System for online conversion of sodium source into heat energy and hydrogen

By setting up a sodium reaction baffle and condenser in the sodium energy release system, the reaction between sodium and low-concentration water vapor is controlled, solving the equipment corrosion problem caused by high-temperature and high-concentration water vapor, and achieving the effect of efficiently converting sodium energy into heat energy and hydrogen.

WO2026113883A1PCT designated stage Publication Date: 2026-06-04SODIUM SOURCE (DALIAN) TECHNOLOGY CO LTD

Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
SODIUM SOURCE (DALIAN) TECHNOLOGY CO LTD
Filing Date
2025-11-07
Publication Date
2026-06-04

AI Technical Summary

Technical Problem

In existing sodium energy release systems, the high temperature and high concentration of water vapor cause sodium hydroxide aerogel diffusion corrosion of the equipment, increasing operating costs and slowing down the reaction rate, making it difficult to achieve efficient sodium energy release.

Method used

The design incorporates a sodium reaction baffle and a condenser to control the reaction between sodium and low-concentration water vapor. The sodium surface coating is separated through a sodium hydroxide solution channel, and the reaction temperature is adjusted to be below 300℃ to ensure complete reaction and prevent equipment corrosion.

Benefits of technology

This technology enables the efficient conversion of sodium energy into heat and hydrogen, reducing operating costs and improving reaction efficiency and equipment durability.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed in the present invention is a system for online conversion of a sodium source into heat energy and hydrogen. A pipe orifice of a sodium injection pipe is arranged in the upper end of a reactor, a sodium reaction baffle is arranged below the pipe orifice, and a sodium hydroxide solution channel is arranged on the sodium reaction baffle, or a sodium hydroxide solution channel is arranged between the sodium reaction baffle and a side wall of the reactor. The speed of input water vapor is controlled, so as to maintain the concentration of the water vapor in the reactor within a relatively low range, and the highest temperature in the reactor is controlled to be less than 300ºC by adjusting a sodium injection one-way valve or / and adjusting a water vapor injection one-way valve or / and adjusting the heat exchange amount of a condenser, such that sodium combustion caused by an overly-high temperature is avoided, and corrosion to a device caused by high-temperature substances is effectively relieved. The arranged sodium reaction baffle can enable a sodium hydroxide solution coating layer having a high density and a low viscosity to be separated from sodium, such that the surface of sodium is exposed, thereby realizing rapid oxidation of sodium and low-concentration water vapor and maintaining a relatively high level of efficiency in terms of productivity.
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Description

A system for online conversion of sodium source into heat and hydrogen. Technical Field

[0001] This invention relates to an energy generation system, and more particularly to a system for online conversion of sodium source into heat energy and hydrogen. Background Technology

[0002] Energy is the material foundation for human society, economy, and technological development. Building an efficient, low-carbon renewable energy system is the fundamental way to solve the dual crises of global energy depletion and environmental pollution. Therefore, environmentally friendly energy sources such as hydropower, wind power, photovoltaic power, and hydrogen energy are developing rapidly. However, while accelerating the development and utilization of clean energy, hydropower, wind power, and photovoltaic power generation face problems such as difficulties in storage, transmission, and consumption. Ultra-long-duration energy storage is an important technology for achieving carbon neutrality. It can transfer energy across seasons and ensure power supply during extreme weather, improving the efficiency of renewable energy development. However, existing long-duration energy storage technologies have short operating times, small capacities, and high operating costs, hindering large-scale application.

[0003] Low-cost, ultra-long-term sodium energy storage is a key technology for achieving carbon neutrality (renewable energy exceeding 60%) and addressing the mismatch between the large-scale supply of renewable energy and the spatial and temporal demand for electricity. This technology can decouple economic development from carbon emissions, promote the transformation and upgrading of the new energy industry, and has a market prospect worth trillions. Sodium energy storage is characterized by minimal emissions, minimal materials, and the simplest process, possessing disruptive technological potential. Renewable energy is converted into electricity, which is then electrolyzed to produce sodium. Sodium is stored in sealed containers as a long-term energy reserve, unaffected by humidity and the ambient atmosphere; or it can be transported to areas that need energy to release it. Hydrogen and sodium hydroxide can be flexibly applied in different scenarios, such as as basic chemical raw materials or for energy storage recycling. This overcomes the bottleneck of large-scale renewable energy development and alleviates the pressure and risks of long-distance energy transmission. The technologies for sodium production, storage, and transportation are very mature. The most critical issue to be addressed now is ensuring the safe reaction of highly reducing sodium with water and the stable release of energy.

[0004] Based on the chemical reaction mechanism, sodium has strong reducing properties and can react rapidly with water vapor; 2 moles of water vapor react with sodium to produce 1 mole of hydrogen gas. Since the number of gas molecules in the system decreases, as long as the reaction rate is controlled and the generated heat is conducted away in a timely manner, the sodium can be safely released. Chinese invention patent application No. 202311443501.2 discloses "a system for online conversion of sodium source into heat energy and hydrogen," and the technical solution described is as follows: A closed reactor is provided, with an alkali discharge pipe at the bottom of the reactor and a discharge valve on the alkali discharge pipe; a hydrogen collection pipe at the top of the reactor and a pressure reducing valve on the hydrogen collection pipe; a heat exchanger, a temperature sensor, and a pressure sensor are located inside the reactor; a liquid sodium injection pipe and a steam injection pipe are located below the reactor, with a liquid sodium injection check valve on the liquid sodium injection pipe and a steam injection check valve on the steam injection pipe; both the liquid sodium injection pipe and the steam injection pipe are located inside the reactor, and the outlet end of the liquid sodium injection pipe is located above the outlet end of the steam injection pipe; the heat exchanger is an upward-downward arranged heat exchanger with the refrigerant inlet at the top and the refrigerant outlet at the bottom; a heat exchange valve is provided at the refrigerant inlet; and the temperature sensor is located at the top of the heat exchanger.

[0005] Follow these steps:

[0006] Step 1. Fill the reactor with hydrogen gas;

[0007] Step 2. Open the heat exchange valve;

[0008] Step 3. Open the liquid sodium injection check valve and the steam injection check valve;

[0009] Step 4. The injected liquid sodium reacts with water vapor to produce hydrogen, high-temperature water vapor, and sodium hydroxide. The heat exchange valve, liquid sodium injection check valve, and water vapor injection check valve are controlled to ensure that the temperature of the hydrogen and high-temperature water vapor after passing through the heat exchanger is below 70°C. The hydrogen is discharged from the hydrogen collection pipe through the pressure reducing valve, which adjusts the pressure inside the reactor to 0.1-10 MPa. The high-temperature water vapor condenses at the bottom of the water flow response device after passing through the heat exchanger. The drain valve is controlled to ensure that the sodium hydroxide solution level is below the outlet end of the water vapor injection pipe.

[0010] This patent application has the following advantages:

[0011] 1. By directly using water vapor as the reaction raw material, the safety hazards such as explosions caused by the volume expansion of water due to its phase transformation into water vapor upon heating, as seen in existing technologies, are avoided.

[0012] 2. When water vapor is heated, it will further increase in temperature to form a high-temperature gas, which will exchange heat with the cold enzyme in the heat exchanger to form a high-temperature heat source, meeting the industrial production's need for a high-temperature heat source. At the same time, the water vapor will condense to form water, which can be effectively separated from hydrogen.

[0013] 3. Using hydrogen gas, a product that does not react with water vapor and sodium, as a protective gas ensures safe combustion in the sodium-water reaction.

[0014] 4. No kerosene needs to be added, avoiding the need for purification of sodium hydroxide solution, simplifying operation and reducing operating costs.

[0015] Since liquid sodium is composed of tiny particles of metallic sodium, if the injected water vapor concentration is low, the reaction between liquid sodium and water vapor is mild. During the reaction, the sodium surface will be coated with a layer of sodium hydroxide solution containing bubbles. Subsequent water vapor needs to pass through this protective layer of sodium hydroxide solution to react with the sodium, making the subsequent reaction rate very slow. To increase the reaction rate between sodium and water vapor and ensure a complete reaction, high-temperature, high-concentration water vapor needs to be injected into the reactor. This causes the liquid sodium entering the reactor to quickly burn with the water vapor, while the unreacted water vapor will absorb heat and form high-temperature water vapor at thousands of degrees Celsius. At this high temperature, some sodium hydroxide can form an aerogel that diffuses throughout the reactor. Both the high temperature and the diffused sodium hydroxide aerogel cause severe corrosion to the equipment, making the corrosion resistance requirements for the equipment materials extremely high, directly increasing the operating costs of sodium energy release.

[0016] Summary of the Invention

[0017] The present invention aims to solve the aforementioned technical problems existing in the prior art by providing a system for online conversion of sodium source into heat energy and hydrogen.

[0018] The technical solution of this invention is: a system for online conversion of sodium source into heat energy and hydrogen, comprising a sealed reactor, an alkaline solution discharge pipe at the bottom of the reactor with a discharge valve, a hydrogen collection pipe at the top of the reactor with a pressure reducing valve, a condenser, a temperature sensor, a pressure sensor, a sodium injection pipe, and a water vapor injection pipe inside the reactor, a sodium injection check valve on the sodium injection pipe, a water vapor injection check valve on the water vapor injection pipe, the opening of the sodium injection pipe being located at the top of the reactor and a sodium reaction baffle being provided below the opening, and a sodium hydroxide solution channel being provided on the sodium reaction baffle or between the sodium reaction baffle and the side wall of the reactor;

[0019] Follow these steps:

[0020] Step 1. Fill the reactor with hydrogen gas;

[0021] Step 2. Turn on the condenser;

[0022] Step 3. Open the sodium injection check valve to inject sodium, allowing the sodium to fall onto the sodium reaction baffle;

[0023] Step 4. Open the steam injection check valve to inject steam;

[0024] Step 5. Sodium reacts with water vapor to produce hydrogen and sodium hydroxide. The hydrogen is collected by the hydrogen collection pipe and the pressure in the reactor is adjusted to 0.1-0.5 MPa by the pressure reducing valve. The sodium hydroxide absorbs water to form a sodium hydroxide solution, which flows down to the bottom of the reactor through the sodium hydroxide solution channel (10) and is finally discharged by the alkaline solution discharge pipe.

[0025] Step 6. During the reaction, adjust the sodium injection check valve and / or the water vapor injection check valve and / or the heat exchange of the condenser to control the maximum temperature in the reactor to be less than 300°C until the reaction is complete.

[0026] Preferably, the steam injection pipe is located in the lower middle part of the reactor, and a steam buffer chamber is set between the steam injection check valve and the reactor. A hydrogen branch pipe is set outside the reactor. One end of the hydrogen branch pipe is connected to the hydrogen collection pipe in front of the pressure reducing valve, and the other end is connected to the steam buffer chamber through a gas pump. A hydrogen condenser is set around the hydrogen branch pipe.

[0027] Preferably, the sodium reaction baffle is replaced by a condenser, that is, the condenser is placed below the pipe inlet.

[0028] There is a sodium hydroxide solution channel on the condenser or between the condenser and the reactor sidewall.

[0029] Preferably, there are at least two sodium reaction baffles arranged vertically and opposite each other. One end of each sodium reaction baffle is connected to the side wall of the reactor, and the other end is inclined downwards, forming a serpentine sodium hydroxide solution channel between the sodium reaction baffle and the side wall of the reactor.

[0030] Preferably, the number of condensers is equal to the number of sodium reaction baffles, and they are arranged one-to-one below each sodium reaction baffle.

[0031] Preferably, the sodium reaction baffle consists of at least two mesh plates arranged vertically, with the mesh on each sodium reaction baffle forming a channel for sodium hydroxide solution and the mesh size decreasing sequentially from the upper layer to the lower layer.

[0032] This invention places the sodium injection pipe opening at the upper end of the reactor, with a sodium reaction baffle below the opening. The sodium reaction baffle has a sodium hydroxide solution channel, or a sodium hydroxide solution channel exists between the sodium reaction baffle and the reactor sidewall. The input water vapor is of low concentration, and the reaction between the injected sodium and water vapor is mild rather than combustible. By adjusting the sodium injection check valve and / or the water vapor injection check valve and / or the heat exchange of the condenser, the maximum temperature can be controlled to below 300°C, allowing the surface of metallic sodium to undergo an oxidation reaction. This avoids the formation of sodium hydroxide aerogel due to excessively high temperatures, effectively preventing corrosion of the equipment caused by high temperatures and diffused aerogel. It eliminates the need for excessively high corrosion resistance requirements on the equipment materials, effectively reducing the operating costs associated with sodium energy release. Simultaneously, although the reaction coats the sodium surface with a layer of sodium hydroxide solution, the sodium reaction baffle allows the denser, lower-viscosity sodium hydroxide solution to separate from the sodium, flowing downwards along the sodium hydroxide solution channel to the bottom of the reactor, thus exposing the sodium surface. This enables rapid oxidation of sodium with low-concentration water vapor, maintaining high production efficiency. Attached Figure Description

[0033] Figure 1 is a structural schematic diagram of Embodiment 1 of the present invention.

[0034] Figure 2 is a structural schematic diagram of Embodiment 2 of the present invention.

[0035] Figure 3 is a structural schematic diagram of Embodiment 3 of the present invention.

[0036] Detailed Implementation

[0037] Example 1:

[0038] Figure 1 shows a system for online conversion of sodium source into heat energy and hydrogen according to the present invention. Similar to existing technologies, it includes a sealed reactor 1. At the bottom of reactor 1 is an alkali discharge pipe 2 with a discharge valve 2-1. At the top of reactor 1 is a hydrogen collection pipe 3 with a pressure reducing valve 3-1. Reactor 1 contains a condenser 4, a temperature sensor 5, a pressure sensor 6, a sodium injection pipe 7, and a water vapor injection pipe 8. The sodium injection pipe 7 has a sodium injection check valve 7-1, and the water vapor injection pipe 8 has a water vapor injection check valve 8-1. The difference from existing technologies is... The opening 7-2 of the sodium injection pipe 7 is located at the upper end of the reactor 1, and a sodium reaction baffle 9 is provided below the opening 7-2. There are at least two sodium reaction baffles 9 arranged opposite each other, that is, one end of each sodium reaction baffle 9 is connected to the side wall of the reactor 1, and the other end is inclined downward at 4-10 degrees. A serpentine sodium hydroxide solution channel 10 is formed between the sodium reaction baffle 9 and the side wall of the reactor 1. At the same time, the number of condensers 4 is equal to that of the sodium reaction baffles 9 and they are arranged one-to-one below each sodium reaction baffle 9. There can be multiple temperature sensors 5, which are distributed in different positions in the reactor 1.

[0039] Follow these steps:

[0040] Step 1. Fill reactor 1 with hydrogen gas;

[0041] Step 2. Open condenser 4 and inject refrigerant into condenser 4. The refrigerant can be mineral oil, low-temperature gas, etc., which can fully carry heat.

[0042] Step 3: Open the sodium injection check valve 7-1 to inject sodium, allowing the sodium to fall onto the sodium reaction baffle 9;

[0043] Step 4. Open the steam injection check valve 8-1 to inject steam, controlling the steam concentration in reactor 1 to be less than 20%;

[0044] Step 5. Sodium reacts immediately with water vapor on its surface to generate hydrogen and sodium hydroxide. The generated hydrogen is collected by hydrogen collection pipe 3, and the pressure inside reactor 1 is adjusted to 0.2 MPa by pressure reducing valve 3-1. The generated sodium hydroxide absorbs water to form a sodium hydroxide solution. Because the sodium hydroxide solution has a high density and low viscosity, it can separate from the metallic sodium as it rolls down along the sodium hydroxide solution channel 10. Then, under the action of gravity, it flows to the bottom of the reactor, where the sodium surface is exposed and continues to react with water vapor. That is, the sodium hydroxide solution covers and detaches from the sodium surface alternately.

[0045] Step 6. During the reaction, adjust the sodium injection check valve 7-1 and / or the water vapor injection check valve 8-1 and / or the heat exchange of the condenser 4 to control the maximum temperature in reactor 1 to be less than 300℃ until the reaction is completed.

[0046] Example 2:

[0047] Figure 2 shows a system for online conversion of sodium source into heat energy and hydrogen according to the present invention. Similar to existing technologies, it includes a sealed reactor 1. At the bottom of reactor 1 is an alkali discharge pipe 2 with a discharge valve 2-1. At the top of reactor 1 is a hydrogen collection pipe 3 with a pressure reducing valve 3-1. Reactor 1 contains a condenser 4, a temperature sensor 5, a pressure sensor 6, a sodium injection pipe 7, and a steam injection pipe 8. The sodium injection pipe 7 has a sodium injection check valve 7-1, and the steam injection pipe 8 has a steam injection check valve 8-1. Unlike existing technologies, the opening 7-2 of the sodium injection pipe 7 is located at the top of reactor 1, and a sodium reaction baffle 9 is installed below the opening 7-2. The sodium reaction baffle 9 consists of at least two vertically arranged mesh plates. The mesh plates can be made by punching a matrix of holes in a metal plate, or... It is a plate with mesh woven from metal wire. The mesh on each sodium reaction baffle 9 forms a sodium hydroxide solution channel 10, and the mesh size decreases from the top layer to the bottom layer. The size of the mesh on the top layer should be smaller than the size of the sodium particles it carries. The number of condensers 4 is equal to that of the sodium reaction baffles 9 and they are arranged one-to-one below each sodium reaction baffle 9. There can be multiple temperature sensors 5, which are distributed in different positions in the reactor 1. The steam injection pipe 8 is set in the middle or lower part of the reactor 1, and a steam buffer chamber 8-2 is set between the steam injection check valve 8-1 and the reactor 1. A hydrogen branch pipe 11 is set outside the reactor 1. One end of the hydrogen branch pipe 11 is connected to the hydrogen collection pipe 3 in front of the pressure reducing valve 3-1, and the other end is connected to the steam buffer chamber 8-2 through the gas pump 11-1. A hydrogen condenser 11-2 is set around the hydrogen branch pipe 11.

[0048] Follow these steps:

[0049] Step 1. Fill reactor 1 with hydrogen gas;

[0050] Step 2. Open condenser 4 and inject refrigerant into condenser 4. The refrigerant can be mineral oil, low-temperature gas, etc., which can fully carry heat.

[0051] Step 3. Open the sodium injection check valve 7-1 to inject sodium, so that the sodium falls on the sodium reaction baffle 9, which will then tend to pass through the sodium hydroxide solution channel 10. However, since the size of the sodium is larger than the sodium hydroxide solution channel 10 at this time, it cannot pass through the sodium hydroxide solution channel 10 temporarily.

[0052] Step 4. Open the steam injection check valve 8-1 to inject steam. At the same time, the gas pump 11-1 and the hydrogen condenser 11-2 can be started. The hydrogen in reactor 1 can be further condensed along the hydrogen branch pipe 11 and then enter the steam buffer chamber 8-2. After mixing with the steam, it enters reactor 1, thereby controlling the steam concentration in reactor 1 to be less than 20%.

[0053] Step 5. During the suspension process, sodium reacts with water vapor to produce hydrogen and sodium hydroxide. The generated hydrogen is collected by hydrogen collection pipe 3, and the pressure inside reactor 1 is adjusted to 0.2 MPa by pressure reducing valve 3-1. The generated sodium hydroxide absorbs water to form a sodium hydroxide solution and adheres to the sodium surface. As the sodium hydroxide continues to absorb water, it detaches from the metallic sodium surface and drips down along the solution channel 10. Under the action of gravity, it flows to the bottom of the reactor, where the sodium surface is exposed and continues to react with water vapor. When the sodium reacts to a level smaller than the sodium hydroxide solution channel 10, it falls to the second sodium reaction baffle 9... That is, the sodium hydroxide solution covers and detaches from the sodium surface alternately.

[0054] Step 6. During the reaction, adjust the sodium injection check valve 7-1 and / or the water vapor injection check valve 8-1 and / or the heat exchange of the condenser 4 to control the maximum temperature in reactor 1 to be less than 300℃ until the reaction is completed.

[0055] Example 3:

[0056] As shown in Figure 3, a system for online conversion of sodium source into heat energy and hydrogen is provided according to the present invention. Similar to the prior art, it is equipped with a closed reactor 1. The bottom of the reactor 1 has an alkaline solution discharge pipe 2 with a drain valve 2-1. The upper end of the reactor 1 has a hydrogen collection pipe 3 with a pressure reducing valve 3-1. The reactor 1 contains a condenser 4, a temperature sensor 5, a pressure sensor 6, a sodium injection pipe 7, and a water vapor injection pipe 8. The sodium injection pipe 7 has a sodium injection check valve 7-1, and the water vapor injection pipe 8 has a water vapor injection check valve 8-1. The port 7-2 of the sodium injection pipe 7 is located at the upper end of the reactor 1, and the condenser 4 is located below the port 7-2. The condenser 4 can be spiral, serpentine, plate, or any other shape to form a sodium hydroxide solution channel 10 on the condenser or between the condenser and the reactor sidewall, that is, the function of the reaction baffle 9 is integrated into the condenser 4, so there is no need to set up a separate reaction baffle 9. There can be multiple temperature sensors 5 distributed in different positions in the reactor 1.

[0057] Follow these steps:

[0058] Step 1. Fill reactor 1 with hydrogen gas;

[0059] Step 2. Open condenser 4 and inject refrigerant into condenser 4. The refrigerant can be mineral oil, low-temperature gas, etc., which can fully carry heat.

[0060] Step 3: Open the sodium injection check valve 7-1 to inject sodium, allowing the sodium to fall onto the condenser 4;

[0061] Step 4. Open the steam injection check valve 8-1 to inject steam, controlling the steam concentration in reactor 1 to be less than 20%;

[0062] Step 5. Sodium reacts immediately with water vapor on its surface to generate hydrogen and sodium hydroxide. The generated hydrogen is collected by hydrogen collection pipe 3, and the pressure inside reactor 1 is adjusted to 0.2 MPa by pressure reducing valve 3-1. The generated sodium hydroxide absorbs water to form a sodium hydroxide solution. Because the sodium hydroxide solution has a high density and low viscosity, it can separate from the metallic sodium as it rolls down along the sodium hydroxide solution channel 10. Then, under the action of gravity, it flows to the bottom of the reactor, where the sodium surface is exposed and continues to react with water vapor. That is, the sodium hydroxide solution covers and detaches from the sodium surface alternately.

[0063] Step 6. During the reaction, adjust the sodium injection check valve 7-1 and / or the water vapor injection check valve 8-1 and / or the heat exchange of the condenser 4 to control the maximum temperature in reactor 1 to be less than 300℃ until the reaction is completed.

Claims

1. A system for online conversion of sodium source into heat energy and hydrogen, comprising a sealed reactor (1), an alkaline solution discharge pipe (2) at the bottom of the reactor (1), a discharge valve (2-1) on the alkaline solution discharge pipe (2), a hydrogen collection pipe (3) at the top of the reactor (1), a pressure reducing valve (3-1) on the hydrogen collection pipe (3), a condenser (4), a temperature sensor (5), a pressure sensor (6), a sodium injection pipe (7), and a water vapor injection pipe (8) inside the reactor (1), a sodium injection check valve (7-1) on the sodium injection pipe (7), and a water vapor injection check valve (8-1) on the water vapor injection pipe (8), characterized in that: The opening (7-2) of the sodium injection pipe (7) is located at the upper end of the reactor (1) and a sodium reaction baffle (9) is provided below the opening (7-2). There is a sodium hydroxide solution channel (10) on the sodium reaction baffle (9) or between the sodium reaction baffle (9) and the side wall of the reactor (1). Follow these steps: Step 1. Fill reactor (1) with hydrogen gas; Step 2. Turn on the condenser (4); Step 3. Open the sodium injection check valve (7-1) to inject sodium, so that the sodium falls onto the sodium reaction baffle (9); Step 4. Open the steam injection check valve (8-1) to inject steam; Step 5. Sodium reacts with water vapor to produce hydrogen and sodium hydroxide. The hydrogen is collected by the hydrogen collection pipe (3) and the pressure in the reactor (1) is adjusted to 0.1-0.5 MPa by the pressure reducing valve (3-1). The sodium hydroxide absorbs water to form a sodium hydroxide solution, which flows down to the bottom of the reactor (1) through the sodium hydroxide solution channel (10) and is finally discharged by the alkaline solution discharge pipe (2). Step 6. During the reaction, adjust the sodium injection check valve (7-1) or / and the water vapor injection check valve (8-1) or / and the heat exchange of the condenser (4) to control the maximum temperature in the reactor (1) to be less than 300°C until the reaction is completed.

2. The system for online conversion of sodium source into heat energy and hydrogen according to claim 1, characterized in that: The steam injection pipe (8) is located in the middle and lower part of the reactor (1), and a steam buffer chamber (8-2) is set between the steam injection check valve (8-1) and the reactor (1). A hydrogen branch pipe (11) is set outside the reactor (1). One end of the hydrogen branch pipe (11) is connected to the hydrogen collection pipe (3) in front of the pressure reducing valve (3-1), and the other end is connected to the steam buffer chamber (8-2) through the gas pump (11-1). A hydrogen condenser (11-2) is set around the hydrogen branch pipe (11).

3. The system for online conversion of sodium source into heat energy and hydrogen according to claim 1, characterized in that: The sodium reaction baffle (9) is replaced by a condenser (4), that is, the condenser (4) is set below the pipe opening (7-2), and there is a sodium hydroxide solution channel (10) between the upper or condenser (4) and the side wall of the reactor (1).

4. The system for online conversion of sodium source into heat energy and hydrogen according to claim 1, characterized in that: The sodium reaction baffles (9) are at least two, one above the other and arranged opposite each other. One end of each sodium reaction baffle (9) is connected to the side wall of the reactor (1), and the other end is inclined downward. A serpentine sodium hydroxide solution channel (10) is formed between the sodium reaction baffles (9) and the side wall of the reactor (1).

5. The system for online conversion of sodium source into heat energy and hydrogen according to claim 4, characterized in that: The number of condensers (4) is equal to that of the sodium reaction baffles (9), and they are arranged one-to-one below each sodium reaction baffle (9).

6. The system for online conversion of sodium source into heat energy and hydrogen according to claim 2, characterized in that: The sodium reaction baffle (9) consists of at least two mesh plates arranged vertically, with the mesh on each sodium reaction baffle (9) forming a sodium hydroxide solution channel (10) and the mesh size decreasing sequentially from the upper layer to the lower layer.