(n+1) units of semiconductor thermopiles, input
with switching unit of power supply facilities,
second commutator 30, connected with outputs with
(n+1) ventilators 29 of forced air circulation system,
input with switching unit of power supply sources
(at fig.1 the connection doesn’t show), and control
input with control system, bar-code reader 31,
connected with control system, printer of RFID
marks 32, connected with control system, RFID
identification marks 32, connected with control
system, RFID identification marks 33, anchored on
polymeric containers with transfusion environments
containing platelets, readers of RFID identification
marks 33, disposed on platform nests for arranging
polymeric containers with transfusion environments
containing platelets and connected with control
system, alphameric or graphic display 34, connected
with control system.
3 CONCLUSIONS
Physical processes research of safe storage of
biological objects under the temperature control
conditions at high requirements to the temperature
accuracy and temperature uniformity on the volume
within +1 °C was carried out. The simulation of
thermal processes in polymeric containers with PC
was realized. These theoretical and experimental
studies, as well as the development of new
mathematical models of thermophysical processes
will allow to create a scientific-methodical base for
development of the optimizing technique of the
device design for safe storage the transfusion
environments containing platelets.
The results of these studies were used to create
the experimental sample of the device for safe
storage of transfusion environments containing
platelets in which provides WHO requirements to
PC storage modes , and remote monitoring and
logging of PC storage modes using a personal
computer.
This work was supported by the Ministry of
Education and Science of the Russian Federation in
the framework of the Federal Target Program
"Research and development on priority directions of
scientific-technological complex of Russia for 2014 -
2020 years", grant agreement № 14.577.21.0138,
unique identifier of applied research and
experimental development (project)
RFMEFI57714XO138.
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