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This post was last edited by wangshaobo on 2025-7-1 16:01. Requirements for static grounding of pipelines: There are not many industry standards regarding the static grounding of pipelines; the main ones include GB12158-2006 General Guidelines for Preventing Static Electricity Accidents, HG/T20675-1990 Design Code for Static Grounding in Chemical Enterprises, and SH3097-2017 Design Specifications for Static Grounding in Petrochemical Industries. GB50235-2010 Code for Construction of Industrial Metal Piping Projects also contains specific sections that address the implementation of static grounding for pipelines. Some large-scale process industry manufacturing companies and engineering design and construction firms have corporate-level regulations regarding the design of pipeline static grounding, such as the SDEP-SPT-PD2206-2008 Regulations on Pipeline Static Grounding Design ; These enterprise-level regulations are often quite specific and can serve as a reference for defining the scope of pipeline static grounding. The following pipelines shall be electrically grounded: 1) Pipelines located in areas at risk of explosion and fire shall be electrically grounded. In areas at risk of explosion and fire, flammable gases and combustible dusts may accumulate, and the presence of electric sparks could lead to fires or explosions. Electrical and electronic equipment in areas prone to explosions and fires must be of explosion-proof type, in order to prevent the generation of sparks during their operation, which could ignite or explode flammable gases or dusts. If the pipes in areas prone to explosions and fires are not properly grounded, static electricity can accumulate to such an extent that it generates electrical sparks, which may lead to fire or explosion accidents. 2) The oxygen pipeline should have wires bridged at the flanges to ensure reliable grounding. Oxygen is a special medium that does not burn on its own, but it is a strong oxidizing agent; in an environment with pure oxygen, steel pipes can be ignited. Therefore, although oxygen is not a flammable medium, pure oxygen pipelines must be properly grounded. 3) The pipelines for pneumatic transport of solid particles should have wire bonds at the flanges to ensure reliable grounding. Gas-solid pipelines generate a large amount of static electricity during operation; it is essential to ensure that the pipelines are properly grounded so as to quickly transfer the charge and prevent the accumulation of excessive static electricity. 4) For pipes laid parallel to each other, when the clear distance between them is less than 100, electrostatic bonding shall be installed every 20 meters. For pipe galleries laid parallel at close distances, to ensure that the two pipes are at the same potential, bonding straps need to be installed every 20 meters. 5) Static grounding should be provided at the boundary between the pipeline inlet and outlet devices to prevent the transfer of charge between pipelines outside the boundary and those inside the devices. Explanation on static grounding: The static grounding of pipelines is divided into direct grounding and indirect grounding. Direct grounding means that the static electricity grounding facilities of the pipeline are directly connected to the main grounding network of the installation ; Indirect grounding refers to the situation where the pipeline itself is connected via bolts or flanges, and thereby linked to grounded equipment or steel structures, indirectly connecting to the main grounding network of the installation. All equipment is provided with electrostatic grounding, and all pipes are connected to the equipment; the vast majority of these pipes are indirectly grounded. One of the common questions is that, during the implementation of engineering projects, many people believe that only flammable media require static grounding, while non-flammable media such as instrument air, plant air, and nitrogen do not need it. We know that three conditions are required for a fire or explosion to occur: first, the presence of a flammable substance; second, contact between the flammable substance and oxygen; third, the presence of a spark sufficient to ignite the mixture of the flammable substance and oxygen. All three conditions are essential. Fire or explosion accidents caused by static electricity occur as a result of electrical sparks generated by static discharge igniting or detonating mixtures of flammable gases or flammable dusts together with oxygen that have leaked outside the pipes or equipment. Wherever there are areas where flammable gases or dusts accumulate, there is a risk of fire or explosion caused by static discharge. Therefore, the criterion for determining whether a regular pipeline needs to be grounded is not whether the medium inside it is flammable, but rather whether it is located in an area at risk of fire and explosion. HG20675 provides clear guidelines regarding the need to electrostatically ground pipelines in areas prone to explosions and fires; its clause 2.1.1 states that \"industrial electrostatic grounding measures shall be adopted for objects in environments prone to explosions and fires that may pose electrostatic hazards.\" Some believe that water is conductive; therefore, water pipes and steam pipes do not need to be grounded. In fact, steam is not a good conductor of electricity ; Water itself does not conduct electricity; it is water containing conductive ions that does. Many waters used in the process industry, such as boiler water, deaerated water, and steam condensate, have most of their conductive ions removed, resulting in poor electrical conductivity. Even recirculated water is softened to remove most of the calcium and magnesium ions, in order to prevent scaling in heat exchange equipment. Unless it has been experimentally proven that the water used in the process equipment exhibits good electrical conductivity within pipelines, one cannot assume that water is conductive and thereby waive the requirement for electrostatic grounding of steam and water pipes in areas at risk of explosion and fire. Common Question 2: Some people believe that flanges connected by metal bolts do not require electrostatic grounding, on the grounds that Section 4.3.3 of SH3097 states that \"when metal flanges are fastened using metal bolts or clamps, it is generally not necessary to install additional electrostatic connection wires, but it is essential to ensure that there is good electrical contact between at least two bolts or clamps.\" ”This understanding is incorrect. This specification states that, under certain conditions, it is not necessary to provide additional wire connections for the flanges; it does not mean that the requirement for static grounding of the pipes can be waived. The requirement for static grounding of pipelines does not mean that static bonding must be installed. The static grounding of pipelines is divided into direct grounding and indirect grounding. Direct grounding means that the pipeline’s static electricity grounding system is directly connected to the main grounding grid ; Indirect grounding refers to the situation where a pipeline is connected, indirectly, to the main grounding grid of the installation through its connection to grounded equipment or steel structures. All equipment is provided with electrostatic grounding, and all pipes are connected to the equipment; the vast majority of these pipes are indirectly grounded. Whether to install wire jumpers depends not only on the design requirements, but also on the measured resistance between the connectors. There are two necessary conditions for setting up wire bypasses; the first is that the design requires electrostatic bypassing. Secondly, for most media (except pure oxygen, gas-solid mixtures, and hydrogen), wire bypassing is required only when the measured resistance on both sides of the joint is greater than 0.03 ohms. It should be noted that for applications requiring static grounding, resistance testing is a necessary procedure, regardless of whether physical jumpers are used or not. Additionally, for certain special media, an electrostatic bond should be installed regardless of whether the measured resistance between connectors is less than or equal to 0.03 ohms. These media include pure oxygen, gas-solid mixtures, and hydrogen. The reasons for requiring bonding in the first two cases have been explained earlier; as for hydrogen, its low molecular weight makes it highly prone to leakage, and it has a wide explosive range along with a low ignition current. For safety reasons, high-level static electricity control measures must be implemented.
The basic requirements for static grounding of pipelines can be summarized as follows: 1. All pipelines in areas at risk of explosion and fire must be statically grounded, including those for process air, nitrogen, steam, water pipelines, etc.; whether the medium is flammable or not is not a factor in making this decision. 2. Oxygen pipelines and gas-solid transfer pipelines must be ensured to be reliably grounded, and wire bonds should be installed at the flange connections. 3. When the clear distance between parallel pipelines is less than 100 mm, a conductor jumper should be installed every 20 m. 4. Grounding should be provided at the boundaries of the pipe inlet and outlet devices to prevent charge transfer or accumulation. 5. Static grounding methods include direct grounding (the pipeline is directly connected to the grounding grid) and indirect grounding (connected to the grounding grid through flanges, equipment, or structures); most pipelines are grounded indirectly. 6. If metal bolts are used for the flange connections and at least two bolts ensure good electrical contact, it is generally not necessary to use additional wires for bridging, but this does not mean that the requirement for static grounding of the entire pipeline can be waived. 7. For special media (such as pure oxygen, gas-solid mixtures, and hydrogen), a wire bridge must be installed regardless of the level of the measured resistance value. 8. The electrical conductivity at the pipe flange connections should be measured regularly; for most media, if the resistance on both sides of the joint is greater than 0.03 ohms, a wire bridge should be installed ; The aforementioned special media must be bridged regardless of the resistance measurement. .
A resistance of 0.03 ohms, as required for static electricity dissipation, is unnecessary; it makes sense that a lower resistance value is needed to handle lightning and high-voltage currents. When establishing standards, one should not simply copy from others; has the electrical conductivity of the flange gaskets been taken into account? In many situations these days, metal gaskets or wound gaskets are used, which have excellent electrical conductivity; so why is it still necessary to use jumpers? It’s a waste of time and money, and it also provides so-called inspection experts with issues to find.
A resistance of 0.03 ohms, as required for static electricity dissipation, is unnecessary; it makes sense that a lower resistance value is needed to handle lightning and high-voltage currents. When establishing standards, one should not simply copy from others. Has the electrical conductivity of flange gaskets been taken into consideration? In many applications today, metal gaskets or wound gaskets are used, which have excellent electrical conductivity – so why is it still necessary to use bypass connections? It’s a waste of time and money.