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The DTT secondary cooling water systems

机译:DTT二次冷却水系统

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The new Tokamak machine DTT (Divertor Tokamak Test), planned under construction by Enea Frascati Research Center, is a machine actively cooled by water. Although DTT is an intermittently operating machine, the thermal power that must be cooled is more or less 127 MW emitted within 100 seconds. Geographically the DTT site, at the Enea Frascati center, doesn't allow the construction of water basins and the cooling wet towers. Furthermore, it doesn't have enough water supply coming from the municipal aqueduct. Therefore, the best solution is to project a close loop cooling water system, divided into 2 circuits: primary circuits (Divertor, First Wall, ECRH, ICRH, NBI, Electrical Power Supply and Cryoplant) filled with demineralized water and a secondary circuit filled with cooling water designed for working with pressure under 16 Bars. The thermal Power transferred by the primary circuits using dedicated heat exchangers (plates or shell-and-tube) is delivered to a centralized "warm tank" developed in order to store all the energy emitted during the plasma discharge and to prevent the total water temperature in the tank from reaching boiling point. Afterwards, the warm fluid is transferred to another "cold tank" where the chillers are continuously working between two successive machine pulses every 3600 seconds. The two tanks are designed to optimize the minimum power required by the chillers. Moreover, a recovery energy system will be incorporated in order to heat all components (First Wall, Divert or, Vacuum Vessel) which should be maintained warm between the two pulses. The same logic of centralization is applied to the demineralization with reverse osmosis.
机译:新的Tokamak机器DTT(Devertor Tokamak试验)由Enea Fracati Research Center建设,是一台积极冷却水的机器。虽然DTT是间歇式操作机器,但必须冷却的热电动力在100秒内或多或少地发射出来。在地理上,在Enea Fracati中心,DTT位点不允许建造水盆和冷却湿塔。此外,它没有足够的供水来自市政渡槽。因此,最佳解决方案是将封闭环路冷却水系统投影,分为2个电路:初级电路(偏转器,第一墙,ECRH,ICRH,NBI,电源和冷冻液),填充了脱矿质水和累积的二次回路冷却水,设计用于在16巴下工作的压力。由初级电路通过专用热交换器(板或壳管)传递的热功率被输送到开发的集中式“暖罐”,以便将所有能量放电储存在等离子体放电期间并防止总水温在坦克到达沸点。然后,将温热的流体转移到另一个“冷坦克”,其中冷却器每3600秒在两个连续的机器脉冲之间连续工作。这两个坦克旨在优化冷却器所需的最低功率。此外,将结合回收能量系统,以加热所有组件(第一壁,转移或真空容器),它们应在两个脉冲之间保持温暖。相同的集中逻辑应用于具有反渗透的脱矿质。

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