| (19) |
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(11) |
EP 0 030 573 B1 |
| (12) |
EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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17.10.1984 Bulletin 1984/42 |
| (22) |
Date of filing: 06.11.1979 |
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| (54) |
Method and apparatus for the heating of underwater equipment
Verfahren und Apparat zum Heizen einer Unterwasserausrüstung
Procédé et appareil pour le chauffage d'un équipement sous-marin
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| (84) |
Designated Contracting States: |
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DE FR IT SE |
| (43) |
Date of publication of application: |
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24.06.1981 Bulletin 1981/25 |
| (71) |
Applicant: Krasberg, Alan |
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Aberdeen AB1 2UU
Scotland (GB) |
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| (72) |
Inventor: |
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- Krasberg, Alan
Aberdeen AB1 2UU
Scotland (GB)
|
| (74) |
Representative: Huskisson, Frank Mackie et al |
|
FITZPATRICKS
4 West Regent Street Glasgow G2 1RS
Scotland Glasgow G2 1RS
Scotland (GB) |
|
| |
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] This invention relates to the heating of underwater equipment such for example as
hot-water diving suits and submersible hulls used in diving operations.
[0002] There exists a need for a simple, safe and efficient autonomous underwater source
of heat for use in heating divers working in the water and/or for use in heating the
interior of submersible hulls such, for example as submarines, submersibles, diving
bells and hyper- baric evacuation chambers. Thus, the comfort and even survival of
an operator for any length of time in the pressurized helium-oxygen atmosphere of
a submerged hull depends on maintaining relatively high gas temperatures, as the thermal
conductivity of this gas is extremely high compared to sea-level air.
[0003] For some time now the heat source used in heating such equipment has been an electrical
battery system. However, with the present increasing use of submersible hulls (so-called
diver lock-out submersibles) as a base for coldwater operations, such a heat source
is quite inadequate for the task. That is, there is at present no satisfactory method
of heating the divers on an autonomous operation, or for maintaining the lock-out
compartment temperature at an adequate level for any length of time if for some reason
the submersible cannot be recovered immediately. As one of these submersibles typically
carries 40 kW-hours of batteries in toto, use of these batteries to heat water to
be passed to the diving suit in the open-circuit technique is obviously not feasible.
Various substitutes have been tried, among them electrically-heated suits and closed-circuit
hot-water suits (sometimes coupled with a heat pump to further increase the efficiency).
These methods have the disadvantage of being complicated and delicate, and the result
is that there is a lowering of output of productive work by the diver.
[0004] There have been proposals to use chemical reactions which liberate heat to warm a
water recirculation system in a diving suit or submersible for example US-A-3583386
which discloses a garment associated with a pump and chemical heater for heating a
recirculating fluid. However, should the chemical reaction proceed too quickly, that
is, under conditions of reaction runaway, excessive temperatures will be reached which
present a hazard to equipment and users. Some of the previously proposed systems have
control over one of the reactants so that as soon as reaction runaway conditions are
noticed, supply of that reactant is cut off. This should prevent these conditions
worsening, however, the contents of the reaction chamber may remain excessively hot
for some time. In addition, an operator of a submersible occupied with a task at an
undersea location may not notice at first conditions of reaction runaway developing
and thus delay shut-down.
[0005] The object of the invention is to provide for the generation of heat underwater in
such a manner that the aforesaid difficulties are obviated or mitigated.
[0006] According to the present invention there is provided a method of providing heat at
an underwater location which utilizes heat generated in a submerged reaction zone
by an exothermic chemical reaction between reactants which produce a gaseous by-product
characterised in that it includes the step of providing valve means which is operable
to control the reaction of allowing escaping reaction gas to draw water into the reaction
zone to cool and dilute the reactants.
[0007] Preferably the reactants are respectively liquid and solid reactants. More preferably
one of the reactants is a metal.
[0008] Most preferably the metal is aluminium and the other reactant is an aqueous solution
of sodium hydroxide, the exothermic reaction being:

[0009] Advantageously the aluminium is in ingot form.
[0010] Said reaction yields about 93 k-cal (389 kJ) of heat per gram molecule, or about
21 kW of heat energy per pound (0.45 kg) of aluminium.
[0011] By virtue of the invention autonomous underwater heat is produced with well over
1-1/2 orders of magnitude more power per unit of volume or mass than is possible with
lead-acid batteries. Thus, suitably sized heat-generating means associated with a
submersible would provide ample heat for hours of open-circuit diving-suit heating,
and also heating backup in the lock-out compartment of the submersible for a considerable
time in the event that a problem arose. Said heat-generating means also of course
frees the usual electric battery system of the submersible for tasks more suitable
for it, such as the driving of motors, pumps and electrical systems.
[0012] Further according to the present invention there is provided submersible apparatus
for use in underwater operations, comprising a hull to house personnel, means for
transferring heat to personnel by means of a fluid heated by heat generating means
associated with the hull including a reaction chamber having therein a reaction zone
for chemical reactants capable of reacting together exothermically and producing a
gaseous by-product; dispensing means connected to the reaction chamber for introducing
reactants to the reaction zone and means for venting the gaseous by-product from the
reaction chamber (US-A-3583 386); and which is characterised in that it includes valve
means through which water may be drawn into the reaction zone by the effect of reaction
gas escaping through the venting means in order to control excess heat production
in the reaction chamber.
[0013] In a preferred apparatus a venting tube extends from the top of the reaction chamber
to discharge into the ambient water, and in the bottom portion of the reaction chamber
there is an aperture which has a disc or valve for opening the aperture at a predetermined
temperature to enable entry of water to the reaction zone or dumping of the contents
on temperature runaway, the water being sucked through the aperture by the "air-lift"
effect of gas exiting through the venting tube.
[0014] Preferably the dispensing means for a liquid reactant include an accumulator of the
separated type adjacent to the reaction zone chamber, one side being connected to
the water supply ducting and the other for the liquid reactant being connected to
the reaction chamber so that pressurised water in the one side compresses the other
to force the liquid reactant into the reaction zone.
[0015] More preferably the accumulator is a jacket and bladder accumulator.
[0016] Preferably also the apparatus includes liquid heating means having a heat exchanger
in the reaction chamber.
[0017] Most preferably the heat-generating means are on the hull exteriorly thereof, and
the heating means include a pump for location in the cold water outside the hull,
supply ducting extending from the pump through the hull interior to the heat-exchanger
inlet, and discharge ducting extending from the heat-exchanger outlet into the hull
interior.
[0018] Preferably also the discharge ducting includes a stand pipe extending upwards from
the heat-generating means and into the hull and connectible at its upper end, to the
upper end of a diver's hose to enable use of the heated water to heat a diving suit.
[0019] The preferred apparatus further includes a branch pipe extending from the supply
ducting in the hull to the hull exterior, and has a valve in the branch pipe to enable
adjustment of the head pressure and water flow through the heating system. Advantageously
this apparatus also has a branch pipe extending from the supply ducting in the hull
to the reaction zone in the reaction chamber and has a valve in the branch pipe to
enable the introduction of cold water to the reaction zone so that the reaction is
dampened and simultaneously combustion products are forced from the reaction chamber
through the venting tube.
[0020] The apparatus may include a water radiator in the hull, a water supply line extending
from the discharge ducting to the radiator inlet, and a water exhaust line extending
from the radiator outlet and through the hull to discharge into the ambient water.
[0021] The water exhaust line may be a heat exchanging helical coil, which encloses a portion
of the supply ducting extending between the hull and the heat-exchanger inlet and
has a heat-insulating housing mounted on the reaction chamber and enclosing the helical
coil.
[0022] Preferably the reaction chamber is of upright generally cylindrical form with the
reaction zone in the lower portion thereof, and the heat exchanger is an upright helical
tube disposed in the chamber above the reaction zone.
[0023] In an equally preferred but modified embodiment of the apparatus of the present invention
the heat generating means are in the interior of the hull, the reaction chamber and
the hull abut one another, and the area of abutment forms a. heat-conductive partition
to enable heat-transfer to the hull interior.
[0024] In this modified embodiment the reaction chamber and the hull may be contained within
a common insulating layer.
[0025] Preferably the reaction heat from the reaction chamber in the modified embodiment
is conducted via the heat conductive partition to a . finned heat exchanger on the
interior surface of the hull.
[0026] Embodiments of the invention will be described by way of example with reference to
the accompanying diagrammatic drawings in which Fig. 1 and Fig. 2 are fragmentary
sectional side views of submersible apparatus for use in coldwater diving operations.
[0027] Referring to Fig. 1 of the drawings:
[0028] The apparatus consists of (a) a hull 1 having therein a diver lock-out compartment
2 with an opening 3 in the floor 4 thereof for passage of a diver fitted with an open-circuit
water-heated diving suit 5 fed by a length of heat-insulated water hose 6 passing
through the opening 3 (b) heat-generating means 7 mounted on the floor 4 of the compartment
2 adjacent to the floor opening 3 and extending exteriorly of the hull 1 and (c) heat-exchanging
means including water tubing 9 extending through the heat-generating means 7 and connected
to the diver's hose 6 and to a hot-water radiator 10 in the compartment 2.
[0029] The heat-generating means 7 include exteriorly of the hull 1 and mounted thereon
a heat-insulated reaction chamber 11 in the form of an upright cylinder with a domed
top end 12 and a domed bottom end 13, ingots 14 of aluminium in a reaction zone 15
formed by the lower end portion of the reaction chamber 11, and a jacket-and-bladder
type accumulator 16 disposed alongside the reaction chamber 11 and connected thereto
to dispense a stored, aqueous solution of sodium hydroxide (47% NaOH) as reactant
by passing same into contact with the aluminium in the reaction zone 1 5, an accumulator
bladder 17 storing the reactant solution and being compressible by pressurized water
fed to an accumulator jacket 18 to force the reactant solution into the reaction zone
15 5 through a tube 40 and a check valve 41. A short, open length of stainless steel
venting tube 19 extends from the top end 12 to release gaseous reaction products from
the reaction chamber 11 into the ambient water W. A large central safety feed-through
opening in the bottom end 13 is closed by a disc 20 which melts at a critical temperature
(in the order of 190°F or 88°C).
[0030] The water tubing 9 of the heat-exchanging means include an upright helical coil 21
of water tubing within the upper portion of the reaction chamber 11 for contact by
the products of combustion rising from the reaction zone 15. The ends of the coil
21 are disposed at the top of the chamber 11, the inlet end 22 of the coil being connected
to one end of a manifold water supply pipe 23 of stainless steel extending within
the compartment 2, and an immersed sea-water pump 24 delivering about 1.7 gal/min
(7.73 I/min) being connected to the other end of the manifold supply pipe 23 through
the floor 4 of the compartment. The outlet end 25 of the coil 21 is connected to the
inlet end of the diver's hose 6 through a heat-insulated stand pipe 26 penetrating
the floor 4 of the compartment 2 and having at the top thereof a shut-off valve 27
controlling the flow to the diver. A branch pipe 28 with a needle valve 29 therein
connects the top of the stand pipe 26 to the radiator 10 within the compartment 2,
and a heat-exchanging outlet pipe 31 from the radiator 10 is coiled around an exterior
downstream end portion of the manifold pipe 23 to transfer heat to the entering water,
and discharges into the ambient water W, the coiled outlet pipe 31 being enclosed
by an insulating housing 32 mounted on the chamber 11 exteriorly thereof and capable
of withstanding external pressure. The manifold pipe 23 has three valve-controlled
branch pipes opening therefrom the first 33 extending through the floor 4 into the
ambient water W and having therein a by-pass valve 43 to provide for adjustment of
head pressure and flow through the system, the second 34 extending through the floor
4 to the bottom of the reaction chamber 11 to discharge water into the reaction zone
15, through a check valve 42 and thereby dampen the reaction, and the third 35 extending
through the floor 4 to the top of the accumulator jacket 18 to control a small flow
of water to the jacket. A pressure gauge 36 on the manifold pipe 23 indicates the
pressure head, while a temperature gauge 37 at the top of the stand pipe 26 indicates
the water output temperature.
[0031] In operation of the submerged apparatus, ambient sea water continually flows through
the manifold pipe 23 and the coil 21, picking up combustion heat in the reaction chamber
11. The heat is generated by the reaction of Al, H
20 and NaOH. A small amount of water is tapped off from the manifold 23 through a needle
valve 38 in the third branch pipe 35 to control the flow of NaOH into the reaction
chamber 11. An important point is that the NaOH flow and the water flow through the
manifold pipe 23 and the coil 21 are both subject to the same head pressure, so that
first order effects which would change the water output temperature at the stand pipe
26 are avoided. Also, if the pump 24 fails, the flow of caustic soda into the reaction
chamber 11 automatically stops. Hot water passes through the water hose 6 to the diver's
suit 5 to heat the diver, and also passes through the radiator 10 which heats the
compartment 2.
[0032] If the reaction temperature increases unduly, it can be brought under control by
opening an on-off valve 39 in the second branch pipe 34 so as to dump cold water into
the reaction chamber 11 and force hot water, NaOH, H
2 and NaAI0
2 out through the venting tube 19. Said on-off valve 39 is also used to shut the reaction
down at the end of a dive and before the submersible leaves the water.
[0033] The disc 20 closing the bottom safety opening acts as the final safety device on
temperature runaway. Upon melting of the disc 20, sea water is sucked through the
opening by the "air-lift" effect of hydrogen gas exiting at the top of the chamber
11, and quickly damps the runaway reaction. A large open ball valve (not shown) may
be provided at the outside of the disc 20 to enable the reaction to be restarted if
necessary. Alternatively, extra discs may be provided.
[0034] The reaction used in this embodiment is:

yielding about 93 k cal (389 kJ) of heat per gram-molecule, or about 2-1/2 kW of heat
energy per pound (0.45 kg) of aluminium. The reaction chamber 11 holds nine three-kilo
and two one-kilo ingots 14, giving a total of 29 kilos or 63.8 Ibs of aluminium. The
accumulator 16 is sized accordingly plus a 20% overage. This arrangement delivers
nearly 160 kW-hours of heat energy, but with insulation and heat-exchanger losses,
this reduces to something over 150 kW-hours of usable energy. In the North Sea, 18
kW is enough to provide a minimum comfortable flow of warm water to a diver, and 1
kW is about the amount needed to maintain a suitable ambient temperature in the diver
lock-out compartment. Thus the 150 kW of this embodiment is enough to heat the compartment
for the normal 8-hour mission duration, plus 6 hours of diver lock-out time, plus
1-1/2 days of emergency of heating capability (including the heat production of the
divers themselves).
[0035] Advantageous features of this embodiment are:
(a) The venting tube 19 at the top of the reaction chamber 11 vents the hydrogen gas,
and at the same time restricts the interchange of caustic soda and sea-water,
(b) The safety disc 20 at the bottom end 13 of the reaction chamber 11, when combined
with (a) above, results in an airlift sucking-in seawater when the disc fails, or
a dumping of liquids through the bottom end if the submersible is out of the water.
(c) The coupling together of the head pressures on (i) the water flow through the
coil 21 in the reaction chamber 11 and (ii) the flow of caustic soda into the reaction
chamber, resulting in an automatic coupling together of heat supply and demand.
(d) The manual over-ride and shutdown feature of the valve in the second branch pipe
34.
(e) The use of surrounding water to dampen the reaction in the event that the reaction
temperature is too high.
(f) In the event of clogging of the system by reaction products (NaAI02), water may be introduced by the valve 39 in the second branch pipe 34 to dissolve
the highly soluble NaAI02 and force it out through the venting tube 19. In that case, the venting tube 19 is
made larger, is insulated, and is concentric around the stand pipe 26 for a few feet
adjacent to the reaction chamber 11, so as to act as an exchanger which puts the heat
taken out in the venting tube 19 ` back into the circuit.
[0036] For circumstances where the system is primarily required to provide emergency heat
in a hull it is possible to omit altogether the source of electrical power from the
hull.
[0037] Thus a second embodiment of the invention, referring now to Fig. 2, the apparatus
consists of (a) a submersible vessel hull 1 having therein a diver lock-out compartment
2 with an opening 3 in the floor 4 thereof for passage of a diver, (b) heat generating
means 45 mounted exteriorly on the hull, and (c) heat exchanging means including a
system of fins 46 mounted interiorly on the hull, to provide radiative and convective
transfer of heat from the heat generating means 45 to the compartment 2 by means of
a heat-conductive intermediate partition 47 between the heat generating means 45 and
the fins 46. The heat-generating means 45 include exteriorly of the hull 1 and mounted
thereon a heat insulated reaction chamber 48, the top of which is provided with an
upright venting tube 49 to release gaseous reaction products from the reaction chamber
48 into the ambient water W.
[0038] A central feed-through aperture 50 in the bottom is closed by a disc 51 which melts
at a critical temperature (in the order of 190°F or 88°C). A wire screen 55 covers
the aperture 50 and the disc 51. A caustic soda accumulator (not shown) is provided
as in the first embodiment and caustic soda is driven to a reaction zone 52 containing
aluminium ingots 53 by a hand crank (not shown) interior of the hull, operating a
peristaltic pump (not shown) on the exterior of the hull 1 to pump sea water into
the caustic soda accumulator as before. Heat insulating material 54 envelops the hull
1 and heat generating means 45.
[0039] Heat transfer is thus direct rather than via water and heat exchangers. For fine
temperature control in the hull, removable insulation panels (not shown) may be used
to lower the transfer of heat, and of course more caustic soda is added to increase
the heating effect.
[0040] In place of the safety disc of the reaction chamber a snap-action bi-metallic element
may be used which automatically reseats upon cooling of the reaction zone.
[0041] In this way the apparatus may be used as an emergency heater capable of supplying
heat for several days as required but requiring no electricity for operation.
[0042] By combining the apparatus of the first and second embodiments to form a composite
apparatus, the temperature of the atmosphere in the compartment 2 may be controlled
by covering and uncovering the fins 45 (Fig. 2) to vary the convective exchange, whilst
the temperature in the reaction chamber 41 (Fig. 1) is controlled to suit the needs
of the diver(s).
1. A method of providing heat at an underwater location which utilizes heat generated
in a submerged reaction zone (15) by an exothermic chemical reaction between reactants
which produce a gaseous by-product, characterised in that it includes the step of
providing valve means which is operable to control the reaction by allowing escaping
reaction gas to draw water into the reaction zone to cool and dilute the reactants.
2. A method according to claim 1, wherein the reactants are respectively liquid and
solid reactants.
3. A method according to claim 2, wherein one of the reactants is a metal.
4. A method according to claim 3, wherein the metal is aluminium and the other reactant
is an aqueous solution of sodium hydroxide, the exothermic reaction being
5. A method according to claim 4, wherein the aluminium is in ingot form.
6. Submersible apparatus for use in underwater operations, comprising a hull (1) to
house personnel, means (21, 26, 27, 6) for transferring heat to personnel by means
of a fluid heated by heat generating means (7; 45) associated with the hull (1) including
a reaction chamber (11; 48) having therein a reaction zone (15; 52) for chemical reactants
capable of reacting together exothermically and producing a gaseous by-product; dispensing
means (16) connected to the reaction chamber (11) for introducing reactants to the
reaction zone (15) and means (19; 49) for venting the gaseous by-product from the
reaction chamber (11; 48); and which is characterised in that it includes valve means
(20, 39; 51) through which water may be drawn into the reaction zone (15) by the effect
of reaction gas escaping through the venting means (19; 49) in order to control excess
heat production in the reaction chamber (11; 48).
7. Apparatus according to claim 6 wherein the venting means (19; 49) is a venting
tube (19; 49) extending from the top (12) of the reaction chamber (11; 48) to discharge
gas into the ambient water.
8. Apparatus according to claim 7, wherein the valve means (20; 51) comprises an aperture
in the bottom portion (13; 50) of the reaction chamber (11; 48) and has therein a
valve member (20; 51) for opening the aperture (13; 50) at a predetermined temperature
to enable entry of water to the reaction zone (15) or dumping of the contents on reaction
runaway, the water being sucked through the aperture (13; 50) by the effect of reaction
gas escaping through the venting tube (19; 49).
9. Apparatus according to claim 8 wherein the valve member (20; 51) is a metal disc
(20; 51) whose melting point is below a predetermined danger level of temperature
liable to be reached under conditions of reaction runaway.
10. Apparatus according to claim 9 wherein a large open ball valve is provided at
the outside of the disc (20; 51) to enable the reaction to be restarted.
11. Apparatus according to any one of claims 6 to 10 wherein the dispensing means
(16) for introducing reactants includes, for introducing a liquid reactant, an accumulator
(16) of the separated type adjacent to the reaction chamber (11), which accumulator
(16) has one side connected to water supply ducting (35) and the other connected to
the reaction chamber (11) so that pressure of water supplied to one side forces liquid
reactant by compression out the other into the reaction zone (15).
12. Apparatus according to claim 11 wherein the accumulator (16) is a jacket (18)
and bladder (17) accumulator (16).
13. Apparatus according to any one of claims 6 to 12 including liquid heating means
(9) having a heat exchanger (21) in the reaction chamber (11).
14. Apparatus according to claim 13, wherein the heat generating means (7) are on
the hull (1) exteriorly thereof and the heating means (9) include means for supplying
water under greater than ambient pressure through the heat exchanger (21) to the hull
(1) interior.
15. Apparatus according to claim 14, wherein the heating means (9) include a pump
(24) for location in the cold water outside the hull (1), supply ducting (23) extending
from the pump (24) through the hull interior to the heat exchanger inlet, and discharge
ducting (25) extending from the heat-exchanger outlet into the hull interior.
16. Apparatus according to claim 15, wherein the discharge ducting (25) includes a
stand pipe (26) extending upwards from the heat-generating means (7) and into the
hull (1) and connectible at its upper end to the upper end of a diver's hose (6) to
enable use of the heated water to heat a diving suit (5).
17. Apparatus according to claim 15 or 16, wherein a branch pipe (33) extends from
the supply ducting (23) in the hull (1) to the hull exterior, and a valve (43) is
provided in the branch pipe (33) to enable adjustment of the head pressure and water
flow through the heating system.
18. Apparatus according to any one of claims 15 to 17, wherein a branch pipe (34)
extends from the supply ducting (23) in the hull (1) to the reaction zone (15) in
the reaction chamber (11), and a valve (39) is provided in the branch pipe (34) to
enable the introduction of cold water to the reaction zone (15) so that the reaction
is dampened and simultaneously reaction products are forced from the reaction chamber
(11) through the venting tube (19). 19. Apparatus according to any one of claims 15
to 18, including a water radiator (10) in the hull, a water supply line (28) extending
from the discharge ducting (25) to the radiator inlet, and a water exhaust line (31)
extending from the radiator outlet and through the hull (1) to discharge into the
ambient water.
20. Apparatus according to claim 19, wherein the water exhaust line (31) comprises
a heat-exchanging helical coil (31) enclosing a portion of the supply ducting (23)
extending between the hull (1) and the heat-exchanger (21) inlet and has a heat-insulating
housing (32) mounted on the reaction chamber (11) and enclosing the helical coil (31).
21. Apparatus according to any one of claims 13 to 20, wherein the reaction chamber
(11) is of upright generally cylindrical form with the reaction zone (15) in the lower
portion (13) thereof, and the heat exchanger (21) is an upright helical tube (21)
disposed in the chamber (11) above the reaction zone (15).
22. Apparatus according to any one of claims 6 to 12, wherein the heat generating
means (7) are in the interior of the hull (1).
23. Apparatus according to any one of claims 6 to 10, wherein the reaction chamber
(48) and the hull (1) abut one another, and the area of abutment forms a heat-conductive
partition (47) to enable heat-transfer to the hull interior.
24. Apparatus according to claim 23, wherein the reaction chamber (48) and the hull
(1) are contained within a common insulating layer (54).
25. Apparatus according to claim 23 or 24, wherein reaction heat from the reaction
chamber (48) is conducted via the heat-conductive partition (47) to a finned heat
exchanger (46) on the interior surface of the hull (1).
1. Méthode pour fournir de la chaleur en un emplacement sous l'eau, utilisant la chaleur
dégagée dans une zone submergée de réaction (15) par une réaction chimique exothermique
entre réactants qui produisent un sous-produit gazeux, caractérisée en ce qu'elle
comporte un stade consistant à prévoir des organes servant de valve, que l'on peut
manoeuvrer pour régler la réaction en permettant aux gaz qu'elle a créés et qui s'échappent
d'entraîner de l'eau dans la zone de réaction afin de refroidir et de diluer les réactants.
2. Méthode selon la revendication 1, dans laquelle les réactants sont respectivement
un réactant liquide et un réactant solide.
3. Méthode selon la revendication 2, dans laquelle un des réactants est un métal.
4. Méthode selon la réaction 3, dans laquelle le métal est l'aluminium, l'autre réactant
étant une solution aqueuse d'hydroxyde de sodium, la réaction exothermique étant:
5. Méthode selon la revendication 4, dans laquelle l'aluminium est sous forme de lingots.
6. Appareil submersible pour être utilisé dans des opérations sous l'eau, comprenant
une coque (1) destinée à abriter le personnel, des organes (21, 26, 27, 6) destinés
à transférer de la chaleur au personnel au moyen d'un fluide chauffé par des organes
générateurs de chaleur (7; 45) associés à la coque (1) et comprenant une chambre de
réaction (11; 48) qui contient une zone de réaction (15, 52) recevant des réactants
chimiques capables de réagir entre eux exothermiquement et de produire un sous-produit
gazeux; des organes distributeurs (16) reliés à la chambre de réaction (11) et destinés
à introduire des réactants dans la zone de réaction (15) et des organes (19, 49) de
misé à l'évent, destinés à permettre au produit gazeux de s'échapper de la chambre
de réaction (11, 48); appareil caractérisé en ce qu'il comprend des organes servant
de valve (20, 39; 51) au travers desquels de l'eau peut être entraînée dans la zone
de réaction (1 5) par l'effet des gaz de la réaction qui s'échappent par les organes
(19; 49) de mise à l'évent à l'effet de maîtriser une production excessive de chaleur
dans la chambre de réaction (11, 48).
7. Appareil selon la revendication 6, dans lequel les organes de mise à l'évent (19;
49) sont constitués par un tube de mise à l'évent (19; 49) partant du sommet (12)
de la chambre de réaction (11; 48) à l'effet de laisser s'échapper du gaz dans l'eau
ambiante.
8. Appareil selon la revendication 7, dans lequel les organes servant de valve (20;
51) comprennent une ouverture pratiquée dans la région inférieure (13; 50) de la chambre
de réaction (11; 48) et contenant un organe servant de valve (20; 51) destiné à ouvrir
l'ouverture (13; 50) à une température prédéterminée afin de permettre l'entrée d'eau
dans la zone de réaction (15), ou à déverser le contenu de cette zone, au cas où la
réaction s'emballe, l'eau étant aspirée au travers de l'ouverture (13, 50) par les
gaz de réaction s'échappant par le tube de mise à l'évent (19; 49).
9. Appareil selon la revendication 8, dans lequel l'organe servant de valve (20; 51
) est un disque (20; 51) fait d'un métal dont le point de fusion est inférieur à un
niveau prédéterminé de température dangereuse, capable d'être atteint au. cas où la
réaction s'emballe.
10. Appareil selon la revendication 9, dans lequel une grande valve à bille, normalement
ouverte, est prévue à l'extérieur du disque (20; 51) à l'effet de permettre de faire
repartir la réaction.
11. Appareil selon une quelconque des revendications 6 à 10, dans lequel les organes
distributeurs (16) destinés à introduire des réactants comprennent, pour l'introduction
d'un réactant liquide, un accumulateur (16) du type à fluides séparés, adjacent à
la chambre de réaction (11), ledit accumulateur (16) étant relié d'un premier côté
à la canalisation d'alimentation en eau (35) et d'un autre côté à la chambre de réaction
(11) de sorte que la pression de l'eau fournie audit premier côté force, par compression,
le réactant liquide à sortir par l'autre côté pour entrer dans la zone de réaction
(1 5).
12. Appareil selon la revendication 11, dans lequel l'accumulateur (16) est un accumulateur
à récipient (18) et vessie (17).
13. Appareil selon une quelconque des revendications 6 à 12, et comprenant des organes
(9) destinés à chauffer un liquide et possédant un échangeur de chaleur (21) situé
dans la chambre de réaction (11).
14. Appareil selon la revendication 13, dans lequel les organes générateurs de chaleur
(7) sont montés sur la coque, à l'extérieur de celle-ci, et les organes de chauffage
(9) comprennent des organes destinés à fournir de l'eau, sous une pression supérieure
à la pression ambiante, à l'intérieur de la coque (1) par l'intermédiaire de l'échangeur
de chaleur (21).
15. Appareil selon la revendication (14), dans lequel les organes de chauffage (9)
comprennent une pompe (24) destinée à être placée dans l'eau froide, à l'extérieur
de la coque (1), une canalisation d'alimentation (23) partant de la pompe (24) et
passant par l'intérieur de la coque pour arriver à l'entrée de l'échangeur de chaleur,
et une canalisation de refoulement (25) allant de la sortie de l'échangeur de chaleur
à l'intérieur de la coque.
16. Appareil selon la revendication 15, dans lequel la canalisation de refoulement
(25) comprend un tube ascendant, allant vers le haut à partir des organes générateurs
de chaleur, et pénétrant dans la coque, et pouvant, à son extrémité supérieure, être
relié à l'extrémité supérieure d'un tuyau souple de plongeur (6), afin de permettre
d'utiliser l'eau chauffée pour réchauffer un vêtement de plongée (5).
17. Appareil selon la revendication 15 ou la revendication 16, dans lequel un tube
dérivé (33) part de la canalisation d'alimentation (23), à l'intérieur de la coque
(1), pour arriver à l'extérieur de la coque, une valve (43) étant prévue sur le tube
dérivé (33) pour permettre de régler la pression en tête du système de chauffage et
le débit de l'eau par ledit système.
18. Appareil selon une quelconque des revendications 15 à 17, dans lequel un tube
dérivé (34) part de la canalisation d'alimentation (23), à l'intérieur de la coque
(1) pour arriver à la zone de réaction (15), à l'intérieur de la chambre de réaction
(11), une valve (39) étant prévue sur le tube dérivé (34) pour permettre d'introduire
de l'eau froide dans la chambre de réaction (15) de façon que la réaction soit freinée,
les produits de la réaction étant simultanément forcés à sortir de la chambre de réaction
(11) par le tube de mise à l'évent (19).
19. Appareil selon une quelconque des revendications 15 à 18, comprenant un radiateur
à eau (10) situé dans la coque, une ligne d'alimentation en eau (28) partant de la
canalisation de refoulement (25) et allant à l'entrée du radiateur, et une ligne d'échappement
d'eau (31) partant de la sortie du radiateur, et traversant la coque (1) pour se décharger
dans l'eau ambiante.
20. Appareil selon la revendication (19), dans lequel la ligne d'échappement d'eau
(31) comprend un serpentin hélicoïdal (31) échangeur de chaleur qui entoure une portion
de la canalisation d'alimentation comprise entre la coque (1) l'entrée de l'échangeur
de chaleur (21) et possède un carter calorifugé (32) monté sur la chambre de réaction
(11) et renfermant le serpentin hélicoïdal (31 ).
21. Appareil selon une quelconque des revendications 13 à 20, dans lequel la chambre
de réaction (11) a la forme générale d'un cylindre vertical, la zone de réaction (15)
étant dans la région inférieure (13) de ladite chambre, l'échangeur de chaleur (21)
étant un tube hélicoïdal vertical disposé dans la chambre (11) au-dessus de la zone
de réaction (15).
22. Appareil selon une quelconque des revendications 6 à 12, dans lequel les organes
générateurs de chaleur (7) sont dans la coque (1).
23. Appareil selon une quelconque des revendications 6 à 10, dans lequel la chambre
de réaction (48) et la coque (1) s'aboutent, la zone d'aboutement formant une cloison
(47) perméable à la chaleur, à l'effet de permettre le transfert de la chaleur vers
l'intérieur de la coque.
24. Appareil selon la revendication 23, dans lequel la chambre de réaction (48) et
la coque (1) sont renfermées dans une couche isolante commune (54).
25. Appareil selon la revendication 23 ou la revendication 24, dans lequel la chaleur
de réaction venant de la chambre de réaction (48) est conduite, par l'intermédiaire
de la cloison perméable à la chaleur (47), à un échangeur de chaleur à ailettes (46)
placé sur la surface intérieure de la coque (1).
1. Verfahren zum Heizen einer Unterwasserstelle, das Wärme benutzt, die in einer untergetauchten
Reaktionszone (15) durch eine exotherme chemische Reaktion zwischen Reaktionsteilnehmern
entsteht, die ein gasförmiges Nebenprodukt erzeugen, dadurch gekennzeichnet, daß es
ein Ventilmittel vorsieht, dessen Betätigung die Reaktion dadurch steuert, daß sie
entweichendem Reaktionsgas ermöglicht, Wasser in die Reaktionszone zu ziehen, um die
Reaktionsteilnehmer zu kühlen und zu verdünnen.
2. Verfahren nach Anspruch 1, bei dem die Reaktionsteilnehmer flüssige bzw. feste
Reaktanten sind.
3. Verfahren nach Anspruch 2, bei dem einer der Reaktionsteilnehmer ein Metall ist.
4. Verfahren nach Anspruch 3, bei dem das Metall Aluminium ist und der andere Reaktionsteilnehmer
aus einer wässrigen Lösung aus Natriumhydroxid besteht, mit der exothermen Reaktion
5. Verfahren nach Anspruch 4, bei dem das Aluminium in Blockform vorliegt.
6. Tauchfähige Vorrichtung zum Unterwasserbetrieb mit einem Rumpf (1) zur Unterbringung
einer Besatzung; Mitteln (21, 26, 27, 6) zur Übertragung von Wärme zu der Besatzung
mit Hilfe eines Fluids, das von dem Rumpf (1) zugeordneten Wärmeerzeugermitteln (7;
45) aufgeheizt wird, die eine Reaktionskammer (11; 48) aufweisen, in der sich eine
Reaktionszone (15; 52) für chemische Reaktionsteilnehmer befindet, die exotherm miteinander
reagieren und ein gasförmiges Nebenprodukt erzeugen können; mit einem an die Reaktionskammer
(11) angeschlossenen Spender (16) zur Einführung von Reaktionsteilnehmern in die Reaktionszone
(15) und mit einem Mittel (19; 49) zum Ablassen des gasförmigen Nebenproduktes aus
der Reaktionskammer (11; 48), dadurch gekennzeichnet, daß sie Ventilmittel (20; 39;
51) aufweist, durch die unter dem Einfluß von durch das Ablaßmittel (19; 49) entweichendem
Reaktionsgas Wasser in die Reaktionszone (15) hineingezogen werden kann, um überschüssige
Wärmeerzeugung in der Reaktionskammer (11; 48) zu steuern.
7. Vorrichtung nach Anspruch 6, bei der das Ablaßmittel (19; 49) ein Entlüftungsrohr
(19; 49) ist, das von dem Oberteil (12) der Reaktionskammer (11; 48) ausgeht, um Gas
in das Umgebungswasser abzulassen.
8. Vorrichtung nach Anspruch 7, bei der das Ventilmittel (20; 51) in dem Unterteil
(13; 50) der Reaktionskammer (11; 48) eine Öffnung aufweist, in der ein Ventilorgan
(20; 51) angeordnet ist, das die Öffnung (13; 50) bei einer vorbestimmten Temperatur
öffnet, damit Wasser in die Reaktionszone (15) eintreten oder bei Durchgehen der Reaktion
der Inhalt abgelassen werden kann, wobei das Wasser unter der Wirkung des durch das
Entlüftungsrohr (19; 49) entweichenden Reaktionsgases durch die Öffnung (13; 50) eingesaugt
wird.
9. Vorrichtung nach Anspruch 8, bei der das Ventilorgan (20; 51) eine Metallscheibe
(20; 51) ist, deren Schemlzpunkt unter einem vorbestimmten Temperatur-Gefahrenniveau
liegt, das unter Bedingungen des Durchgehens der Reaktion erreicht wird.
10. Vorrichtung nach Anspruch 9, bei der zur Ermöglichung des Wiederbeginns der Reaktion
an der Außenseite der Scheibe (20; 51) ein großes offenes Kugelventil angeordnet ist.
11. Vorrichtung nach einem der Ansprüche 6 bis 10, bei der der Spender (16) zur Einführung
von Reaktionsteilnehmern zur Einführung eines flüssigen Reaktionsteilnehmers in der
Nähe der Reaktionskammer (11) einen unterteilten Speicher (16) aufweist, dessen eine
Seite an eine Wasserversorgungsleitung (35) angeschlossen ist und dessen andere Seite
mit der Reaktionskammer (11) in Verbindung steht, so daß der Druck des der einen Seite
zugeführten Wassers durch Kompression flüssigen Reaktionsteilnehmer aus der anderen
Seite in die Reaktionszone (15) drängt.
12. Vorrichtung nach Anspruch 11, bei dem der Speicher (16) ein Gehäuse-(18) und-Blasen-(17)
Speicher (16) ist.
13. Vorrichtung nach einem der Ansprüche 6 bis 12 mit einer Flüssigkeits-Heizvorrichtung
(9), die einen Wärmeaustauscher (21) in der Reaktionskammer (11) aufweist.
14. Vorrichtung nach Anspruch 13, bei der die Wärmeerzeugermittel (7) auf der Außenseite
des Rumpfes (1) angeordnet sind und die Heizvorrichtung (9) Mittel aufweist, die dem
Inneren des Rumpfes (1) durch den Wärmeaustauscher (21) Wasser zuführen, dessen Druck
höher ist als der Umgebungsdruck.
15. Vorrichtung nach Anspruch 14, bei der die Heizvorrichtung (9) eine Pumpe (24)
zur Anbringung in dem kalten Wasser außerhalb des Rumpfes (1), eine von der Pumpe
(24) durch das Rumpfinnere zu dem Wärmeaustauschereinlaß verlaufende Zuführungsleitung
(23) und eine von dem Wärmeaustauscherauslaß in das Rumpfinnere verlaufende Abführungsleitung
(25) aufweist.
16. Vorrichtung nach Anspruch 15, bei der die Abführungsleitung (25) ein Standrohr
(26) aufweist, das von den Wärmeerzeugermitteln (7) nach oben und in den Rumpf (1)
ragt und das an seinem oberen Ende an das obere Ende eines Taucherschlauches (6) anschließbar
ist, um einen Taucheranzug (5) mit dem erwärmten Wasser heizen.zu können.
17. Vorrichtung nach Anspruch 15 oder 16, bei der von der Zuführungsleitung (23) in
dem Rumpf (1) zu dem Rumpfäußeren eine Abzweigrohrleitung (33) verläuft, in der ein
Ventil (43) vorgesehen ist, das eine Einstellung des Kopfdruckes und der Wasserströmung
durch das Heizsystem ermöglicht.
18. Vorrichtung nach einem der Ansprüche 15 bis 17, bei der von der Zuführungsleitung
(2.3) in dem Rumpf (1) zu der Reaktionszone (15) in der Reaktionskammer (11) eine
Abzweigrohrleitung (34) verläuft, in der ein Ventil (39) vorgesehen ist, das die Einführung
von kaltem Wasser in die Reaktionszone (1 5) ermöglicht, so daß die Reaktion gedämpft
und gleichzeitig Reaktionsprodukte durch das Entlüftungsrohr (19) aus der Reaktionskammer
(11) herausgedrängt werden.
19. Vorrichtung nach einem der Ansprüche 15 bis 18 mit einem Wasserradiator (10) in
dem Rumpf, einer von der Abführungsleitung (25) zu dem Radiatoreinlaß verlaufenden
Wasserzuflußleitung (28) und einer von dem Radiatorauslaß durch den Rumpf (1) verlaufenden
Wasserabflußleitung (31) zum Ausstoß in das Umgebungswasser.
20. Vorrichtung nach Anspruch 19, bei der die Wasserabflußleitung (31) eine wärmeaustauschende
Schraubenwendel (31) aufweist, die einen zwischen dem Rumpf (1) und dem Einlaß des
Wärmeaustauschers (21) verlaufenden Teil der Zuführungsleitung (23) umgibt und bei
der ein wärmeisolierendes Gehäuse (32) vorgesehen ist, das auf der Reaktionskammer
(11) angeordnet ist und die Schraubenwendel (31) umschließt.
21. Vorrichtung nach einem der Ansprüche 13 bis 20, bei der die Reaktionskammer (11)
stehende, im wesentlichen zylindrische Form aufweist und die Reaktionszone (15) sich
in dem unteren Teil (13) derselben befindet und bei der der Wärmeaustauscher (21)
ein stehendes schraubenförmiges Rohr (21) ist, das in der Kammer (11) über der Reaktionszone
(15) angeordnet ist.
22. Vorrichtung nach einem der Ansprüche 6 bis 12, bei der die Wärmeerzeugermittel
(7) sich im Inneren des Rumpfes (1) befinden.
23. Vorrichtung nach einem der Ansprüche 6 bis 10, bei der die Reaktionskammer (48)
und der Rumpf (1) aneinander angrenzen und der Grenzbereich zur Ermöglichung des Wärmeüberganges
zu dem Rumpfinneren eine wärmeleitende Scheidewand (47) bildet.
24. Vorrichtung nach Anspruch 23, bei der die Reaktionskammer (48) und der Rumpf (1)
in einem gemeinsamen Isoliermantel (54) untergebracht sind.
25. Vorrichtung nach Anspruch 23 oder 24, bei der Reaktionswärme von der Reaktionskammer
(48) über die wärmeleitende Scheidewand (47) zu einem gerippten Wärmeaustauscher (46)
auf der Innenfläche des Rumpfes (1) geleitet wird.

