# Adsorption and Cooling Systems

**Type:** Topics  
**Canonical URL:** https://scholariq.org/topics/adsorption-and-cooling-systems/

## Facts

| Field | Value |
| --- | --- |
| Description | This cluster of papers focuses on thermochemical energy storage, sorption technologies, and related applications such as adsorption refrigeration, desiccant cooling, solar energy storage, and heat and mass transfer. It covers topics including solid sorption systems, membrane-based enthalpy exchangers, seasonal heat storage, liquid desiccant dehumidification, and energy recovery technologies. |
| Domain | Physical Sciences |
| Field | Engineering |
| OpenAlex ID | t11774 |
| Works | 22 |

## Topic papers all

Showing 15 of 22.

- [Energy, exergy, and economic analyses of an innovative energy storage system; liquid air energy storage (LAES) combined with high-temperature thermal energy storage (HTES)](https://scholariq.org/papers/energy-exergy-and-economic-analyses-of-an-innovative-energy-storage-system/)
- [Thermodynamic and economic investigation of a novel integration of the absorption-recompression refrigeration system with compressed air energy storage (CAES)](https://scholariq.org/papers/thermodynamic-and-economic-investigation-of-a-novel-integration-of-the/)
- [Microencapsulation of Metal-based Phase Change Material for High-temperature Thermal Energy Storage](https://scholariq.org/papers/microencapsulation-of-metal-based-phase-change-material-for-high-temperature/)
- [A comparative study between ORC and Kalina based waste heat recovery cycles applied to a green compressed air energy storage (CAES) system](https://scholariq.org/papers/a-comparative-study-between-orc-and-kalina-based-waste-heat-recovery-cycles/)
- [Investigation of an efficient and environmentally-friendly CCHP system based on CAES, ORC and compression-absorption refrigeration cycle: Energy and exergy analysis](https://scholariq.org/papers/investigation-of-an-efficient-and-environmentally-friendly-cchp-system-based-on/)
- [Microencapsulated phase change materials with high heat capacity and high cyclic durability for high-temperature thermal energy storage and transportation](https://scholariq.org/papers/microencapsulated-phase-change-materials-with-high-heat-capacity-and-high-cyclic/)
- [Macro-encapsulation of metallic phase change material using cylindrical-type ceramic containers for high-temperature thermal energy storage](https://scholariq.org/papers/macro-encapsulation-of-metallic-phase-change-material-using-cylindrical-type/)
- [High thermal conductivity phase change composite with percolating carbon fiber network](https://scholariq.org/papers/high-thermal-conductivity-phase-change-composite-with-percolating-carbon-fiber/)
- [Thermal analysis of Al–Si alloys as high-temperature phase-change material and their corrosion properties with ceramic materials](https://scholariq.org/papers/thermal-analysis-of-al-si-alloys-as-high-temperature-phase-change-material-and/)
- [Cotton-derived carbon sponge as support for form-stabilized composite phase change materials with enhanced thermal conductivity](https://scholariq.org/papers/cotton-derived-carbon-sponge-as-support-for-form-stabilized-composite-phase/)
- [Honeycomb carbon fibers strengthened composite phase change materials for superior thermal energy storage](https://scholariq.org/papers/honeycomb-carbon-fibers-strengthened-composite-phase-change-materials-for/)
- [Water Vapor Adsorbent FAM-Z02 and Its Applicability to Adsorption Heat Pump](https://scholariq.org/papers/water-vapor-adsorbent-fam-z02-and-its-applicability-to-adsorption-heat-pump/)
- [Synergistic enhancement of phase change materials through three-dimensional porous layered covalent triazine framework/expanded graphite composites for solar energy storage and beyond](https://scholariq.org/papers/synergistic-enhancement-of-phase-change-materials-through-three-dimensional/)
- [Nano-enhanced phase change materials for thermal energy storage: A comprehensive review of recent advancements, applications, and future challenges](https://scholariq.org/papers/nano-enhanced-phase-change-materials-for-thermal-energy-storage-a-comprehensive/)
- [Water sorption on composite material “zeolite 13X modified by LiCl and CaCl2”](https://scholariq.org/papers/water-sorption-on-composite-material-zeolite-13x-modified-by-licl-and-cacl2/)

## Topic primary papers

- [Energy, exergy, and economic analyses of an innovative energy storage system; liquid air energy storage (LAES) combined with high-temperature thermal energy storage (HTES)](https://scholariq.org/papers/energy-exergy-and-economic-analyses-of-an-innovative-energy-storage-system/)
- [Water Vapor Adsorbent FAM-Z02 and Its Applicability to Adsorption Heat Pump](https://scholariq.org/papers/water-vapor-adsorbent-fam-z02-and-its-applicability-to-adsorption-heat-pump/)
- [Water sorption on composite material “zeolite 13X modified by LiCl and CaCl2”](https://scholariq.org/papers/water-sorption-on-composite-material-zeolite-13x-modified-by-licl-and-cacl2/)
- [Novel Water Vapor Adsorbent FAM-Z01 and its Applicability to an Adsorption Heat Pump](https://scholariq.org/papers/novel-water-vapor-adsorbent-fam-z01-and-its-applicability-to-an-adsorption-heat/)
- [A review of dew-point evaporative cooling: Recent advances and future development](https://scholariq.org/papers/a-review-of-dew-point-evaporative-cooling-recent-advances-and-future-development/)

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Source: ScholarIQ — public research metadata, principally OpenAlex. See https://scholariq.org/sources/ for provenance and https://scholariq.org/methodology/ for what these figures mean.
