Recent Advancements in Ventilation Systems Used to Decrease Energy Consumption in Buildings—Literature Review
Abstract
:1. Introduction
1.1. Ventilation System Requirements
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- the building envelope should be airtight to achieve energy efficiency in the building,
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- ventilation should be controlled: demand-controlled ventilation (DCV) systems should be used,
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- the selection of the ventilation airflow should be based on hygienic or technological reasons,
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- the heat from the exhaust air should be possible to be recovered,
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- Renewable energy sources (RES), such as, e.g., earth-to-air heat exchangers, heat-pumps, etc. are recommended to be used,
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- decentralized systems are recommended.
1.2. The Aim of the Paper
1.3. Literature Review—Materials and Methods
2. Airtightness of the Building’s Envelope as a Basic Requirement for Decreasing Energy Consumption
3. DCV as a Ventilation Control Strategy
- the use of indoor sensors for CO2, occupancy, humidity, etc.
- use of variable air volume (VAV) controllers for central systems,
- dividing a building into zones (zoning) with similar usage characteristics with separate ventilation units responsible for air quality in a given zone, such as in several rooms.
4. Decentralized Ventilation Systems
5. Preheating/Cooling of Outdoor Air in Earth-to-Air Heat Exchanger (EAHE)
6. Heat Recovery from Exhaust Air
7. Conclusions
- This literature review reinforces the belief that:
- airtightness of the building’s envelope is as a basic requirement for efficiency of buildings; in many countries, regulations need to be introduced or revised to suit the current global energy situation,
- lower demand for ventilation airflow and the associated lower amount of energy to drive fans are the main advantages of the ventilation control strategy known as DCV,
- decentralized systems, which do not require the use of long ducts, are an interesting alternative used to save energy, as it is known that the use of a central ventilation system requires more power consumption,
- due to the multitude of solutions and operating conditions, there is no simple answer to the question: which type of ground exchanger is better in terms of energy—multi-pipe or single-pipe? In order to answer this question, a detailed analysis of a given case should be carried out, taking into account the financial and/or energy aspect, or a SWOT analysis (strengths and weaknesses, opportunities and threats),
- the use of mechanical ventilation with heat recovery is actually a necessity regardless of the purpose of the building; such solutions are advantageous for enabling the maintenance of adequate indoor air quality, while improving the thermal performance of buildings.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
CAV | constant air volume |
CO2 | carbon dioxide |
DCV | demand-controlled ventilation |
EAHE | earth-to-air heat exchanger |
HRV | heat-recovery ventilation |
HVAC | heating, ventilation, and air conditioning |
LHC | longitudinal heat conduction |
MERV | minimum efficiency reporting value |
n50 | airtightness coefficient |
PCM | phase-changed materials |
PM | particulate matter |
PV | photovoltaic |
RES | renewable energy sources |
RH | relative humidity |
SC | solar chimney |
U | heat transfer coefficient |
VAV | variable air volume |
VOCs | volatile organic compounds |
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Authors, Year | Title | Journal | Citations | Keywords |
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Paper | Day-Time Airflow | Night-Time Airflow | Thermal Effect |
---|---|---|---|
[87] | 260–280 m3/h | 50–100 m3/h | Reduction in indoor air temperature by 4.4 °C in summer and increase by 6.4 °C in winter |
[88] | 209 m3/h | 139 m3/h | Indoor air temperature 19.7–22.7 °C with outdoor air temperature 12.5–25.0 °C |
[89] | 291.5 m3/h (summer) 388.8 m3/h (winter) | 56.5 m3/h (summer), 90.9 m3/h (winter) | The efficiency of obtaining energy from the ground was 86% in summer and 61% in winter |
[90] | 252 m3/h (pipes diameter 0.3 m) 166 m3/h (pipes diameter 0.2 m) | 50–70 m3/h (pipes diameter 0.3 m) 45–50 m3/h (pipes diameter 0.2 m) | Reduction in the temperature of the supply air to the room by 12.5–13 K, translating into a cooling power of 1179 W for 0.3 m pipe diameter and 629 W for 0.2 m pipe diameter |
[91] | 252 m3/h | 50–70 m3/h | Reduction in room supply air temperature by 12.5 K, maximum total cooling capacity (latent + sensible): 1398 W |
[92] | 209.5 m3/h with PCM 255 m3/h without PCM | 95 m3/h with PCM 50 m3/h without PCM | Air temperatures at the outlet of EAHE with and without PCM of 24.8–26.5 °C and 24.4–27.2 °C, respectively; more stable indoor thermal comfort with PCM |
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Amanowicz, Ł.; Ratajczak, K.; Dudkiewicz, E. Recent Advancements in Ventilation Systems Used to Decrease Energy Consumption in Buildings—Literature Review. Energies 2023, 16, 1853. https://doi.org/10.3390/en16041853
Amanowicz Ł, Ratajczak K, Dudkiewicz E. Recent Advancements in Ventilation Systems Used to Decrease Energy Consumption in Buildings—Literature Review. Energies. 2023; 16(4):1853. https://doi.org/10.3390/en16041853
Chicago/Turabian StyleAmanowicz, Łukasz, Katarzyna Ratajczak, and Edyta Dudkiewicz. 2023. "Recent Advancements in Ventilation Systems Used to Decrease Energy Consumption in Buildings—Literature Review" Energies 16, no. 4: 1853. https://doi.org/10.3390/en16041853
APA StyleAmanowicz, Ł., Ratajczak, K., & Dudkiewicz, E. (2023). Recent Advancements in Ventilation Systems Used to Decrease Energy Consumption in Buildings—Literature Review. Energies, 16(4), 1853. https://doi.org/10.3390/en16041853