By Greg F. Naterer, Ibrahim Dincer, Calin Zamfirescu (auth.)

With the resurgence of nuclear strength around the globe, and the more and more very important function of hydrogen as a fresh power provider, the usage of nuclear strength for large-scale hydrogen construction may have a key function in a sustainable strength destiny. Co-generation of either electrical energy and hydrogen from nuclear vegetation turns into more and more appealing. It permits load leveling including renewable strength and garage of electrical energy within the kind of hydrogen, whilst electrical energy costs and insist are lowest at off-peak hours of nuclear crops, akin to overnight.

Hydrogen creation from Nuclear strength provides an outline of the newest advancements and techniques of nuclear dependent hydrogen construction, together with electrolysis and thermochemical cycles. specific concentration is given to thermochemical water splitting through the copper-chlorine and sulphur-based cycles. Cycle configurations, gear layout, modeling and implementation matters are provided and mentioned. The booklet presents the reader with an summary of the foremost permitting applied sciences in the direction of the layout and industrialization of hydrogen crops which are co-located and associated with nuclear crops within the future.

The publication contains illustrations of expertise advancements, tables that summarize key good points and effects, overviews of contemporary advances and new equipment of nuclear hydrogen creation. the newest effects from top specialists within the fields might be offered, together with efficiencies, expenses, gear layout, and modeling.

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The grid can generate hydrogen in a delocalized or localized manner. Grid-connected water electrolyzers of capacity up to hundreds of kW or 1 MW can be distributed over a territory—especially in urban regions—to generate hydrogen in a delocalized manner. High-temperature electrolysis systems and thermochemical water splitting cycles can be coupled to heat-rejecting power plants to generate large quantities of hydrogen at their locations. The plants can be equipped with fuel cells to generate back electricity when the grid needs it, or the hydrogen can be sold to local transportation or industrial sectors.

Hydrogen option represents a potential solution for transportation sector where it can be used either directly (hydrogen is stored onboard of vehicles) or indirectly (hydrogen is converted in a synthetic fuel such as gasoline, diesel, methanol, or ammonia). All means of transportation can benefit from hydrogen as energy carrier; in this chapter the road, rail, and air transport are analyzed in detail. 1 Introduction The constant rise of energy demand in the world imposes an increasing supply of power generation capacity, while efforts must be made to reduce the greenhouse gas (GHG) emissions associated with higher capacity.

Weekends), the electricity price is low. The low price of electricity in off-peak periods creates the opportunity to generate relatively cheap hydrogen. The cost of grid-produced hydrogen correlates with three factors: (1) the price of electricity; (2) additional electrolysis capacity, above a continuous level that does not vary with electricity prices throughout the day; and (3) the required storage of 2 Nuclear Energy and Its Role in Hydrogen Production 300 60 Price Below Threshold 250 50 Price Above Threshold % Above Threshold 200 40 150 30 100 20 50 10 0 20 30 40 44 48 55 65 75 Threshold Price ($/MWh) 90 110 Above threshold (%) Average Electricity Price ($/MWh) 32 0 Fig.

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