首页> 外文会议>International conference on nuclear engineering;ICONE17 >EXPERIMENTAL INVESTIGATION OF NON-CONDENSABLE GASES EFFECT ON NOVOVORONEZH NPP-2 STEAM GENERATOR CONDENSATION POWER UNDER THE CONDITION OF PASSIVE SAFETY SYSTEMS OPERATION
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EXPERIMENTAL INVESTIGATION OF NON-CONDENSABLE GASES EFFECT ON NOVOVORONEZH NPP-2 STEAM GENERATOR CONDENSATION POWER UNDER THE CONDITION OF PASSIVE SAFETY SYSTEMS OPERATION

机译:被动安全系统运行条件下对Novovooronezh NPP-2蒸汽发生器凝结功率的非凝结性气体的实验研究

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The design substantiation of the heat removal efficiency from Novovoronezh NPP-2 (NPP-2006 project with VVER-1200 reactor) reactor core in the event of primary circuit leaks and operation of passive safety systems only (among these are the systems of hydroaccumulators of the 1~(st) and 2~(nd) stages and passive heat removal system) has been performed based on computational simulation of the related processes in the reactor and containment. The computational simulation has been performed with regard to the detrimental effect of non-condensable gases on steam generator (SG) condensation power.Nitrogen arriving at the circuit with the actuation of hydroaccumulators of the 1st stage and products of water radiolysis are the main sources of non-condensable gases in the primary circuit.The feature of Novovoronezh NPP-2 passive safety systems operation is that during the course of emptying of the 2nd stage hydroaccumulators system (HA-2) the gas-steam mixture spontaneously flows out from SG cold headers into the volume of HA-2 tanks. The flow rate of gas-steam mixture during the operation of HA-2 system is equal to the volumetric water discharge from hydroaccumulators. The calculations carried out by different integral thermal hydraulic codes revealed that this volume flow rate of gas-steam mixture from SG to the HA-2 system would suffice to eliminate the "poisoning" of SG piping and to maintain necessary condensation power.In support of the calculation results, the experiments were carried out at the HA2M-SG test facility constructed at IPPE. The test facility incorporates a VVER steam generator model of volumetric-power scale of 1:46. Steam to the HA2M-SG test facility is supplied fed from the IPPE heat power plant. Gas addition to steam coming to the SG model is added from high pressure gas cylinders. Nitrogen and helium are used in the experiments for simulating hydrogen.The report presents the basic results of experimental investigations aimed at the evaluation of SG condensation power under the inflow of gas-steam mix with different gases concentration to the tube bundle, both under the simulation of gas-steam mixture outflow from SG cold header to the HA-2 system and without outflow. As a result of the research performed at the HA2M-SG test facility, it has been substantiated experimentally that in the event of an emergency leak steam generators have condensation power sufficient for effective heat removal from the reactor provided by PHR system.
机译:仅在发生一次回路泄漏和无源安全系统运行的情况下(其中包括该系统的蓄能器系统),才能从Novovoronezh NPP-2(带有VVER-1200反应堆的NPP-2006项目)反应堆堆芯中设计除热效率。基于反应堆和安全壳相关过程的计算模拟,已经完成了第一阶段和第二阶段和被动除热系统。关于不可冷凝气体对蒸汽发生器(SG)冷凝功率的有害影响,已进行了计算仿真。 随着第一阶段蓄水器的启动,到达回路的氮气和一次水分解产物是一次回路中不可冷凝气体的主要来源。 Novovoronezh NPP-2被动安全系统运行的特点是,在排空第二级蓄能器系统(HA-2)的过程中,燃气-蒸汽混合物自SG冷集管自发流出到HA-2储罐中。 HA-2系统运行期间的气-气混合物流量等于蓄水器的排水量。通过不同的整体热力水力代码进行的计算表明,从SG到HA-2系统的燃气-蒸汽混合物的体积流量足以消除SG管道的“中毒”并保持必要的冷凝功率。 为了支持计算结果,实验是在IPPE建造的HA2M-SG测试设备上进行的。测试设备采用体积功率比例为1:46的VVER蒸汽发生器模型。由IPPE热电厂向HA2M-SG测试设备供应蒸汽。进入SG模型的蒸汽中添加的气体是从高压气瓶中添加的。氮气和氦气用于模拟氢气的实验中。 该报告介绍了实验研究的基本结果,旨在评估在不同气体浓度的燃气-蒸汽混合物流入管束时SG冷凝功率的模拟,这两种模拟都是从SG冷集管到燃气管的气体-蒸汽混合物流出的模拟。 HA-2系统,无流出。作为在HA2M-SG测试设备上进行的研究的结果,已经通过实验证明,在紧急泄漏的情况下,蒸汽发生器的冷凝功率足以有效地去除PHR系统提供的反应堆中的热量。

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