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Achanta Ramakrishna Rao

Publications and source records attributed to Achanta Ramakrishna Rao.

2 recordsLinked to original sources

Scale-up criteria of square tank surface aerator.

Oxygen transfer rate and the corresponding power requirement to operate the rotor are vital for design and scale-up of surface aerators. Present study develops simulation or scale-up criterion correlating the oxygen transfer coefficient and power number along with a parameter governing theoretical power per unit volume (X, which is defined as equal to F(4/3)R(1/3), where F and R are impellers' Froude and Reynolds number, respectively). Based on such scale-up criteria, design considerations are developed to save energy requirements while designing square tank surface aerators. It has been demonstrated that energy can be saved substantially if the aeration tanks are run at relatively higher input powers. It is also demonstrated that smaller sized tanks are more energy conservative and economical when compared to big sized tanks, while aerating the same volume of water, and at the same time by maintaining a constant input power in all the tanks irrespective of their size. An example illustrating how energy can be reduced while designing different sized aerators is given. The results presented have a wide application in biotechnology and bioengineering areas with a particular emphasis on the design of appropriate surface aeration systems.

Bioreactors↗

Rectangular surface aerators.

Aeration experiments were conducted in two rectangular surface aeration tanks of L/B ratios 1.5 and 2 along with a square tank (L/B=1) to study their relative performance due to shape on oxygen transfer process while re-aerating the same volume of water such that the cross-sectional area of all the three tanks is the same. An identical rotor with six flat blades was used in all the three tanks. The geometric dimensions, which were developed to produce maximum aeration in square tanks by a previous study, were used in the present study as well. Results have confirmed that at lower dynamic conditions of the rotor the oxygen transfer coefficient is maximum in square tanks followed by rectangular tank of L/B=2 and it is the least in rectangular tank of L/B=1.5. However, the rectangular tank of L/B=1.5 produces always lower k values for any given rotor speed when compared to square tank, whereas the performance of rectangular tank of L/B=2 is marginally better than square tanks when rotor speeds are higher.

Equipment Design↗