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  • Institute of Physics (IOP)  (1)
  • Italian Society of Silviculture and Forest Ecology  (1)
  • 2015-2019  (2)
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  • 2015-2019  (2)
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  • 1
    Publication Date: 2018-12-17
    Description: Zhang X, Cao QV, Xiang C, Duan A, Zhang J PREDICTING TOTAL AND COMPONENT BIOMASS OF CHINESE FIR USING A FORECAST COMBINATION METHOD Abstract : Accurate estimates of tree biomass are critical for forest managers to assess carbon stock. Biomass of Chinese fir (Cunninghamia lanceolata [Lamb.] Hook.) in southern China was assessed by three alternative methods. In the Separate model approach, total and component tree biomass was directly predicted from a regression equation as a function of tree diameter and height. In the Additive model approach, total biomass was predicted as the sum of predictions from all component biomass equations. The Forecast Combination method involved combining predictions from the total biomass equation with the sum of predictions from component biomass equations. Results indicated that the Separate model method outperformed the Additive model method in predicting total and component biomass. The drawback of the Separate model method is that the total is not equal to the sum of its components. The Forecast Combination method provided the overall best prediction for total and component biomass, and still ensured additivity of component biomass predictions. Keywords : Additivity, Biomass Predictions, Cunninghamia lanceolata, Even-aged Plantations, Tree Allometry iForest 10 (4): 687-691 (2017) - doi: 10.3832/ifor2243-010 http://iforest.sisef.org/contents/?id=ifor2243-010
    Electronic ISSN: 1971-7458
    Topics: Agriculture, Forestry, Horticulture, Fishery, Domestic Science, Nutrition
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  • 2
    Publication Date: 2017-01-24
    Description: The thermal management has become an urgent problem to be solved with the increasing power and the improving integration of the LED (light emitting diode) chip. In order to eliminate the contact resistance of the radiator, this paper presented an integrated high-power LED radiator based on phase-change heat transfer, which realized the seamless connection between the vapor chamber and the cooling fins. The radiator was optimized by combining the numerical simulation and the experimental research. The effects of the chamber diameter and the parameters of fin on the heat dissipation performance were analyzed. The numerical simulation results were compared with the measured values by experiment. The results showed that the fin thickness, the fin number, the fin height and the chamber diameter were the factors which affected the performance of radiator from primary to secondary.
    Print ISSN: 1757-8981
    Electronic ISSN: 1757-899X
    Topics: Mechanical Engineering, Materials Science, Production Engineering, Mining and Metallurgy, Traffic Engineering, Precision Mechanics
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