CN212253724U - Single-row pipe of air-cooling condenser - Google Patents

Single-row pipe of air-cooling condenser Download PDF

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Publication number
CN212253724U
CN212253724U CN202020714811.9U CN202020714811U CN212253724U CN 212253724 U CN212253724 U CN 212253724U CN 202020714811 U CN202020714811 U CN 202020714811U CN 212253724 U CN212253724 U CN 212253724U
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fin
air
tube
fins
cross
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CN202020714811.9U
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Chinese (zh)
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江瀚
王永新
薛海君
益平
张朋
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Jiangsu Shuangliang Cooling System Co Ltd
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Jiangsu Shuangliang Cooling System Co Ltd
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Abstract

The utility model relates to a single-row tube of an air-cooled condenser, which comprises a base tube and a snakelike fin, wherein the cross section of the base tube is a flat tube, and the cross section of the base tube has the overall dimension of 120-175mm in length and 10-15mm in width; the outer parts of two side surfaces where the long sides of the cross section of the base tube are located are respectively provided with a snake-shaped fin, and the thickness of each snake-shaped fin is 0.1-0.22 mm; the serpentine fins are discontinuous fins or corrugated fins. The utility model discloses increase the bearing capacity of parent tube, the fin bears the stress of external pressure and reduces greatly, can reduce fin thickness like this, and the fin can crack and make venetian blind formula or bridge piece structure, also can make the wave type to this reinforces the heat transfer, thereby improves the heat transfer performance of single calandria.

Description

Single-row pipe of air-cooling condenser
Technical Field
The utility model relates to an air cooling condenser single row pipe mainly is applied to the direct air cooling condenser of power station or coal chemical steam turbine low pressure cylinder exhaust.
Background
At present, a single row of finned tubes are often used as heat exchange elements in a direct air-cooling condenser for low-pressure cylinder steam exhaust of a condensing power station or a coal chemical steam turbine. The single-row tube consists of a base tube and fins welded outside the tube, the base tube is a rectangular flat tube, the fins are serpentine fins, and the fins in the tube bundle of the air-cooling condenser are arranged in a single row.
The single-row pipe has the advantages that the anti-freezing performance is good when the single-row pipe is used in cold regions in winter, the pressure difference in the pipes caused by inconsistent heat loads of the upper and lower heat exchange pipes of the multi-row pipe is avoided, and the phenomena of non-condensable gas accumulation and condensed water freezing are reduced.
However, the long edge size of this finned tube (single row tube) parent tube that uses at present is great, generally is more than 200mm, and the intraductal negative pressure state that is in of during operation, and the long edge rigidity of parent tube is yielding when receiving external pressure effect for a short time, so, the snakelike fin of base tube outside not only has the heat transfer function of reinforceing, but also bears the external pressure of finned tube, and the thickness of snakelike fin plays at least more than 0.25mm, has the effect that reduces the deformation of pressurized parent tube.
The base tube of the single-row tube has poor rigidity, the pressure bearing characteristic of the fins is relied on, the thickness of the fins is limited, the design of the fins is restrained, technical means such as slotting and reinforced heat exchange cannot be applied, and the heat exchange efficiency of the finned tube is low.
SUMMERY OF THE UTILITY MODEL
An object of the utility model is to overcome above-mentioned not enough, provide an air cooling condenser single bank pipe, can strengthen the bearing external pressure ability of parent tube, reduce the fin material quantity, can improve heat exchange efficiency again.
The purpose of the utility model is realized like this:
a single-row tube of an air-cooled condenser comprises a base tube and a serpentine fin, wherein the cross section of the base tube is a flat tube, and the cross section of the base tube has the overall dimension of 120-175mm in length and 10-15mm in width;
the outer parts of two side surfaces where the long sides of the cross section of the base tube are located are respectively provided with a snake-shaped fin, and the thickness of each snake-shaped fin is 0.1-0.22 mm;
the serpentine fins are discontinuous fins or corrugated fins.
Preferably, the serpentine fins are provided with louver type slots at intervals, and the number of the slots of the louver type slots is more than 2.
Preferably, the slotting inclination angle of the louver type slots is 15-25 degrees.
Preferably, the serpentine fins are provided with bridge piece structure gaps at intervals, and the number of the slots of the bridge piece structure gaps is more than 2.
Preferably, the corrugated height of the corrugated fin is 1.5-2.5 mm.
Preferably, the serpentine fin is made of aluminum or aluminum alloy.
Preferably, the base pipe is made of a bimetal composite material, the outer layer is aluminum or alloy aluminum, and the inner layer is carbon steel or stainless steel.
Preferably, the serpentine fin is connected to the base pipe by brazing.
The utility model has the advantages that:
the utility model discloses a parent tube is flat pipe, and the cross section overall dimension of parent tube is 120-175mm, width 10-15mm for length, increases the bearing capacity of parent tube, and the stress that the fin bore the external pressure reduces greatly, can reduce fin thickness like this, and the ripple type both can be made to the fin, also can crack and make venetian blind formula or bridge piece structure to this strengthens the heat transfer, thereby improves the heat transfer performance of single calandria.
Drawings
Fig. 1 is an overall schematic view of the present invention.
Fig. 2 is a cross-sectional view of the present invention.
Fig. 3 is a schematic view of a fin of example 1.
Fig. 4 is a plan view of the fin of example 1.
Fig. 5 is a partially enlarged view of fig. 4.
FIG. 6 is a schematic view of a fin of example 2.
Fig. 7 is a top view of a fin of example 2.
FIG. 8 is a schematic view of a fin of example 3.
Fig. 9 is a top view of a fin of example 3.
In the figure: 1. a base pipe; 2. a serpentine fin.
Detailed Description
Example 1:
referring to fig. 1-2, the single-row tube of the air-cooling condenser comprises a base tube 1 and a snake-shaped fin 2, wherein the cross section of the base tube 1 is a flat tube, and the external dimension of the cross section of the base tube 1 is 120-175mm in length and 10-15mm in width; the outer parts of two side surfaces where the long sides of the cross section of the base tube 1 are located are respectively provided with a snake-shaped fin 2, and the thickness of each snake-shaped fin 2 is 0.1-0.22 mm; the serpentine fins 2 are discontinuous fins.
The serpentine fin 2 is made of aluminum or aluminum alloy.
The base tube 1 is made of a bimetal composite material, the outer layer is made of aluminum or alloy aluminum, and the inner layer is made of carbon steel or stainless steel.
The serpentine fins 2 are bent in a plurality of serpentines, and the serpentine fins 2 are connected with the base pipe 1 through brazing.
3-5, the serpentine fins 2 are provided with louvered slits at intervals. The number of the slots of the louver type slots is more than 2. The slotting inclination angle a of the louver type slots is 15-25 degrees. And the louver type gaps open the two sides of the vertical surface of the fin.
Example 2:
referring to fig. 6 and 7, the single-row tube of the air-cooling condenser comprises a base tube 1 and a serpentine fin 2, wherein the cross section of the base tube 1 is a flat tube, and the external dimension of the cross section of the base tube 1 is 120-175mm in length and 10-15mm in width; the outer parts of two side surfaces where the long sides of the cross section of the base tube 1 are located are respectively provided with a snake-shaped fin 2, and the thickness of each snake-shaped fin 2 is 0.1-0.22 mm; the serpentine fins 2 are discontinuous fins.
The serpentine fin 2 is made of aluminum or aluminum alloy.
The base tube 1 is made of a bimetal composite material, the outer layer is made of aluminum or alloy aluminum, and the inner layer is made of carbon steel or stainless steel.
The serpentine fins 2 are bent in a plurality of serpentines, and the serpentine fins 2 are connected with the base pipe 1 through brazing.
As shown in fig. 8 and 9, the serpentine fins 2 are provided with gap of bridge structure at intervals. The bridge structure gaps are arranged on two sides of the vertical surfaces of the fins in a staggered mode, and the number of the slots of the bridge structure gaps is more than 2. The strip seam direction of the bridge piece structure seam is vertical to the air flowing direction, and the number of the seam seams of the bridge piece structure seam is more than 2.
Example 3:
referring to fig. 1-2, the single-row tube of the air-cooling condenser comprises a base tube 1 and a snake-shaped fin 2, wherein the cross section of the base tube 1 is a flat tube, and the external dimension of the cross section of the base tube 1 is 120-175mm in length and 10-15mm in width; the outer parts of two side surfaces where the long sides of the cross section of the base tube 1 are located are respectively provided with a snake-shaped fin 2, and the thickness of each snake-shaped fin 2 is 0.1-0.22 mm; the serpentine fins 2 are corrugated fins.
The serpentine fin 2 is made of aluminum or aluminum alloy.
The base tube 1 is made of a bimetal composite material, the outer layer is made of aluminum or alloy aluminum, and the inner layer is made of carbon steel or stainless steel.
The serpentine fins 2 are bent in a plurality of serpentines, and the serpentine fins 2 are connected with the base pipe 1 through brazing.
As shown in fig. 7 and 8, the serpentine fin 2 is provided with continuous heat exchange enhancing corrugations, and the corrugation height of the corrugated fin is 1.5-2.5 mm.
In the embodiment 1-3, the cross section of the base tube 1 is optimized to have the length of 120-175mm and the width of 10-15mm, the capacity of bearing external pressure of the base tube 1 and the finned tube is enhanced, the stress of the serpentine fin 2 is reduced, the influence of the compressive deformation of the base tube 1 on the design optimization of the serpentine fin 2 is greatly reduced, and the following purposes can be realized under the condition:
1. the fins can implement measures such as thickness reduction and the like, so that the cost of the air-cooled condenser is reduced;
2. the fins can implement measures such as slotting reinforced heat exchange and the like, so that the heat exchange performance of the finned tubes is improved.
Comparative example 1:
as in the example, except that the cross-sectional profile of the substrate tube 1 is optimised to have a length of less than 120mm and a width of 10-15 mm. Thus, the resistance of the steam in the base pipe is increased, which causes energy waste and is uneconomical.
In addition to the above embodiments, the present invention also includes other embodiments, and all technical solutions formed by equivalent transformation or equivalent replacement should fall within the protection scope of the claims of the present invention.

Claims (8)

1. The utility model provides an air cooling condenser list calandria, includes parent tube (1) and snakelike fin (2), parent tube (1) cross section is the pipe of platykurtic, its characterized in that:
the cross section of the base pipe (1) has the external dimension of 120-175mm in length and 10-15mm in width;
the outer parts of two side surfaces of the long side of the cross section of the base tube (1) are respectively provided with a snake-shaped fin (2), and the thickness of the snake-shaped fin (2) is 0.1-0.22 mm;
the serpentine fins (2) are discontinuous fins or corrugated fins.
2. The single row of tubes of an air-cooled condenser of claim 1, wherein: the snakelike fins (2) are provided with louver type gaps at intervals, and the number of the slots of the louver type gaps is more than 2.
3. The single row of tubes of an air-cooled condenser of claim 2, wherein: the slotting inclination angle of the louver type slits is 15-25 degrees.
4. The single row of tubes of an air-cooled condenser of claim 1, wherein: the snakelike fin (2) interval is equipped with the bridge piece structure gap, the number of slotting of bridge piece structure gap is more than 2.
5. The single row of tubes of an air-cooled condenser of claim 1, wherein: the corrugated height of the corrugated fin is 1.5-2.5 mm.
6. The single row of tubes of an air-cooled condenser of claim 1, wherein: the serpentine fin (2) is made of aluminum or alloy aluminum.
7. The single row of tubes of an air-cooled condenser of claim 1, wherein: the base pipe (1) is made of a bimetal composite material, the outer layer is made of aluminum or alloy aluminum, and the inner layer is made of carbon steel or stainless steel.
8. The single row of tubes of an air-cooled condenser of claim 1, wherein: the snake-shaped fin (2) is connected with the base pipe (1) through brazing.
CN202020714811.9U 2020-05-06 2020-05-06 Single-row pipe of air-cooling condenser Active CN212253724U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202020714811.9U CN212253724U (en) 2020-05-06 2020-05-06 Single-row pipe of air-cooling condenser

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202020714811.9U CN212253724U (en) 2020-05-06 2020-05-06 Single-row pipe of air-cooling condenser

Publications (1)

Publication Number Publication Date
CN212253724U true CN212253724U (en) 2020-12-29

Family

ID=73997800

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202020714811.9U Active CN212253724U (en) 2020-05-06 2020-05-06 Single-row pipe of air-cooling condenser

Country Status (1)

Country Link
CN (1) CN212253724U (en)

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