Information
-
Patent Grant
-
6832875
-
Patent Number
6,832,875
-
Date Filed
Monday, March 10, 200321 years ago
-
Date Issued
Tuesday, December 21, 200419 years ago
-
Inventors
-
Original Assignees
-
Examiners
- Lee; Jong-Suk (James)
- Saldano; Lisa M
-
CPC
-
US Classifications
Field of Search
US
- 405 1951
- 405 210
- 405 203
- 405 207
- 114 264
- 114 74 R
- 114 74 A
- 062 240
- 062 532
-
International Classifications
-
Abstract
A floating plant for liquefying natural gas having a barge provided with a liquefaction plant, member for receiving natural gas and with member for storing and discharging liquefied natural gas. The liquefaction plant involves a heat exchange in which heat is removed when liquefying natural gas is transferred to water. The barge is further provided with a receptacle; an open-ended water intake conduit having an inlet; a connecting conduit extending from the outlet of the water intake conduit to the receptacle; a pump for transporting water from the receptacle to the heat exchanger and a water discharge system for discharging water removed from the heat exchanger. The connecting conduit has the shape of an inverted “U” of which the top is located above the receptacle.
Description
FIELD OF THE INVENTION
The present invention relates to a floating plant for liquefying natural gas, which comprises a barge provided with a liquefaction plant, means for receiving natural gas and with means for storing and discharging liquefied natural gas. The liquefaction plant includes a heat exchanger in which heat is removed when liquefying natural gas is transferred to water.
SUMMARY OF THE INVENTION
It is an object of the present invention to provide a simple system for transporting water to and from the heat exchanger of the liquefaction plant.
To this end the floating plant for liquefying natural gas according to the present invention comprises a barge provided with a liquefaction plant, means for receiving natural gas and with means for storing and discharging liquefied natural gas, which liquefaction plant includes a heat exchanger in which heat removed when liquefying natural gas is transferred to water, which barge is further provided with a receptacle arranged in the barge, an open-ended water intake conduit suspended from the barge having an inlet that is arranged below the receptacle, a connecting conduit extending from the outlet of the water intake conduit to the inlet of the receptacle, a pump for transporting water from the receptacle via a supply conduit to the heat exchanger and a water discharge system for discharging water from the heat exchanger, wherein the connecting conduit has the shape of an inverted ‘U’ of which the top is located above the receptacle.
BRIEF DESCRIPTION OF THE DRAWINGS
The invention will now be described in more detail with reference to the accompanying drawing, which shows a partial longitudinal section of the floating plant for liquefying natural gas according to the present invention.
DETAILED DESCRIPTION OF THE INVENTION
The floating plant for liquefying natural gas comprises a barge
2
provided with a liquefaction plant
3
, with means for receiving natural gas (not shown) and with means for storing and discharging liquefied natural gas (not shown). The barge
2
is floating in water
5
, and the dashed line
10
represents the water line.
The liquefaction plant
3
includes a heat exchanger
12
in which heat removed when liquefying natural gas is transferred to water. It is well known in the art that natural gas is liquefied by indirect heat exchange with evaporating refrigerant in a main heat exchanger. The refrigerant passes through a circuit that includes compression, liquefying and evaporating in the main heat exchanger. The refrigerant that is evaporating in the main heat exchanger is liquefied by means of indirect heat exchange with an evaporating auxiliary refrigerant. The auxiliary refrigerant also passes through a circuit that includes compression, liquefying and evaporating. In order to liquefy the auxiliary refrigerant, it is cooled by means of indirect heat exchange with water in the heat exchanger
12
.
For the sake of clarity no details of the liquefaction plant
3
are shown in the drawing.
Now the path of the cooling water is discussed in detail.
The barge
2
is further provided with a receptacle
20
arranged in the barge
2
below the water line
10
, an open-ended water intake conduit
25
suspended from a platform
26
attached to the barge
2
. The water intake conduit
25
has an inlet
28
that is arranged below the receptacle
20
and an outlet
30
at its upper end, and a connecting conduit
35
extending from the outlet
30
of the water intake conduit
25
to the inlet
36
of the receptacle
20
. The barge
2
is further provided with a pump
40
for transporting water from the receptacle
20
via a supply conduit
41
to the heat exchanger
12
and a water discharge system
45
for discharging water removed from the heat exchanger
12
.
The connecting conduit
35
has the shape of an inverted ‘U’ of which the top
47
is located above the water line
10
.
During normal operation, natural gas is supplied to the liquefaction plant
3
where it is liquefied. The liquefied natural gas is stored in the barge
2
and it can be discharged into a vessel suitable for transporting the liquefied natural gas to shore. Auxiliary refrigerant is cooled in the heat exchanger
12
by indirect heat exchange with water.
The water is supplied to the heat exchanger
12
in the following way. First the water is supplied via the open-ended water intake conduit
25
and the connecting conduit
35
to the receptacle
20
, and from there it is pumped to the heat exchanger
12
. From the heat exchanger
12
the water is discharged through the water discharge system
45
.
In order to start the water flow a siphon is created. This can be done by filling the receptacle
20
with water, and sucking water into the water intake conduit
25
and the connecting conduit
35
by applying a low pressure, P
t
(N/m
2
), preferably vacuum to the top
47
of the connecting conduit
35
. The pressure in the water intake conduit
25
at its inlet end is p
t
+ρgd
t,i
and the pressure at the inlet
36
of the receptacle
20
is p
t
+ρgd
t,r
, wherein ρ is the density of water (kg/m
3
), g is the acceleration of gravity (m/s
2
), d
t,i
is the distance from the top
47
to the inlet
28
(m) and d
t,r
is the distance from the top
47
to the inlet
36
of the receptacle
20
(m). To ensure that the water keeps flowing, d
t,i
has to be larger than d
t,r
. Suitably d
t,i
is between 50 and 100 times d
t,r
. In addition, the distance from the top
47
to the water line
10
must be so selected that the pressure at the top, p
t
=p
0
−ρgd
t,r
≧0, wherein p
0
is atmospheric pressure.
The outlet of the discharge conduit
55
may suitably open at the side of the barge
2
.
Suitably, the water discharge system
45
comprises a passage
50
through the bottom
51
of the barge
2
, a chimney
52
extending from the passage
50
to a level above the water line
10
and a discharge conduit
55
extending from the outlet of heat exchanger
12
into the chimney
52
. The outlet of the discharge conduit
55
opens below the water line
10
.
Suitably, the receptacle
20
is provided with a filter system
60
so arranged that during normal operation water passes through the filter system
60
to the pump
40
. The filter system comprises filter equipment suitable for continuously clarifying water, such as a rotating drum or a cyclone.
In order to be able to lower the pressure in the top
47
of the connecting conduit
35
, at or near its top
47
the connecting conduit
35
is provided with a passage (not shown) provided with a flange, to which flange a conduit (not shown) provided with a valve is removably connected. A vacuum pump can be connected to the open end of the conduit. Moreover, by allowing ambient air to enter the conduit, the flow of water can be stopped. In addition, when the conduit is removed, means for cleaning the intake conduit
25
can be lowered through the passage.
Suitably, the barge
2
further comprises a ballast tank
65
, wherein the ballast tank
65
has an inlet
66
that is connected to the supply conduit
41
by supply conduit
67
and a discharge
68
that is connected to an ejector
70
in the supply conduit
41
.
The cooling requirements of the liquefaction plant may require more than one heat exchanger
12
. The heat exchangers may be arranged in series or in parallel, or in a combination of series and parallel. Each of these heat exchangers may have its own discharge conduit
55
, or there may be a single discharge conduit for two or more heat exchangers.
The amount of water that is needed for cooling may require more than one water intake conduit
25
. Suitably the number of water intake conduits is in the range of from 6 to 8. The water intake conduits are suitably provided with means to suppress vibrations due to the water flowing around the outer surfaces of the conduits.
The barge
2
may contain more than one ballast tank
65
, and each ballast tank may have its own supply conduit
67
and discharge
68
, or there is a supply conduit and a discharge for several ballast tanks.
Claims
- 1. A floating plant for liquefying natural gas comprising a barge provided with a liquefaction plant, means for receiving natural gas and with means for storing and discharging liquefied natural gas, which liquefaction plant includes a heat exchanger in which heat removed when liquefying natural gas is transferred to water, which barge is further provided with a receptacle, an open-ended water intake conduit suspended from the barge having an inlet that is arranged below the receptacle, a connecting conduit extending from an outlet of the water intake conduit to the inlet of the receptacle, a pump for transporting water from the receptacle via a supply conduit to the heat exchanger and a water discharge system for discharging water removed from the heat exchanger, wherein the connecting conduit has an inverted U-shape of which the top is located above the receptacle.
- 2. The barge according to claim 1, wherein the water discharge system comprises a passage through the bottom of the barge, a chimney extending from the passage to a level above the water line and a discharge conduit extending from an outlet of heat exchanger into the chimney, wherein an outlet of the discharge conduit opens below the water line.
- 3. The barge according to claim 2, wherein the receptacle is provided with a filter system so arranged that during normal operation water passes through the filter system to the pump.
- 4. The barge according to claim 3, further comprising a ballast tank, wherein each ballast tank has an inlet that is connected to the supply conduit and a discharge that is connected to an ejector in the supply conduit.
- 5. The barge according to claim 2, wherein at or near its top the connecting conduit is provided with a passage provided with a flange, to which flange a conduit provided with a valve is removably connected.
- 6. The barge according to claim 2, further comprising a ballast tank, wherein each ballast tank has an inlet that is connected to the supply conduit and a discharge that is connected to an ejector in the supply conduit.
- 7. The barge according to claim 1, wherein the receptacle is provided with a filter system so arranged that during normal operation water passes through the filter system to the pump.
- 8. The barge according to claim 7, wherein at or near its top the connecting conduit is provided with a passage provided with a flange, to which flange a conduit provided with a valve is removably connected.
- 9. The barge according to claim 7, further comprising a ballast tank, wherein each ballast tank has an inlet that is connected to the supply conduit and a discharge that is connected to an ejector in the supply conduit.
- 10. The barge according to claim 1, wherein at or near its top the connecting conduit is provided with a passage provided with a flange, to which flange a conduit provided with a valve is removably connected.
- 11. The barge according to claim 10, further comprising a ballast tank, wherein each ballast tank has an inlet that is connected to the supply conduit and a discharge that is connected to an ejector in the supply conduit.
- 12. The barge according to claim 1, further comprising a ballast tank, wherein each ballast tank has an inlet that is connected to the supply conduit and a discharge that is connected to an ejector in the supply conduit.
Priority Claims (1)
Number |
Date |
Country |
Kind |
00307821 |
Sep 2000 |
EP |
|
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/EP01/10561 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO02/21060 |
3/14/2002 |
WO |
A |
US Referenced Citations (6)
Foreign Referenced Citations (6)
Number |
Date |
Country |
0 051 571 |
May 1982 |
EP |
360 140 |
Nov 1931 |
GB |
2 160 925 |
Jan 1986 |
GB |
62 149591 |
Jul 1987 |
JP |
03209098 |
Sep 1991 |
JP |
05032194 |
Feb 1993 |
JP |