35
Instalacje basenowe
Comparative analysis of water consumption
in twinned indoor swimming pools
in aSilesian Voivodeship of Poland
Analiza porównawcza zużycia wody wbliźniaczych krytych pływalniach
wwojewództwie śląskim, wPolsce
ANNA MIKASHALYHA, JOANNA WYCZARSKAKOKOT, ANNA LEMPARTRAPACEWICZ
DOI 10.36119/15.2025.2.5
Introduction
The contemporary geopolitical land-
scape, coupled with an escalating water
crisis marked by increasingly frequent
droughts followed by severe floods and
other natural disasters, requires urgent and
comprehensive intervention from govern-
ments, facility managers, and urban plan-
ners. Acentral challenge in this context is the
need to minimize the anthropogenic impacts
on ecosystems to preserve their integrity and
stability [1–4].
Modern society is characterized by sig-
nificant dynamism, evident in enhanced qual-
ity of life, escalating consumerism, and an
increased reliance on non-renewable
resources. Regrettably, these factors have led
to awidening disparity between the essential
requirements of the natural environment and
the socio-economic demands of society. As
consumer expectations rise, the strain on nat-
ural resources increases, underscoring the
need for strategies that promote both eco-
nomic development and environmental sus-
tainability [5,6].
To address these complex issues, it is
imperative to adopt a holistic sustainable
development strategy that includes rational
resource management, ecological education
initiatives, and the promotion of conscious
lifestyle changes among individuals and com-
munities. By enhancing awareness of the
mgr inż. Anna Mika-Shalyha https://orcid.org/0009-0007-7733-039X ‒ Politechnika Śląska, Wydział Inżynierii Środowiska iEnergetyki,
Katedra Inżynierii Wody iŚcieków, Gliwice. PPUH Transcom Sp. zo.o., Katowice. e-mail: anna.mika-shalyha@polsl.pl
dr hab. inż. Joanna Wyczarska-Kokot, prof. PŚ https://orcid.org/0000-0002-2284-8542 ‒ Politechnika Śląska, Wydział Inżynierii Środowiska
iEnergetyki, Katedra Inżynierii Wody iŚcieków, Gliwice
dr inż. Anna Lempart-Rapacewicz https://orcid.org/0000-0002-7524-1277 ‒ Politechnika Śląska, Wydział Inżynierii Środowiska iEnergetyki,
Katedra Inżynierii Wody iŚcieków, Gliwice. PPUH Transcom Sp. zo.o., Katowice. e-mail: anna.lempart-rapacewicz@polsl.pl.
Adres do korespondencji/Corresponding author e-mail: joanna.wyczarska-kokot@polsl.pl
I nstalacje basenowe/Pool installations
Swimming pools, due to their specific nature, are sports facilities for which demand is highest for water of aquality
subject to restrictive regulations. The objective of this study is to provide adetailed characterisation of the structure of
water consumption in three ‘twin’ swimming pool facilities located in Poland, in the Silesian Voivodeship. Each of the
analysed facilities includes asports pool, arecreational pool with water attractions, awater slide, awhirlpool and
achildren’s paddling pool. The findings of this study demonstrate astrong correlation between water consumption
and the type of users and water management practices employed. In particular, it was found that recreational pools
with water attractions (slides, whirlpools) used significantly more water than traditional sports pools. The findings of this
case study offer avaluable foundation for the development of strategies aimed at enhancing the efficiency of water
management in swimming pool facilities.
Keywords: swimming pools, water consumption, effective management, sustainability, technology optimisation.
Obiekty basenowe, ze względu na swoją specyfikę, są obiektami sportowymi onajwiększym zapotrzebowaniu na
wodę ojakości regulowanej restrykcyjnymi przepisami. Niniejsza praca ma na celu szczegółową charakterystykę
struktury zużycia wody wtrzech „bliźniaczych” obiektach basenowych zlokalizowanych wPolsce, wwojewódz-
twie śląskim. Wkażdym zanalizowanych obiektów znajduje się basen sportowy, basen rekreacyjny zatrakcjami
wodnymi, zjeżalnia wodna, wanna zhydromasażem ibrodzik dla dzieci. Wyniki badań dowodzą, że istnieje
silna korelacja między zużyciem wody arodzajem użytkowników istosowanymi praktykami zarządzania wodą.
Wszczególności dla basenów rekreacyjnych wyposażonych watrakcje wodne (zjeżdżalnie, hydromasaże) wyka-
zano znacznie wyższe zużycie wody wporównaniu ztradycyjnymi basenami typu sportowego. Wyniki niniejsze-
go studium przypadku mogą zostać wykorzystane do opracowania strategii optymalizacji efektywnego zarządza-
nia wodą wobiektach basenowych.
Słowa kluczowe: baseny, zużycie wody, efektywne zarządzanie, zrównoważony rozwój, optymalizacja techno-
logii.
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I
importance of sustainability, it is possible to
maintain ahigh standard of living while simul-
taneously mitigating adverse environmental
impacts.
As social priorities evolve, there is
agrowing demand for amodern sports infra-
structure, particularly in terms of physical
activity and healthy living. However, many
existing facilities, such as swimming pools
and aqua parks, require substantial modern-
ization, especially in terms of technical infra-
structure, energy systems and effective water
and wastewater management [7–9].
This work aims to provide a detailed
analysis of water consumption patterns in
three comparable swimming pool facilities in
Poland. Despite the implementation of con-
temporary technological solutions, the levels
of water consumption in these facilities
remain high. Asystematic comparison of this
data with analogous facilities in other Euro-
pean countries will facilitate the identification
of best practices and the development of
innovative solutions aligned with sustainable
development principles and closed-water
circulation systems in the design of modern
swimming pools in Poland [10,11].
One critical issue is the irreversible loss of
significant amounts of water that is dis-
charged into sewage systems. Establishing
legislative measures that impose strict limits
on water and electricity consumption for
investors, stakeholders from the public sector,
and facility managers is essential [12]. Such
regulations would encourage the adoption
of advanced devices and technologies that
improve resource management efficiency. By
implementing these practices, facilities can
maintain high-quality service delivery while
significantly reducing the wastage of essen-
tial natural resources [13,14].
The water used within swimming pools
encompasses various activities, including the
washing of filters, the operation of foot pad-
dling pools, compensation for losses due to
splashing and evaporation, and periodic
replacement of water. Fortunately, these
water sources can be effectively recycled
through the appropriate systems. Advanced
technologies, such as membrane filtration
processes, ozonation systems, and advanced
oxidation methods, facilitate the safe and
efficient treatment of water, thereby allowing
for its reuse in replenishing swimming pool
basins or for sanitary purposes [15–18].
In addition, sports and swimming pool
facilities typically feature large roof surfaces
that present valuable opportunities for rain-
water collection. Rainwater harvested can
serve multiple applications, including irriga-
tion of green spaces during summer months
or as aresource for technological and sani-
tation processes. By analyzing data on water
consumption, user attendance patterns, and
the specific characteristics of each facility, it is
possible to establish clear and actionable
principles aimed at optimizing water man-
agement practices. This analysis also enables
user profiling, identifying potential risks, and
the formulation of effective water conserva-
tion strategies [19].
In conclusion, the implementation of
modern sustainable technologies in sports
facilities not only contributes to environmental
protection, but also advances the develop-
ment of infrastructure according to global
sustainable development objectives. By pri-
oritizing sustainability within the sports and
recreation sector, significant progress can be
made towards the promotion of ahealthier
environment and the adoption of a more
responsible approach to water resource
management [20].
Materials and methods
Subject of the study
The objective of this study was to perform
an analysis of water consumption in three
sports facilities (P1, P2 and P3) located in the
Silesian Voivodeship in Poland, which encom-
passed both a swimming pool area and
asports complex. All facilities were operated
by a single management company, which
facilitated the implementation of a uniform
management system. Standardization of pro-
cedures, including the filter washing schedule,
disinfection processes, and maintenance of
water quality parameters, was an essential
component of the research methodology. This
approach ensured that data related to water
consumption in the analysed facilities could be
effectively compared.
Characteristics of the twin sports facilities
The analysed facilities (P1, P2 and P3)
are divided into three functional zones.
The first zone is designated as the public
area, which encompasses the entrance hall
with acafé, cash registers, changing rooms,
and administrative offices. This area facilitates
access to the changing rooms within the
sports zone, the swimming pool, and the
spectator stands.
The second zone is the large swimming
pool hall. There is asports pool (25 m × 16 m)
that has been constructed in accordance with
the requirements of the FINA to host com-
petitive events, a pool designed for swim-
ming instruction and recreational water activ-
ities. The recreational part incorporates
avariety of water attractions, including neck
massages, wall and water-air massages, an
air geyser, awater mushroom, air benches,
a jacuzzi, a paddling pool for young chil-
dren, and a braking tub for water slides.
Additionally, the facilities feature 80-meter-
long slides, with portions extending out-
doors, as well as aselection of hydromas-
sage tubs and sauna zones.
The third zone is the ‘dry’ sports section
which comprises afitness zone and agym,
both of which are equipped with changing
facilities and sanitary amenities accessible to
people with disabilities. The main sports hall
includes courts for volleyball and basketball.
Aseparate reception area, intended as acus-
tomer service point, is equipped with await-
ing room for patrons of the sports section.
The complete technical infrastructure for
the facilities is situated in the sub-basin, thus
ensuring efficient management of the opera-
tion and maintenance processes.
The swimming pool area (in each swim-
ming pool facility) is equipped with four
closed-water treatment circuits (systems): sys-
tem Ifor sports pool (SP), system II for recre-
ational pool with slide (RP), system III for
whirlpool tubs (WT) and system IV for chil-
dren’s paddling pool.
Table 1 provides a comprehensive sum-
mary of the technical parameters associated
with each system that operates as an indepen-
dent water treatment plant. It is essential to
emphasize that the water flow in the individual
circuits is fully segregated, thus precluding any
potential for cross-contamination.
Characteristic of the filtration process and
water circulation systems
The facility employs two distinct filtration
systems: under pressure filtration (system
Iand II) and pressure filtration (system III and
IV). The under pressure filtration system is
designed with an overflow pocket that has
Table 1. Technical data of swimming pool systems in p1, P2 and P3 facilities
Tabela 1. Parametry techniczne systemów basenowych wobiektach P1, P2 iP3
Parameter System I(SP) System II (RP) System III (WT) System IV (CP)
Internal dimensions of the pool [m] 25 × 16 irregular shape Ø2.35 irregular shape
Water surface area [m
2
] 400 205.8 4.0 28.8
Pool basin volume [m
3
] 600 210 3.6 14.7
Temperature of water [°C] 28 30 34 32
Circulating water flow [m
3
/h] 178 260 72 28
Type of filtration Under pressure Pressure
Number of filters [pcs] 2 3 1 1
Filter dimensions [m] 3.0 × 2.0 × 2.3 3.0 × 2.0 × 2.3 D=1.8m D=1.2m
Media type gravel and sand with alayer of activated carbon
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Instalacje basenowe
asignificantly larger surface area, allowing
more efficient washing while utilizing consid-
erably less water. Consequently, this system
is particularly advantageous for swimming
pool applications that require substantial
volume and filtration capacity.
In contrast to conventional closed rapid
filters, under pressure filters separate the
inflow of untreated water from the collection
of filtered water, necessitating process auto-
mation. Water from the expansion tank is
transferred to the filter via apump that oper-
ates on an inverter system, which is con-
trolled based on water level measurements
obtained from a pressure transducer. This
configuration ensures the maintenance of
aconstant water level within the filter.
Concurrently, water is extracted from the
filter by another pump, also powered by an
inverter, and regulated by measurements
obtained from an electromagnetic flowmeter.
This design guarantees consistent filtration
efficacy, regardless of the level of contamina-
tion within the filtration bed.
Circuits III and IV utilize traditional pres-
sure filtration methods, employing multilayer
pressure filters containing activated carbon.
Circulation pumps draw water from the
expansion tank and are integrated with apre-
filter that captures larger impurities, thus pro-
tecting the rotors and other components of the
installation from potential damage. The filtered
water is subsequently pumped into the pres-
sure filters located in the individual systems.
Before the filtration process, acoagulant is
dosed to optimize filtration effectiveness. The
appropriate dosage is determined based on
the concentration of the active agent, Al
3+
.
According to the standard DIN19643 [21],
the minimum required dose of active coagu-
lant is 0.5 g Al
3+
/m
3
. Following coagulant
dosing, solid impurities are eliminated within
the pressure filter, which features amultilayer
sand-gravel bed containing activated carbon
with atotal height of 1.2 meters.
Backwashing of the filter is scheduled at
least every three days [22] and is conducted
when the pool is unavailable to users. The
water used for washing is obtained from the
expansion tank, ensuring that the process
employs operational water.
Following the filtration process, the water
is directed to the heat exchangers to achieve
the desired temperature. Before heating, the
water is disinfected by ultraviolet (UV) irradi-
ation. The pH adjuster (sulphuric acid) and
disinfectant (sodium hypochlorite) are then
dosed (Fig. 1). Given the alkaline nature of
sodium hypochlorite, it is imperative that the
pH corrector possess an acidic reaction to
maintain the pool water within the requisite
pH range of 6.5 to 7.6 [23]. The dosing of
both the pH corrector and the disinfectant,
together with the regulation of their respective
concentrations in the pool water, is super-
vised by an automated control and measure-
ment system that directly controls the dosing
pumps. Subsequently, the treated pool water
is transported to the pool basin through asys-
tem of bottom supply channels installed at the
base, which incorporate hydromassage jets
that are an essential component of the pool
basin.
Characteristics of water consumption in
facilities
The use of water in swimming pool facili-
ties can be classified into two primary cate-
gories:
l Domestic and utility water – This catego-
ry encompasses water utilized for the
essential daily needs of facility users,
including operations related to rest-
rooms, showers, cleaning equipment,
and catering services. This water is vital
for ensuring user comfort and efficient
functioning of the facility.
l Technological water – This category
pertains to water employed in various
technological processes, such as the
backwashing of filters, operation of foot
paddling pools, and the compensation
for water losses resulting from evapora-
tion and splashing in pool basins. Tech-
nological water is essential to maintain
appropriate water quality parameters
and ensure the effective operation of fil-
tration systems.
In the context of analysing the use of
water in swimming pool facilities, technologi-
cal water is of particular significance, as it
frequently serves as the primary source of
wastewater generation. Water used in filtra-
tion processes and maintaining pool water
quality is associated with substantial losses
and corresponding operational costs. Thus,
an in-depth understanding of technological
water consumption is imperative for manag-
ing the operational expenses of the facility
and optimizing the water treatment process-
es. Furthermore, it is crucial to continuously
address water losses due to evaporation and
splashing, as these factors significantly influ-
ence the overall water balance within the
facility.
Methodology for measuring water
demand
Water consumption in the three swim-
ming pool facilities under analysis was sys-
tematically monitored utilizing data obtained
from the Building Management System
(BMS), which incorporated water meters
equipped with M-Bus overlays. This system
facilitates the direct transmission of water
meter readings to the M-Bus wired network,
thereby allowing for continuous and accu-
rate monitoring of water usage. Furthermore,
the readings from the water meters were
regularly verified to rectify any potential
measurement errors.
During the entire analysis period, the
water quality consistently adhered to the rel-
evant standards. The water utilized in the
swimming pools was subjected to compre-
hensive testing to ensure compliance with
quality benchmarks as stipulated in legal
regulations, including the Regulation of the
Minister of Health dated May 10, 2022 [23].
Managers of pool facilities are required
to continuously oversee water quality through
regular physicochemical and bacteriological
assessments. This practice is imperative to
ensure user safety and to maintain compli-
ance with the applicable sanitary standards.
Results
From July 2023 to September 2024,
acomprehensive evaluation was conducted
on three twin swimming pool facilities (P1, P2
and P3) located in the Silesian Voivodeship in
Poland, all operated by the same manage-
ment company. The primary objectives of this
research were to analyse the consumption of
water for technological requirements and to
assess the quality of the water. Throughout the
evaluation period, the water quality in all the
facilities examined consistently adhered to the
rigorous standards stipulated in the Minister of
Health Regulation for water intended for use
in swimming pools [23].
Water consumption analysis –
Sports Pool
Analysis of average monthly water con-
sumption in the sports pools, illustrated in
Figure 2a, revealed that the facility P1 exhib-
ited the lowest consumption, averaging
166.63 m
3
per month. This figure was 51 m
3
,
or 24%, lower than the consumption levels
observed in facilities P2 and P3, which
recorded average monthly consumptions of
Figure 1.
Scheme of the pool water treatment
Rysunek 1. Schemat oczyszczania wody base-
nowej
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I
217.23 m
3
and 218.74 m
3
, respectively. The
similarity in the consumption levels of facilities
P2 and P3 indicates comparable operational
characteristics; however, the P2 facility
attracted a significantly higher number of
users, which directly contributed to elevated
water consumption.
Water consumption analysis –
Recreational Pool
Regarding recreational pools, the assess-
ment demonstrated relative stability in water
consumption in all three facilities from July
2023 to May 2024. In particular, the months
of June and July deviated from this trend, as
the facility P3 was temporarily closed for
technological maintenance, resulting in
asignificant decrease in its average monthly
consumption, which fell to 303.38 m
3
. On
the contrary, facility P1 maintained an aver-
age of 341.92 m
3
per month, while facility
P2 recorded an average of 347.75 m
3
per
month (Fig. 2b). The increase in consumption
in facility P2 during this period, which
reached apeak of 441.8 m
3
per month, can
be attributed to its obligation to accommo-
date users displaced from the inactive P3
facility, illustrating the interconnected nature
of usage in the facilities.
Water consumption analysis –
Whirlpool Tubs
The evaluation of the water consumption
of the whirlpool tubs showed ahigh variabili-
ty, closely related to the frequency of use.
Facility P2, recognised for its popularity with
customers, reported the highest average
monthly water consumption at 152.57 m
3
. This
figure represents an increase of 24% com-
pared to the facility average of 122.90 m
3
and is 40% higher than the facility average of
91.43 m
3
(Fig. 2c). These differences in con-
sumption levels are mainly due to factors such
as increased water loss due to splashing, sig-
nificant evaporation, and agreater need for
frequent filter washing, all of which are exac-
erbated by the high frequency of use.
Water consumption analysis –
Childrens Pool
Finally, the study of children’s pools
revealed astrong correlation between water
consumption, user attendance, and the fre-
quency of swimming lessons. Facility P2 had
the highest average monthly water consump-
tion in this category, reaching 62.26 m
3
. This
increased consumption can be attributed to
the strategic location of the facility close to
local schools, making it apreferred option for
families and educational activities. In com-
parison, facility P1 recorded an average of
46.78 m
3
per month, while facility P3 record-
ed an average of 44.82 m
3
per month,
indicating that facility P2’s consumption was
33% higher than P1 and 39% higher than P3
(Fig. 2d). These data highlight the impact of
demographics of users and geographical
considerations on the effective management
of water resources throughout the facilities.
The percentage share of water consump-
tion of the analysed swimming pool facilities
(P1, P2, P3), categorised by individual water
systems, is shown in Figure 3. An analysis of
the data shows that recreational pools
account for the majority of water consump-
tion. This predominance can be attributed to
the specific operational characteristics of
these pools, which have anumber of water
and air attractions, including water slides.
Such features result in significant water losses
due to evaporation, splashing and the oper-
ational demands of auxiliary systems.
Sports Pools – SP
Sports pools, which represent the largest
capacity in terms of volume and surface area,
rank second in terms of water consumption
c)a)
d)
b)
Figure 2.
Water consumption for pool facilities (P1, P2, P3) depending on the type of pool basin
a) Sports pool (SP), b) Recreation pool (RP), c) Whirlpool Spa tubs (WT), d) Childrens paddling pool (CP)
Rysunek 2. Zużycie wody dla obiektów basenowych (P1, P2, P3) wzależności od rodzaju niecki basenowej a) Basen sportowy (SP), b) Basen rekre-
acyjny (RP), c) Wanny zhydromasażem (WT), d) Brodzik dla dzieci (CP)
a) b) c)
Figure 3.
Average annual water consumption for individual types of swimming pools in the three analysed
facilities a) P1, b) P2, c) P3
Rysunek 3. Średnie roczne zużycie wody dla poszczególnych rodzajów niecek basenowych
wtrzech analizowanych obiektach a) P1, b) P2, c) P3
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Instalacje basenowe
distribution. Although these pools have rela-
tively low levels of contamination and reduced
spray losses, their significant volume has asig-
nificant impact on total water consumption. In
facility P1, the sports pool is responsible for
25% of the total water consumption, which
amounts to 116.6 m
3
per month. Conversely,
in facilities P2 and P3, the percentage is sig-
nificantly higher at 28% (218 m
3
/month) and
34% (218 m
3
/month) respectively, indicating
amore intensive use of these facilities.
Recreational Pool – RP
In facility P1, the recreational pool
accounts for 51% of the total water consump-
tion, corresponding to an average monthly
consumption of 341.92 m
3
. Facility P2 shows
ashare of 45%, corresponding to amonthly
consumption of 347.75 m
3
. In contrast, P3
shows that the recreational pool accounts for
47% of the total consumption, with amonthly
figure of 303.38 m
3
. The higher percentage of
water consumption in these pools is due to the
high level of user engagement and the spe-
cialised nature of the additional equipment.
Whirlpool Spa Tubes – WT
Whirlpool Spa tubes are the third largest
contributor to water consumption, despite
their modest average volume of 3.6 m
3
.
Significant water losses occur through evap-
oration and splashing by users. In facility P1,
spas account for 17% of total water con-
sumption, asignificant figure given their lim-
ited capacity. In facility P2, the percentage
rises to 20%, while facility P3 accounts for
14%. The variations in these percentages are
due to differences in user load and the
operational context of each facility.
Childrens Paddling Pools – CP
Children’s paddling pools have the low-
est water losses of all the systems analysed. In
facilities P1 and P3, the percentage is 6%,
while in facility P2 it is slightly higher at 8%.
The lower water consumption in paddling
pools is mainly due to their limited volume
and the comparatively lower number of users
compared to other systems.
Discussion
Sports facilities, especially indoor swim-
ming pools, consume considerable amounts
of water for various technological, opera-
tional and hygienic purposes. This extensive
water use results in the generation of signifi-
cant amounts of wastewater, posing achal-
lenge to effective water resource manage-
ment and sustainability efforts [24-26].
A fundamental component of optimising
water use in these facilities is the implementa-
tion of rational water management practices,
which include monitoring water use and
identifying areas for improvement.
Effective management of water resourc-
es in swimming pools requires careful consid-
eration of water reuse options, including the
use of treated water in technological pro-
cesses. It is also essential to minimise losses
due to evaporation, splashing and inefficien-
cies resulting from operational failures or
inappropriate use.
A study carried out by the authors on
water consumption in three swimming pool
facilities located in the Silesian Voivodeship of
Poland revealed a significant correlation
between water consumption levels and vari-
ous facility parameters, functions, and num-
ber of users. Research conducted by Flora
Silva et al. [7] on aswimming pool facility in
Portugal, which featured both sports and
recreational pools, indicated an annual water
consumption of 8,440.8 m
3
. Most of this
water was used for technological processes,
such as filter washing and maintenance of
pool basins. The facility’s parameters included
awater surface area of 591.6 m
2
and atotal
water volume of 1,050 m
3
, serving as
abenchmark for comparative research.
The results obtained from the analysis of
the three facilities in Silesia (P1, P2, and P3)
revealed annual water consumption figures of
8,002.9 m
3
, 9,205.9 m
3
, and 8,130.1 m
3
,
respectively. These figures are approximately
consistent with the data collected by the Por-
tuguese research team, indicating potential
areas for knowledge exchange on effective
water management practices in similar swim-
ming pool facilities.
The research carried out by Kampel [27]
in his dissertation focused on a swimming
pool facility with a water surface area of
637.5 m
2
, which resulted in an annual water
consumption of 11,817 m
3
. This figure was
found to be 22% higher than the highest
recorded consumption of the facilities in the
Silesian Voivodeship (P2) and 28.6% higher
than the data obtained by the Portuguese
research team [7].
Additional analyses by aSpanish research
team indicate that the average annual water
consumption is 2,017 m
3
per swimming pool
basin [28], largely due to the need for filter
washing. The authors’ results correlate closely
with an average of 2,111.58 m
3
, further vali-
dating the accuracy of the data. With regard
to filter rinsing technology, research by Domé-
nech-Sánchez et al. [28] indicates an average
water consumption of 5.53 m
3
per filter rinse
for a single swimming pool, which is in line
with the results of this study of 5.57 m
3
.
Acomparison of daily water consumption
for filter rinsing between Portuguese studies
and data from the Silesian Voivodeship
reveals significant discrepancies. In Portu-
guese studies [7], daily consumption was
determined to be 15.7 m
3
for the sports pool
and 7.7 m
3
for the pool for swimming lessons.
On the contrary, the average daily consump-
tion of the sports pool in the facilities P1, P2,
and P3 in Silesia was only 6.48 m
3
, represent-
ing approximately one-third of the figures
observed in the Portuguese studies. Asimilar
discrepancy emerged for the children’s pool,
where the average daily consumption was
1.52 m
3
, and for the recreational pool, where
it was 10.67 m
3
. It is crucial to recognize that
comparing water consumption between rec-
reational pools and swimming lesson pools
requires consideration of the differing roles
these facilities play. The recreational pool, in
addition to serving as a swimming training
area, includes enhanced features such as an
air-water massage zone and a water slide,
both of which significantly contribute to
increased water consumption.
The research conducted by Marco
Maglionico and Irena Stojkov [29] on water
consumption in asmall pool (12 m × 5.5 m ×
1.2 m) located in Bologna, Italy, showed
adaily water consumption of 9.5 m
3
on days
designated for school and club classes. This
figure is closely aligned with the daily con-
sumption of 10.67 m
3
recorded in arecre-
ational pool in Poland. On days without
classes, consumption decreased to 6 m
3
, with
technological water usage for filter washing
that was 4.03 m
3
per day in this case.
Cardoso et al. [11] also conducted
research in Portugal, comparing water con-
sumption between various swimming pool
facilities by analysing the consumption per
m
2
of water surface area. Their findings dem-
onstrated Environmental Performance Index
(EPI) values of 17 m
3
/m
2
for afacility that
covered 576 m
2
(resulting in an annual con-
sumption of 9,792 m
3
) and 20 m
3
/m
2
for
afacility with 746 m
2
(resulting in an annual
consumption of 14,920 m
3
). The consistency
of these values with those obtained from the
Silesian Voivodeship, which reported water
consumption indicators of 12.5 m
3
/m
2
(P1),
14.4 m
3
/m
2
(P2), and 12.7 m
3
/m
2
(P3),
underscores the need to analyse water con-
sumption indicators in the context of different
types of swimming pool facilities.
Conclusions
A detailed investigation into water con-
sumption was conducted in three different
swimming pool facilities, encompassing both
sports and recreational pools that feature
water attractions such as water slides, hot tubs,
and paddling pools for children. The findings
of this research are summarised as follows:
l Average water consumption for swim-
ming pool operations:
40
I
The mean annual water consumption was
measured at 8,446.3 m
3
, which equates to an
average monthly consumption of 703.9 m
3
.
This figure represents the essential demand for
water required to support the day-to-day
operations of the swimming pool facilities. This
includes compensating for water losses, con-
ducting filter rinsing processes, and ensuring
the maintenance of water quality.
l Correlation between water consumption
and user attendance:
A robust correlation has been demon-
strated between the number of users of recre-
ational pools, water attractions, and instruc-
tional swimming pools, and the quantity of
water consumed. An increase in the number
of bathers has been shown to be directly cor-
related with increased water consumption.
This is attributed to increased splashing, ele-
vated levels of water contamination, and the
need for more frequent filter washing.
l Stability of water consumption in sports
pools:
Sports pools are distinguished by their
stable water consumption patterns, which
exhibit comparability in various facilities. This
consistency can be attributed to two main fac-
tors. Firstly, there is the issue of standardised
pool volumes. Secondly, there is the issue of
the focused nature of user activity, which pre-
dominantly involves swimming as opposed to
the utilisation of recreational amenities.
l Specific characteristics of hot tub water
consumption:
Despite the relatively modest water vol-
ume and surface area occupied by hot tubs,
they are associated with significant water
consumption. The primary factors contribut-
ing to this high level of consumption include:
water splashing induced by users and the
operation of air bubble-generating devices,
and high degrees of water pollution necessi-
tating frequent filter washing and regular
water replacement.
l Influence of swimming lessons on water
consumption:
Anear two-fold increase in water con-
sumption is observed during intensive peri-
ods of swimming lessons for children in swim-
ming pools. This increase can be attributed to
two main factors: the increase in the number
of participants and the intensified use of the
associated infrastructure.
l Recreational pools as the preeminent
water consumers:
The analysis showed that recreational
pools have the highest average monthly water
consumption, calculated at 331.02 m
3
. This
volume is almost 40% higher than that of
sports pools, despite the latter having three
times the volume capacity. Such findings high-
light the significant impact of user demograph-
ics and the presence of water attractions on
overall water consumption levels.
In conclusion, the present analysis dem-
onstrates that the structural characteristics
and specific usage patterns of swimming
pool facilities are fundamentally important to
determine the intensity of water consumption.
The insights derived from this research can
inform the development of optimisation strat-
egies for effective water management within
swimming pool facilities.
Acknowledgements
This work was supported by the Polish
Ministry of Science and Higher Education as
part of the “Implementation Doctorate 2023”
program, No. DWD/7/0330/ 2023.
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