The present disclosure relates to the field of liquid transportation technologies, and more specifically, to a flammable and explosive liquid transportation system and a method and an application thereof. BACKGROUND
A flammable and explosive type-A liquid may be mainly transferred in two manners. In one manner, a flammable and explosive liquid in a raw material barrel is transferred to a reaction vessel in a normal state. In the other manner, a flammable and explosive liquid in the reaction vessel is transferred to a receiving barrel in an emergency state.
The first transfer manner is applicable to replacing a manner implementation of vacuum pumping. For example, in pharmaceutical and chemical industries, the manner implementation of vacuum pumping is used, and accidents of explosion in the vacuum pumping manner emerge endlessly. Consequently, such a method is highly risky. To improve environmental protection, government departments have explicitly prohibited vacuum pumping due to a requirement for reduced emission of VOCs.
The second transfer manner is applicable to a case in which when leakage occurs at a bottom flange of a reaction kettle or vessel (for example, a header tank), explosive vapor clouds may be formed, personnel cannot approach the reaction kettle or vessel for handling, and a liquid cannot be safely and quickly transferred, causing environmental pollution and safety accidents.
The present disclosure is intended to provide a flammable and explosive liquid transportation system, to resolve problems of a high risk and poor environmental protection caused by an existing flammable and explosive liquid transfer manner.
In addition, the present disclosure further provides a method and an application of the flammable and explosive liquid transportation system.
The present disclosure is implemented by the following technical solutions:
A flammable and explosive liquid transportation system includes a gas inlet pipe and a liquid transportation pipeline; wherein
The system in the present disclosure can implement both transfer of a liquid from the raw material barrel to the reaction vessel and transfer of a liquid from the reaction vessel to the raw material barrel.
When the system is used to implement transfer of a liquid from the raw material barrel to the reaction vessel, the reaction vessel (reaction kettle) is first inerted by using an inert gas (for example, nitrogen), and then a material in the raw material barrel is pressurized, to transport a flammable and explosive liquid to the reaction vessel (reaction kettle), to meet both safety and environmental protection requirements and reduce accidents and emission of VOCs.
When the system is used to implement transfer of a liquid from the reaction vessel to the raw material barrel, the raw material barrel (receiving barrel) is aerated and inerted by using an inert gas (for example, nitrogen), and then a liquid in the reaction vessel (reaction kettle) is introduced into the raw material barrel (receiving barrel), to reduce a liquid level in the reaction vessel (reaction kettle), reduce leakage from a flange, and avoid formation of explosion clouds.
In conclusion, problems of a high risk and poor environmental protection caused by an existing flammable and explosive liquid transfer manner are resolved.
In one or more examples, a view mirror is disposed on the liquid transportation pipeline, and the view mirror is made of a transparent material, and is preferably made of a glass tube.
The inside of the liquid transportation pipeline can be observed through the view mirror. For example, whether the liquid transportation pipeline transports a liquid from the raw material barrel to the reaction vessel can be observed through the view mirror.
In one or more examples, the view mirror is disposed between the third valve and the fifth valve.
In one or more examples, a pressure gauge is disposed on the gas inlet pipe.
In one or more examples, one end of the liquid transportation pipeline is inserted into the bottom of the reaction vessel.
In one or more examples, the water storage container is of a funnel structure, and the bottom of the funnel structure communicates with the bypass pipe.
Disposing the funnel structure helps introduce water in the water storage container into the liquid transportation pipeline. Generally, when in use, the reaction vessel is at a high position and the raw material barrel is at a low position, and therefore, the water storage container can be placed above the raw material barrel.
In one or more examples, a weighting module is disposed at the bottom of the raw material barrel, and the weighting module may be a weight sensor, configured to meter a material in the raw material barrel.
A liquid transfer method based on a flammable and explosive liquid transportation system is provided, the method is used to transport a liquid forward in a normal state, and includes the following steps:
The foregoing transfer method can implement transfer of a liquid from the raw material barrel to the reaction vessel. According to the transfer method in the present disclosure, the reaction vessel (reaction kettle) is first inerted by using an inert gas (for example, nitrogen), and then a material in the raw material barrel is pressurized, to transport a flammable and explosive liquid to the reaction vessel (reaction kettle), to meet both safety and environmental protection requirements and reduce accidents and emission of VOCs.
A liquid transfer method based on a flammable and explosive liquid transportation system is provided, the method is used to transport a liquid in an emergency disposal state, and includes the following steps:
The foregoing transfer method can implement transfer of a liquid from the reaction vessel to the raw material barrel. According to the transfer method in the present disclosure, the raw material barrel (receiving barrel) is aerated and inerted by using an inert gas (for example, nitrogen), and then a liquid in the reaction vessel (reaction kettle) is introduced into the raw material barrel (receiving barrel), to reduce a liquid level in the reaction vessel (reaction kettle), reduce leakage from a flange, and avoid formation of explosion clouds.
An application of a flammable and explosive liquid transportation system is provided, the system is used for flammable and explosive liquid transfer, and the flammable and explosive liquid transfer includes transfer of a liquid from a raw material barrel to a reaction vessel and transfer of a liquid from the reaction vessel to the raw material barrel.
Compared with the prior art, the present disclosure has the following advantages and benefits:
The accompanying drawings illustrated herein are provided to provide a further understanding of embodiments of the present disclosure, and constitute a part of this application but are not construed as limiting embodiments of the present disclosure. In the drawings:
To make the objectives, technical solutions, and advantages of the present disclosure clearer, the present disclosure will be further described in detail with reference to embodiments and drawings. Exemplary implementations of the present disclosure together with description thereof are intended to explain the present disclosure, and are not to be construed as limiting the present disclosure.
In this example, a view mirror 17 is disposed on the liquid transportation pipeline 10, and the view mirror 17 is made of a transparent material. The view mirror 17 is disposed between the third valve 7 and the fifth valve 9. A ground cable is disposed between the view mirror 17 and the third valve 7.
In this example, a pressure gauge 3 and a safety valve are disposed on the gas inlet pipe 1. The water storage container 13 is of a funnel structure, and the bottom of the funnel structure communicates with the bypass pipe 11.
In this example, a weighting module 16 is disposed at the bottom of the raw material barrel 6.
The system in this embodiment can implement both transfer of a liquid from the raw material barrel 6 to the reaction vessel 15 and transfer of a liquid from the reaction vessel 15 to the raw material barrel 6.
When the system is used to transport a liquid forward in a normal state (from the raw material barrel 6 to the reaction vessel 15), the following steps are included:
When the system is used to reversely transport a liquid in an emergency disposal state (to transfer the liquid from the reaction vessel 15 to the raw material barrel 6), the following steps are included:
In the foregoing specific implementations, the objective, technical solutions, and benefits of the present disclosure are further described in detail. It should be understood that the descriptions are merely specific implementations of the present disclosure, but are not intended to limit the protection scope of the present disclosure. Any modification, equivalent replacement, or improvement made without departing from the spirit and principle of the present disclosure should fall within the protection scope of the present disclosure.
Number | Date | Country | Kind |
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202111157999.7 | Sep 2021 | CN | national |
This application is the U.S. national stage application of International Patent Application No. PCT/CN2022/084970, filed Apr. 2, 2022, which claims the benefit under 35 U.S.C. § 119 of Chinese Application No. 202111157999.7, filed Sep. 30, 2021, the disclosures of each of which are incorporated herein by reference in their entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2022/084970 | 4/2/2022 | WO |