TECHNICAL FIELD
[0001] The present invention relates to a heat pipe heat exchanger, and more particularly,
to a heat pipe heat exchanger for exchanging heat between a high temperature portion
and a low temperature portion using a heat pipe.
BACKGROUND
[0002] In general, a heat exchanger is a device for exchanging heat by directly or indirectly
contacting two fluids having different temperatures. such a heat exchanger is classified
into various types according to an energy transfer method between the two fluids.
[0003] Among various types of heat exchangers, there are a plate type heat exchanger, a
radiation fin tube heat exchanger, and a tube heat exchanger as a method for exchanging
only energy by separating heat exchange fluids so as not to mix them.
[0004] In particular, in the case of the radiation fin tube heat exchanger (hereinafter
referred to as a 'heat pipe heat exchanger') using a heat pipe, it is possible to
transfer heat from the high temperature portion to the low temperature portion without
requiring additional power, and since it is easy to clean against contamination, the
heat pipe heat exchanger is used in various types of heat transfer devices.
[0005] FIG 1 shows an example of a conventional heat pipe heat exchanger 1. As shown, when
heat is exchanged using the heat pipe heat exchanger 1, a high temperature gas HT
is flowed into a high temperature chamber 4a of a high temperature portion 4 to heat
a heat pipe 2, and then discharged to the outside. In addition, a low temperature
fluid LT passing through a low temperature chamber 3a of a low temperature portion
3 installed above the high temperature portion 4 exchanges heat with the heat pipe
2 and is then discharged to the outside of the low temperature chamber 3a.
[0006] Here, in order to prevent the high temperature gas HT flowed into the high temperature
chamber 4a and the low temperature fluid LT flowed into the low temperature chamber
3a from mixing with each other, a separation plate 5 is installed between the high
temperature portion 4 and the low temperature portion 3.
[0007] In the conventional heat pipe heat exchanger 1 as described above, as shown in FIG
2, a coupling portion 2b is formed in the middle of the heat pipe 2 and is screwed
to the separation plate 5.
[0008] Meanwhile, the heat pipe 2 couples heat radiation fins 2a to expand a heat exchange
area.
[0009] However, in order to couple the heat pipe 2 and the separation plate 5, the heat
pipe 2 has to be inserted into the separation plate 5 from the high temperature part
4 side to the low temperature part 3 side or from the low temperature part 3 side
to the high temperature part 4 side. For this reason, the heat radiation fins 2a cannot
be coupled to a portion of the heat pipe 2 which is inserted and the heat radiation
fins 2a can be coupled to only a portion thereof which is not inserted.
[0010] Therefore, in the conventional heat pipe heat exchanger 1, because of the assembly
of the heat pipe 2, the heat radiation fins 2a for expanding the heat exchange area
can be formed on only one selected side of the low temperature portion side and the
high temperature portion side, and consequently, there is a problem that the heat
exchange efficiency is reduced.
SUMMARY OF INVENTION
TECHNICAL PROBLEM
[0012] The present invention has been created to solve the above problems, and an object
of the present invention is to provide a heat pipe heat exchanger implemented to improve
heat exchange performance by coupling heat radiation fins for expanding a heat exchange
area of a heat pipe to both sides of a high temperature portion and a low temperature
portion.
TECHNICAL SOLUTION
[0013] A heat pipe heat exchanger of the present invention includes a high temperature portion
formed with a high temperature chamber through which a high temperature fluid flows
in and out; a low temperature portion formed with a low temperature chamber through
which a low temperature fluid flows in and out; a separation plate installed between
the high temperature portion and the low temperature portion to partition the high
temperature portion and the low temperature portion; and a plurality of heat exchange
units installed to pass through the separation plate and transferring heat from the
high temperature portion to the low temperature portion for heat exchange, in which
the separating plate includes a pair of first separation portions spaced apart from
each other, a plurality of second separation portions disposed between the pair of
first separation plates, and a pair of guide rails that slidably support both ends
of the first and second separation portions, and are spaced apart from each other,
and the plurality of heat exchange portions are inserted and fixed between the first
separation portion and the second separation portion, and between the second separation
portions adjacent to each other.
[0014] The heat exchange unit may include a heat pipe, a high temperature radiation fin
disposed in the high temperature portion and coupled to an outer circumferential surface
of the heat pipe to expand a heat exchange area, and a low temperature radiation fin
disposed in the low temperature portion and coupled to the outer circumferential surface
of the heat pipe to expand a heat exchange area.
[0015] The pair of first separation portions may be formed with a plurality of semicircular
first insertion grooves into which the heat pipes are inserted, the plurality of second
separation portions may be formed with a plurality of semicircular second insertion
grooves into which the heat pipes are inserted, side by side on both sides in a width
direction, and the heat pipe may be inserted and fixed between the first insertion
groove and the second insertion groove, and between the second insertion grooves adjacent
to each other. Here, it is preferable that the second insertion grooves are disposed
to be staggered from each other rather than side by side along the width direction.
[0016] In the heat pipe, a portion exposed between the high temperature radiation fin and
the low temperature radiation fin may be inserted and fixed between the first insertion
groove and the second insertion groove, and between the second insertion grooves adjacent
to each other.
[0017] On the other hand, in the guide rail, a guide groove may be formed for guiding ends
of the first separation portion and the second separation portion to slide. In addition,
the first separation portion may include a first plate in which the plurality of first
insertion grooves are formed, and a pair of first slide portions respectively protruding
from both ends of the first plate and slidably installed in the guide groove. Here,
the first slide portion and the guide rail may be coupled by bolt.
[0018] In addition, the second separation portion may include a second plate on which the
plurality of second insertion grooves are formed, and a pair of second slide portions
respectively protruding from both ends of the second plate and slidably installed
in the guide groove. Here, the second slide portion and the guide rail may be coupled
by bolt.
[0019] The heat pipe heat exchanger of the present invention described above may further
include a plurality of sealing members interposed between the first and second separation
portions, and the heat exchange unit to maintain airtightness between the low temperature
portion and the high temperature portion, in which in the first and second separation
portions, sealing grooves into which the sealing member is inserted may be respectively
formed on an insertion surface of the heat exchange unit. Here, the sealing member
may be a line O-ring.
ADVANTAGEOUS EFFECTS
[0020] According to the heat pipe heat exchanger of the present invention, since the first
and second separation portions that can be separated and coupled to each other in
order to separate the high temperature portion and the low temperature portion, even
if the heat radiation fins for expanding the heat exchange area are coupled to both
the high temperature portion and the low temperature portion of the heat pipe, the
separation plate and the heat pipe can be easily coupled. In this way, the heat exchange
efficiency can be improved by expanding the heat exchange area to both the high temperature
portion and the low temperature portion of the heat pipe.
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
FIG 1 is a view showing an example of a conventional heat pipe heat exchanger,
FIG 2 is a perspective view of a heat pipe applied to FIG 1,
FIG 3 is a perspective view of coupling of a heat pipe heat exchanger according to
an example of the present invention,
FIG 4 is a plan view of FIG 3,
FIG 5 is a perspective view showing a heat exchange unit shown in FIG 3,
FIG 6 is a perspective view showing a first separation portion of a separation plate
shown in FIG 3,
FIG 7 is a perspective view showing a second separation portion of the separation
plate shown in FIG 3
FIG 8 is a perspective view showing a guide rail of the separation plate shown in
FIG 3, and
FIGS. 9 to 13 are perspective views sequentially explaining for an assembling process
of the heat exchange unit and the separation plate in the heat pipe heat exchanger
shown in FIG 3.
BEST MODE FOR INVENTION
[0022] Although the present invention has been described with reference to the examples
shown in the drawings, this is only exemplary, and those skilled in the art will understand
that various modifications and equivalent other examples are possible therefrom. Therefore,
the true technical scope of protection of the present invention has to be determined
by the technical spirit of the appended claims.
[0023] Hereinafter, a heat pipe heat exchanger according to an example of the present invention
will be described in detail with reference to the accompanying drawings.
[0024] FIG 3 is a perspective view of coupling of a heat pipe heat exchanger according to
an example of the present invention, and FIG 4 is a plan view of FIG 3.
[0025] Referring to the drawings, a heat pipe heat exchanger 1000 of the present invention
includes a high temperature portion H, a low temperature portion L, a separation plate
1100, and a heat exchange portion 1200.
[0026] A high temperature chamber HR is formed in the high temperature portion H, and a
high temperature fluid HT such as hot gas flows in and out of the high temperature
chamber HR.
[0027] A low temperature chamber LR is formed in the low temperature portion L, and a low
temperature fluid LT such as water flows in and out of the low temperature chamber
LR.
[0028] The separation plate 1100 is installed between the high temperature portion H and
the low temperature portion L to separate and partition the high temperature portion
H and the low temperature portion L.
[0029] The heat exchange portion 1200 transfers heat from the high temperature portion H
to the low temperature portion L. FIG 5 is a perspective view showing such a heat
exchange unit 1200.
[0030] As shown, the heat exchange unit 1200 includes a heat pipe 1210, high temperature
radiation fins 1230 disposed in the high temperature portion H, and low temperature
radiation fins 1220 disposed in the low temperature portion L.
[0031] The heat pipe 1210 is generally made by vacuuming an inside of a metal pipe and adding
a small amount of refrigerant. The refrigerant (typically water) is determined according
to a temperature to be used, and the refrigerant. a metal (usually copper) that does
not react with the refrigerant is selected according to the refrigerant to make the
pipe. When the temperature difference between a heating portion and a cooling portion
at both ends of the heat pipe 1210 occurs, the refrigerant in the heat pipe 1210 convects
both ends of the heat pipe 1210 while holding the heat, thereby transferring heat.
[0032] The high temperature radiation fins 1230 and the low temperature radiation fins 1220
are coupled to an outer circumferential surface of the heat pipe 1210 to expand a
heat exchange area. Here, the high temperature radiation fins 1230 and the low temperature
radiation fins 1220 may be made into an annular shape as shown, but this is exemplary
and does not limit the shape thereof.
[0033] Hereinafter, the separation plate 1100 partitioning the high temperature portion
H and the low temperature portion L will be described in detail with reference to
the drawings, and an assembling process of the separation plate 1100 and the heat
exchange portion 1200 will be described.
[0034] FIG 6 is a perspective view showing a first separation portion 1110 of the separation
plate 1100 shown in FIG 3, FIG 7 is a perspective view showing a second separation
portion 1120 of the separation plate 1100 shown in FIG 3, and FIG 8 is a perspective
view showing a guide rail 1130 of the separation plate 1100 shown in FIG 3. In addition,
FIGS. 9 to 13 are perspective views sequentially explaining for the assembling process
of the heat exchange unit 1200 and the separation plate 1100 in the heat pipe heat
exchanger 1000 shown in FIG 3.
[0035] Referring to the drawings, the separation plate 1100 includes a pair of first separation
portions 1110, a plurality of second separation portions 1120, and a pair of guide
rails 1130.
[0036] The pair of first separation plates 1110 are spaced apart from each other. Each of
the first separation plates 1110 may include a first plate 1111 on which a plurality
of first insertion grooves 1111a are formed, and a pair of first slide portions 1112
protruding from both ends of the first plate 1111, respectively. Here, the first insertion
grooves 1111a have a semicircular shape and one side of the heat pipe 1210 is inserted
thereto.
[0037] The plurality of second separation plates 1120 are disposed between the pair of first
separation plates 1110 spaced apart from each other. In addition, each of the second
separation plates 1120 may include a second plate 1121 having a plurality of second
insertion grooves 1121a formed thereon, and a pair of second slide portions 1121a
protruding from both ends of the second plate 1121, respectively. Here, the second
insertion grooves 1121a have a semicircular shape and the other side of the heat pipe
1210 is inserted thereto. In addition, these second insertion grooves 1121a are formed
side by side on both sides in a width direction.
[0038] The pair of guide rails 1130 are spaced apart from each other to slidably support
both ends of the first and second separation plates 1110 and 1120. To this end, guide
grooves 1130a are formed to slidably guide both ends of the first and second separation
plates 1110 and 1120. That is, the first slide portion 1112 of the first separation
portion 1110 and the second slide portion 1122 of the second separation portion 1120
slide along the guide groove 1130a.
[0039] In the structure of the separation plate 1100 as described above, the heat exchange
unit 1200 is inserted and fixed between the first insertion groove 1111a and the second
insertion groove 1121a, and between the second insertion grooves 1121a adjacent to
each other. More specifically, an exposed portion of the heat pipe 1210 is inserted
and fixed between the high temperature radiation fin 1230 and the low temperature
radiation fin 1220 in the heat exchange unit 1200.
[0040] In order to form grooves or holes for inserting and fixing the heat pipe 1210, the
first insertion groove 1111a and the second insertion groove 1121a have to be formed
at positions corresponding to each other. In addition, it is preferable that the second
insertion grooves 1121a are not parallel to each other in the width direction, but
are staggered from each other. Accordingly, the heat exchange unit 1200 is evenly
distributed throughout the high temperature chamber HR and the low temperature chamber
LR, so that overall heat exchange efficiency can be improved.
[0041] Meanwhile, in order to maintain airtightness between the low temperature portion
L and the high temperature portion H, a sealing member 1300 may be intervened between
the first separation portion 1110, the second separation portion 1120, and the heat
exchange unit 1200. To this end, in the first separation portion 1110 and the second
separation portion 1120, sealing grooves 1111b and 1121b into which the sealing members
1300 are inserted may be respectively formed on an insertion surface of the heat exchange
unit 1200. A line O-ring may be used as the sealing member 1300, but its structure
or material is not limited.
[0042] Hereinafter, the assembling process of the heat exchange unit 1200 and the separation
plate 1100 in the heat pipe heat exchanger 1000 according to the present invention
will be sequentially described with reference to FIGS. 9 to 13.
[0043] First, as shown in FIG 9, the first separation portion 1110 is fixedly installed
to the pair of guide rails 1130. To this end, the first slide portion 1112 of the
first separation portion 1110 is slid along the guide groove 1130a of the guide rail
1130. Then, the first slide portion 1112 and the guide rail 1130 are fixed. As shown,
the first slide portion 1112 and the guide rail 1130 may be fixed by bolt coupling,
but this is exemplary and may be fixed through other fastening methods.
[0044] When the first separation portion 1110 is fixed, the sealing member 1300 such as
a line O-ring is inserted into the sealing groove 1111b of the first separation portion
1110.
[0045] Next, as shown in FIG 10, one side surface of a portion of the heat pipe 1210 exposed
between the high temperature radiation fin 1230 and the low temperature radiation
fin 1220 is inserted into the first insertion groove 1111a of the first separation
portion 1110.
[0046] Next, the second slide portion 1122 of the second separation portion 1120 in which
the sealing member 1300 is inserted into the sealing groove 1121b is slid into the
guide groove 1130a of the guide rail 1130. Accordingly, the other surface of the heat
pipe 1210, one side of which is inserted into the first insertion groove 1111a of
the first separation portion 1110, is inserted into the second insertion groove 1121a
formed on one side of the second separation portion 1120.
[0047] When the heat pipe 1210 is inserted between the first insertion groove 1111a and
the second insertion groove 1121a, the second slide portion 1122 and the guide rail
1130 are fixed. Here, as shown in FIG 11, the second slide portion 1122 and the guide
rail 1130 may be fixed by bolt coupling, but the fixing method is not limited.
[0048] Next, as shown in FIG 12, the sealing member 1300 is inserted into the sealing groove
1121b of the second separation portion 1120. Then, one side of other heat pipes 1210
is inserted into the second insertion groove 1121a formed on the other side of the
second separation portion 1120.
[0049] Next, the second slide portion 1122 of the second separation portion 1120 in which
the sealing member 1300 is inserted into the sealing groove 1121b is slid into the
guide groove 1130a of the guide rail 1130. Accordingly, the other side of the heat
pipe 1210 inserted into the second insertion groove 1121a of the second separation
portion 1120 adjacent to one side thereof is inserted. In a state where the heat pipes
1210 are inserted into the second insertion grooves 1121a of the adjacent second separation
plates 1120 as described above, they are fixed to the guide rails 1130 using bolts
or the like.
[0050] After repeating the assembling process of the heat exchange unit 1200 and the second
separation portion 1120 as described above, and finally assembling the first separation
portion 1110, the assembly of the separation plate 1200 and the heat exchange unit
1200 is completed.
[0051] As described above, according to the heat pipe heat exchanger 1000 of the present
invention, since the first and second separation portions 1110 and 1120 that can be
separated and coupled to each other in order to separate the high temperature portion
H and the low temperature portion L, even if the heat radiation fins 1220 and 1230
for expanding the heat exchange area are coupled to both the high temperature portion
H and the low temperature portion L of the heat pipe 1210, the separation plate 1100
and the heat pipe 1210 can be easily coupled. In this way, the heat exchange efficiency
can be improved by expanding the heat exchange area to both the high temperature portion
and the low temperature portion of the heat pipe 1210.
1. A heat pipe heat exchanger comprising:
a high temperature portion formed with a high temperature chamber through which a
high temperature fluid flows in and out;
a low temperature portion formed with a low temperature chamber through which a low
temperature fluid flows in and out;
a separation plate installed between the high temperature portion and the low temperature
portion to partition the high temperature portion and the low temperature portion;
and
a plurality of heat exchange units installed to pass through the separation plate
and transferring heat from the high temperature portion to the low temperature portion
for heat exchange,
wherein the separating plate includes
a pair of first separation portions spaced apart from each other,
a plurality of second separation portions disposed between the pair of first separation
plates, and
a pair of guide rails that slidably support both ends of the first and second separation
portions, and are spaced apart from each other, and
the plurality of heat exchange portions are inserted and fixed between the first separation
portion and the second separation portion, and between the second separation portions
adjacent to each other.
2. The heat pipe heat exchanger of claim 1, wherein the heat exchange unit includes
a heat pipe,
a high temperature radiation fin disposed in the high temperature portion and coupled
to an outer circumferential surface of the heat pipe to expand a heat exchange area,
and
a low temperature radiation fin disposed in the low temperature portion and coupled
to the outer circumferential surface of the heat pipe to expand a heat exchange area.
3. The heat pipe heat exchanger of claim 2, wherein the pair of first separation portions
are formed with a plurality of semicircular first insertion grooves into which the
heat pipes are inserted,
the plurality of second separation portions are formed with a plurality of semicircular
second insertion grooves into which the heat pipes are inserted, side by side on both
sides in a width direction, and
the heat pipe is inserted and fixed between the first insertion groove and the second
insertion groove, and between the second insertion grooves adjacent to each other.
4. The heat pipe heat exchanger of claim 3, wherein the second insertion grooves are
disposed to be staggered from each other rather than side by side along the width
direction.
5. The heat pipe heat exchanger of claim 3, wherein in the heat pipe,
a portion exposed between the high temperature radiation fin and the low temperature
radiation fin is inserted and fixed between the first insertion groove and the second
insertion groove, and between the second insertion grooves adjacent to each other.
6. The heat pipe heat exchanger of claim 3, wherein in the guide rail,
a guide groove is formed for guiding ends of the first separation portion and the
second separation portion to slide.
7. The heat pipe heat exchanger claim 6, wherein the first separation portion includes
a first plate in which the plurality of first insertion grooves are formed, and
a pair of first slide portions respectively protruding from both ends of the first
plate and slidably installed in the guide groove.
8. The heat pipe heat exchanger of claim 7, wherein the first slide portion and the guide
rail are coupled by bolt.
9. The heat pipe heat exchanger of claim 6, wherein the second separation portion includes
a second plate on which the plurality of second insertion grooves are formed, and
a pair of second slide portions respectively protruding from both ends of the second
plate and slidably installed in the guide groove.
10. The heat pipe heat exchanger of claim 9, wherein the second slide portion and the
guide rail are coupled by bolt.
11. The heat pipe heat exchanger of any one of claims 1 to 10, further comprising:
a plurality of sealing members interposed between the first and second separation
portions, and the heat exchange unit to maintain airtightness between the low temperature
portion and the high temperature portion,
wherein in the first and second separation portions, sealing grooves into which the
sealing member is inserted are respectively formed on an insertion surface of the
heat exchange unit.
12. The heat pipe heat exchanger of claim 11, wherein the sealing member is a line O-ring.