PowerPoint 프레젠테이션 - Indico for IAEA Conferences (Indico)€¦ · PowerPoint...

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𝜙 = ෨𝜙 + 𝜙

෨𝜙(𝑡, 𝑥) =ම−∞

𝐺 𝑥 − 𝑥′, ∆ 𝜙 𝑡, 𝑥′ 𝑑𝑥′

𝜕𝜌

𝜕𝑡+ 𝛻 ∙ 𝜌 ෨𝑉 = 0

𝜕

𝜕𝑡𝜌 ෨𝑉 + 𝛻 ∙ 𝜌 ෨𝑉 ⊗ ෨𝑉 = −𝛻 ∙ 𝑝𝐼 + 𝛻 ∙ 𝑇 + 𝑇𝑡 + 𝑓𝑏

𝑇𝑡 = 2𝜇𝑡𝑆 −2

3𝜇𝑡𝛻 ∙ 𝑣 + 𝜌𝑘 𝐼

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Schematic diagram of triple jet geometry

65℃ hot air

41℃ cold air 41℃ cold air

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Instantaneous temperature contour in the mid-plane

RANS with realizable k-ε model (left), LES model (right)

Time-averaged temperature profiles in the mid-plane

(y/D=12 (left), y/D=18(right))

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Schematic diagram of the reactor core and close-up view of the upper internal structure

Upper

Internal

Structure

(UIS)

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Candidate reduced computational domainsFull domains for simulation

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Case 01 Case 04Case 03Case 02

Case 01 Case 04Case 03Case 02

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Computation domain for the thermal striping analysis Grid system

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Core exit flow conditions of computation region (Left:

Flow rates, Right: Temperatures)

Section

CR #1

CR #2

CR #3

Temperature and velocity distribution at the

horizontal section (50 mm off from the core exit)

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Temperature and velocity distribution at the vertical section through CR #1

Section

Thermocouples

CRDM guide tube

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FFT of the temperature difference fluctuation at the CR#1 (Left), CR#2 (Middle), CR#3 (Right)

(Top: Inner wall, Bottom: Outer wall)

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Simplified modelling of the upper shield structure (Left: Original, Right: Argon region as solid)

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Insulator

Hot Pool

Cold Pool

Argon

Nitrogen

HAA

Reactor

RVCS

Computational domain for integrated simulation

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Temperature distribution (left) and velocity distribution (right)

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Vertical temperature distribution of inner & outer concrete in the RVCS

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