[0001] The present invention relates to a cooling device wherein the problem of sweating
on the return tube is eliminated.
[0002] In cooling devices, when the compressor is started, the refrigerant fluid is transferred
from the condenser to the capillary, then to the evaporator via the capillary, and
finally, returns to the compressor via the return tube to be pumped back into the
system. The refrigerant fluid is at the coldest state at the evaporator inlet and
absorbs the heat inside the fresh food compartment and/or the freezing compartment
while passing through the evaporator. Thus, the refrigerant fluid flowing through
the return tube is enabled to reach an optimized temperature. However, depending on
the cooling system, the heat provided by the capillary is not always sufficient to
heat the refrigerant fluid to a temperature exceeding the dew point temperature thereof
at the operating ambient conditions of the cooling device. As a result, if the return
pipe coming out from the bottom of the cabinet is cold, the problem of sweating at
the outlet, in other words, the problem of condensation of water on the surface of
the return tube under the cooling device is encountered. This causes user complaints.
[0003] In the state of the art European Patent Application No.
EP0541343, a cooling system is disclosed, wherein a heat exchanger is connected to the return
tube carrying the refrigerant fluid, thus increasing the efficiency of the refrigerant
fluid by intercooling/pre-cooling during the compressor stages. In this document,
the heat exchanger is located between the condenser outlet and the compressor inlet,
and the direction of heat transfer is from the refrigerant fluid returning to the
compressor to the refrigerant fluid leaving the condenser, aiming to increase efficiency
by cooling the return tube.
[0004] The aim of the present invention is the realization of a cooling device wherein the
problem of sweating on the return tube is eliminated.
[0005] The cooling device realized in order to attain the aim of the present invention,
explicated in the first claim and the respective claims thereof, comprises a heater
which provides the evaporation of the water in the evaporation tray, which connects
the compressor outlet to the condenser inlet and which provides the transfer of the
refrigerant fluid from the compressor to the condenser; a return tube which is connected
to the compressor inlet and a connection member which connects the return tube to
the heater so as to contact each other. In the embodiment of the present invention,
the direction of the heat transfer is from the refrigerant fluid leaving the compressor
to the refrigerant fluid returning to the compressor.
[0006] By means of the present invention, when the compressor is operated, the refrigerant
fluid is hot, and the heater, which provides the evaporation of the water in the evaporation
tray, contacts the cold return tube by means of the connection member, thus the return
tube is heated and the problem of condensation on the return tube, hence the problem
of sweating in the cabinet, is eliminated.
[0007] The compressor compresses the refrigerant fluid absorbed from the suction line and
pumps the same into the condenser as superheated vapor. The refrigerant, which condenses
in the condenser by dissipating its heat, reaches the capillary tube. At the same
time, the heater used to evaporate the water in the evaporation tray placed on the
compressor located under the body evaporates the water in the evaporation tray. The
refrigerant fluid, which is sprayed to the evaporator with the pressure thereof being
reduced at the outlet of the capillary tube, evaporates by drawing heat from the inner
volume of the body. Thus, the inner volume of the body is cooled down. The evaporating
refrigerant fluid is sucked by the compressor via the return tube and the refrigeration
cycle is repeated. Since the return tube and the heater contact each other by means
of the connection member, it is ensured that the return tube is sufficiently heated
above the dew point temperature to prevent the formation of droplets due to condensation
that occurs because of the coldness of the return tube.
[0008] In the preferred embodiment of the present invention, the connection member is a
macaroon tube. Macaroon is a special insulation cover and has a special structure
which shrinks to a certain extent when being subjected to heat and thanks to this
shrinkage, fixes, covers and closes the area where the same is used. Thus, the two
tubes, which are the heater and the return tube, are mechanically connected to each
other so as to have a direct contact zone therebetween to allow heat exchange. Thus,
it is ensured that the return tube and the heater fully contact each other to be effectively
grouped.
[0009] In another embodiment of the present invention, the connection member may be a rubber
tube, band, clamps or a combination thereof.
[0010] The evaporation tray is a container where the water melting during the defrosting
is accumulated to be evaporated, and is disposed in the vicinity of the compressor,
preferably on the compressor, so as to be affected by the waste heat of the compressor.
[0011] The heater is formed by being bent in various forms and placed into the evaporation
tray, and provides the transfer of the refrigerant fluid from the compressor to the
condenser, while providing the evaporation of the water accumulated in the evaporation
tray by utilizing the heat of the refrigerant fluid flowing therethrough.
[0012] In an embodiment of the present invention, the contact zone where the heater and
the return tube are connected to each other by means of the connection member is bent
in the form of a U. Thus, the heater and the return tube are enabled to contact each
other at a surface as wide as possible.
[0013] By means of the present invention, the return tube is enabled to mechanically contact
the heater by means of the connection member such that heat transfer occurs therebetween
so as to heat the return tube above the dew point temperature and the droplets are
prevented from forming on the return tube.
[0014] A cooling device realized in order to attain the aim the object of the present invention
is illustrated in the attached figures, where:
Figure 1 - is the view of the bottom of a cooling device cabinet.
Figure 2 - is the perspective view of the heater.
Figure 3 - is the perspective view of the return tube.
Figure 4 - is the sideways view of the connection member, the evaporation tray, the
heater and the return tube.
Figure 5 - is the perspective view of the connection member, the evaporation tray,
the heater and the return tube.
[0015] The elements illustrated in the figures are numbered as follows:
- 1. Cooling device
- 2. Cabinet
- 3. Compressor
- 4. Heater
- 5. Return tube
- 6. Evaporation tray
- 7. Connection member
A - Contact zone
[0016] The cooling device (1) of the present invention comprises a cabinet (2); a compressor
(3) which moves the refrigerant fluid in the refrigeration cycle; a condenser which
condenses the refrigerant fluid; a capillary tube; an evaporator which draws the thermal
energy to cool down the inner volume of the body; an evaporation tray (6) which collects
the water melting during the defrosting to be evaporated; a heater (4) which provides
the evaporation of the water in the evaporation tray (6), which connects the compressor
(3) outlet to the condenser inlet and which provides the transfer of the refrigerant
fluid from the compressor (3) to the condenser; a return tube which (5) is connected
to the compressor (3) inlet and a connection member (7) which connects the return
tube (5) to the heater (4) so as to contact each other. In the embodiment of the present
invention, the direction of the heat transfer is from the refrigerant fluid leaving
the compressor (3) to the refrigerant fluid returning to the compressor (3) (Figure
1).
[0017] By means of the present invention, when the compressor (3) is operated, the refrigerant
fluid is hot, and the heater (4), which provides the evaporation of the water in the
evaporation tray (6), contacts the cold return tube (5) by means of the connection
member (7), thus the return tube (5) is heated and the problem of condensation on
the return tube (5), hence the problem of sweating on the bottom of the cabinet, is
eliminated.
[0018] The compressor (3) compresses the refrigerant fluid absorbed from the suction line
and pumps the same into the condenser as superheated vapor. The refrigerant, which
condenses in the condenser by dissipating its heat, reaches the capillary tube. At
the same time, the heater (4) used to evaporate the water in the evaporation tray
(6) placed on the compressor (3) located under the cabinet (2) evaporates the water
in the evaporation tray (6). The refrigerant fluid, which is sprayed to the evaporator
with the pressure thereof being reduced at the outlet of the capillary tube, evaporates
by drawing heat from the inner volume of the cabinet (2). Thus, the inner volume of
the cabinet (2) is cooled down. The evaporating refrigerant fluid is sucked by the
compressor (3) via the return tube (5) and the refrigeration cycle is repeated. Since
the return tube (5) and the heater (4) contact each other by means of the connection
member (7), it is ensured that the return tube (5) is sufficiently heated above the
dew point temperature to prevent the formation of droplets on the return tube (5).
[0019] Thus, by means of the connection member (7), the two tubes, which are the heater
(4) and the return tube (5), are mechanically connected to each other so as to have
a direct contact zone (A) therebetween to allow heat exchange. In the preferred embodiment
of the present invention, the connection member (7) is a macaroon tube. Macaroon is
a special insulation cover and has a special structure which shrinks to a certain
extent when being subjected to heat and thanks to this shrinkage, fixes, covers and
closes the area where the same is used. Thus, it is ensured that the return tube (5)
and the heater (4) fully contact each other to be effectively grouped (Figure 3).
[0020] In another embodiment of the present invention, the connection member (7) may be
a rubber tube, band, clamps or a combination thereof.
[0021] The evaporation tray (6) is a container where the water melting during the defrosting
is accumulated to be evaporated, and is disposed in the vicinity of the compressor
(3), preferably on the compressor (3), so as to be affected by the waste heat of the
compressor (3).
[0022] The heater (4) is formed by being bent in various forms and placed into the evaporation
tray (6), and provides the transfer of the refrigerant fluid from the compressor (3)
to the condenser, while providing the evaporation of the water accumulated in the
evaporation tray (6) by utilizing the heat of the refrigerant fluid flowing therethrough
(Figure 2).
[0023] In an embodiment of the present invention, the contact zone (A) where the heater
(4) and the return tube (5) are connected to each other by means of the connection
member (7) is bent in the form of a U. Thus, the heater (4) and the return tube (5)
are enabled to contact each other at a surface as wide as possible (Figure 4 and Figure
5).
[0024] By means of the present invention, the return tube (5) is enabled to mechanically
contact the heater (4) by means of the connection member (7) such that heat transfer
occurs therebetween so as to heat the return tube (5) above the dew point temperature
and the droplets are prevented from forming on the return tube (5).
1. A cooling device (1) comprising a cabinet (2); a compressor (3) which moves the refrigerant fluid in the refrigeration
cycle; a condenser which condenses the refrigerant fluid; a capillary tube; an evaporator
which draws the thermal energy to cool down the inner volume of the body; and an evaporation
tray (6) which collects the water melting during the defrosting to be evaporated,
characterized by a heater (4) which provides the evaporation of the water in the evaporation tray
(6), which connects the compressor (3) outlet to the condenser inlet and which provides
the transfer of the refrigerant fluid from the compressor (3) to the condenser; a
return tube which (5) is connected to the compressor (3) inlet and a connection member
(7) which connects the return tube (5) to the heater (4) so as to contact each other.
2. A cooling device (1) as in Claim 1, characterized by the connection member (7) which connects the heater (4) and the return tube (5) to
each other mechanically so as to have a direct contact zone (A) therebetween to allow
heat exchange.
3. A cooling device (1) as in Claim 1 or 2, characterized by the connection member (7) which is a macaroon tube.
4. A cooling device (1) as in Claim 1, 2 or 3, characterized by the connection member (7) which may be a rubber tube, band, clamps or a combination
thereof.
5. A cooling device (1) as in Claim 1, characterized by the evaporation tray (6) wherein the water melting during the defrosting is accumulated
to be evaporated, and which is disposed in the vicinity of the compressor (3) so as
to be affected by the waste heat of the compressor (3).
6. A cooling device (1) as in Claim 5, characterized by the evaporation tray (6) which is placed on the compressor (3).
7. A cooling device (1) as in Claim 1, characterized by the heater (4) which is formed by being bent in various forms and placed into the
evaporation tray (6), and which provides the transfer of the refrigerant fluid from
the compressor (3) to the condenser, while providing the evaporation of the water
accumulated in the evaporation tray (6) by utilizing the heat of the refrigerant fluid
flowing therethrough.
8. A cooling device (1) as in any one of the above claims, characterized by the heater (4) and the return tube (5) which are connected to each other by means
of the connection member (7) at the contact zone (A) which is bent in the form of
a U.