal images were captured using infrared thermography at an air temperature of 26 degrees C, a relative humidity of 18% and an irradiance of 260 W m-2. Mean leaf temperatures increased by 0.9-1.0 degrees C with decreasing gravity levels from 1.0 to 0.01 g and decreased by 0.5 degrees C with increasing gravity levels from 1.0 to 2.0 g. The increase in leaf temperatures was at most 1.9 degrees C for sweet potato leaves over 20 s as gravity decreased from 1.0 to 0.01 g. The boundary layer conductance to sensible heat exchange decreased by 5% when the gravity decreased from 1.0 to 0.01 g at the air velocity of 0.2 m s-1. The decrease in the boundary layer conductance with decrease in the gravity levels was more significant in a lower air velocity. Heat exchange between leaves and the ambient air was more retarded at lower gravity levels because of less sensible and latent heat transfers with less heat convection.

UI MeSH Term Description Entries
D004780 Environment, Controlled A state in which the environs of hospitals, laboratories, domestic and animal housing, work places, spacecraft, and other surroundings are under technological control with regard to air conditioning, heating, lighting, humidity, ventilation, and other ambient features. The concept includes control of atmospheric composition. (From Jane's Aerospace Dictionary, 3d ed) Clean Rooms,Laminar Air-Flow Areas,Controlled Environment,Area, Laminar Air-Flow,Clean Room,Controlled Environments,Environments, Controlled,Laminar Air Flow Areas,Laminar Air-Flow Area,Room, Clean
D006112 Gravitation Acceleration produced by the mutual attraction of two masses, and of magnitude inversely proportional to the square of the distance between the two centers of mass. It is also the force imparted by the earth, moon, or a planet to an object near its surface. (From NASA Thesaurus, 1988) G Force,Gravistimulation,Gravity,Force, G,G Forces,Gravities
D000389 Air Conditioning The maintenance of certain aspects of the environment within a defined space to facilitate the function of that space; aspects controlled include air temperature and motion, radiant heat level, moisture, and concentration of pollutants such as dust, microorganisms, and gases. (McGraw-Hill Dictionary of Scientific and Technical Terms, 4th ed) Air Revitalization,Climate Control,Air Conditionings,Air Revitalizations,Climate Controls,Conditioning, Air,Conditionings, Air,Control, Climate,Controls, Climate,Revitalization, Air,Revitalizations, Air
D001467 Hordeum A plant genus of the family POACEAE. The EDIBLE GRAIN, barley, is widely used as food. Barley,Hordeum vulgare
D013026 Space Flight Travel beyond the earth's atmosphere. Space Exploration,Space Travel,Spaceflight,Exploration, Space,Explorations, Space,Flight, Space,Flights, Space,Space Explorations,Space Flights,Space Travels,Spaceflights,Travel, Space,Travels, Space
D013696 Temperature The property of objects that determines the direction of heat flow when they are placed in direct thermal contact. The temperature is the energy of microscopic motions (vibrational and translational) of the particles of atoms. Temperatures
D013817 Thermography Imaging the temperatures in a material, or in the body or an organ. Imaging is based on self-emanating infrared radiation (HEAT WAVES), or on changes in properties of the material or tissue that vary with temperature, such as ELASTICITY; MAGNETIC FIELD; or LUMINESCENCE. Temperature Mapping,Mapping, Temperature,Mappings, Temperature,Temperature Mappings
D013997 Time Factors Elements of limited time intervals, contributing to particular results or situations. Time Series,Factor, Time,Time Factor
D014893 Weightlessness Condition in which no acceleration, whether due to gravity or any other force, can be detected by an observer within a system. It also means the absence of weight or the absence of the force of gravity acting on a body. Microgravity, gravitational force between 0 and 10 -6 g, is included here. (From NASA Thesaurus, 1988) Microgravity,Zero Gravity,Gravity, Zero
D018481 Convection Transmission of energy or mass by a medium involving movement of the medium itself. The circulatory movement that occurs in a fluid at a nonuniform temperature owing to the variation of its density and the action of gravity. (McGraw-Hill Dictionary of Scientific and Technical Terms, 4th ed; Webster, 10th ed)

Related Publications

Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
April 2009, Annals of the New York Academy of Sciences,
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
January 1996, Advances in space research : the official journal of the Committee on Space Research (COSPAR),
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
January 1982, Biofizika,
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
January 1974, Tsitologiia,
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
September 1961, Stain technology,
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
May 1962, Plant physiology,
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
January 2011, International journal of Ayurveda research,
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
July 2000, Journal of gravitational physiology : a journal of the International Society for Gravitational Physiology,
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
November 2009, The Journal of experimental biology,
Y Kitaya, and M Kawai, and J Tsuruyama, and H Takahashi, and A Tani, and E Goto, and T Saito, and M Kiyota
December 1996, Acta horticulturae,
Copied contents to your clipboard!