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Effect of natural pressure drop in mine main ventilation

Abstract

Natural ventilation in a mine is ventilation without the use of means of artificial ventilation. The flow of mine air is induced by the difference between the mass column in an intake and that in a return. The difference in mine air density is a result of difference between the temperature of intake air and that of return air. To a certain extent, the influence of differences in mine air humidity and chemical composition can act as well. Gassy mines in the Czech Republic and Ukraine are ventilated merely artificially, i.e. by means of exhaust ventilation. However, even in the case of this type of ventilation, when the total mine air flow is produced by fans, a natural current of air exists and acts in the ventilation network of the mine.

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Effect of natural pressure drop in mine main ventilation

Author: Zapletal, Pavel
Publisher: de Gruyter
Year: 2014
DOI: 10.2478/amsc-2014-0036
Source: https://dspace.vsb.cz/bitstreams/7624fbce-014e-4849-9380-d23489b419cc/download
DOI 10.2478/amsc-2014-0036
A ch. Min. Sci., Vol. 59 (2014), No 2, p. 501–508
Elec onic e sion (in colo ) o his pape is a ailable: h p://mining.a chi es.pl
PAVEL ZAPLETAL*, VLASTIMIL HUDEČEK*, VITALY TROFIMOV**,
EFFECT OF NATURAL PRESSURE DROP IN MINE MAIN VENTILATION
SKUTKI NATURALNEGO SPADKU CIŚNIENIA W GŁÓWNEJ SIECI WENTYLACYJNEJ KOPALNI
Na u al en ila ion in a mine is en ila ion wi hou he use o means o a i icial en ila ion. The low
o mine ai is induced by he di e ence be ween he mass column in an in ake and ha in a e u n. The
di e ence in mine ai densi y is a esul o di e ence be ween he empe a u e o in ake ai and ha o
e u n ai . To a ce ain ex en , he in luence o di e ences in mine ai humidi y and chemical composi ion
can ac as well.
Gassy mines in he Czech Republic and Uk aine a e en ila ed me ely a i icially, i.e. by means o
exhaus en ila ion. Howe e , e en in he case o his ype o en ila ion, when he o al mine ai low is
p oduced by ans, a na u al cu en o ai exis s and ac s in he en ila ion ne wo k o he mine.
Keywo ds: Mine en ila ion, na u al p essu e d op, empe a u e, main an
Na u alna wen ylacja w kopalni o wen ylacja bez wyko zys ania ś odków sz ucznej wen ylacji.
P zepływ kolumny powie za wymuszony jes pop zez óżnicę ciśnień pomiędzy kolumną powie za
na wlocie a p ądem zuży ego powie za. Różnica w gęs ości powie za kopalnianego wynika z óżnicy
empe a u pomiędzy powie zem wlo owym i zuży ym. W pewnym s opniu uwidacznia się akże wpływ
wilgo ności powie za kopalnianego i jego składu chemicznego.
Kopalnie gazowe w Republice Czeskiej i na Uk ainie są p zewie zane p zy użyciu sz ucznej wen yla-
cji, z wyko zys aniem ins alacji wyciągowej. Jednakże nawe w p zypadku zas osowania ego ypu sys emu
wen ylacyjnego w k ó ym p zepływ powie za kopalnianego w całości gene owany jes p zez wen yla o y,
nadal is nieją na u alne p ądy powie za, k ó ych obecność i działanie ujawnia się w sieci wen ylacyjnej.
Słowa kluczowe: wen ylacja kopalni, na u alny spadek ciśnienia, empe a u a, wen yla o główny
* VSB – TECHNICAL UNIVERSITY OF OSTRAVA
** DONECK NATINONAL TECHNICAL UNIVERSITY
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502
In oduc ion
When passing h ough he mine and imagina ily back h ough he su ace a mosphe e,
he mine ai unde goes a e e sible change. F om he a mosphe e he ai o empe a u e T0 and
p essu e p0 lows o he mine whe e he men ioned s a e quan i ies g adually change o T1 up o
Tn and p1 up o pn. The ai exi ing he mine mixes wi h he a mosphe ic ai and, wi h ega d o
he disp opo iona ely la ge olume o he a mosphe ic ank ha can be aken wi h e e ence o
he small amoun o mine ai as in ini e, he ini ial empe a u e T0 and p essu e p0 o ai emain
cons an . The he modynamic cycle is hus closed and hen epea ed again (Suchan, 1984).
The na u al cu en as well as he p essu e d op p oduced by he main an is a sou ce o
ene gy o he low o ai in he mine. The na u al cu en p essu e d op is posi i e i he cu en
ope a es syne gis ically wi h he an and he d op is nega i e i i ope a es non-syne gis ically
wi h he an.
1. Ac i a ion a Combina ion o Fans I and II in Se ies
The ac i a ed cha ac e is ic (AB)AS a elimina ing a an connec ed in se ies (e.g. I) is ob ained
by deduc ing ele an o dina es o he cha ac e is ic o an I (p – Q )1 om indi idual o dina es
o he cha ac e is ic o segmen AB ΔpAB = RAB · Q
2.
Fig. 1. Ac i a ion a combina ion o ans I and II in se ies
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503
The in e sec ion o he ac i a ed cha ac e is ic (AB)AS wi h he cha ac e is ic o an II (p – Q )2
will be designa ed PS; his is he ope a ing poin ha de e mines he condi ions o combina ion
o ans I and II.
The o dina e o poin PS ep esen s he olume low a e Q s in he segmen AB. A pa allel
o he axis o o dina es, unning h ough he poin PS, will in e sec he cha ac e is ic (p – Q )1
a he poin P1S and he cha ac e is ic ΔpAB = RAB · Q
2 a he poin P2S. The o dina e o poin PS
gi es he p essu e g adien Δp2S p oduced by an II, he o dina e o poin P1S gi es he p essu e
g adien Δp1S p oduced by he an I and he o dina e o poin P2S gi es he p essu e g adien ΔpS,
i he ai wi h he olume low a e Q s lows along he segmen AB.
2. Ac i a ion a Pa allel Combina ion o Fans I and II
The ac i a ed cha ac e is ic (AB)AP a elimina ing a an connec ed in pa allel (e.g. II) is ob-
ained by deduc ing ele an segmen s o he cha ac e is ic o an II (Δp – Q
2)2 om indi idual
segmen s o he cha ac e is ic o segmen AB ΔpAB = RAB · Q
2.
Fig. 2. Ac i a ion a pa allel combina ion o ans I and II
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504
The in e sec ion o he ac i a ed cha ac e is ic (AB)AP wi h he cha ac e is ic o an I (p – Q )
will be designa ed PP. A pa allel o he axis o he segmen s passing h ough he poin PP in e sec s
he cha ac e is ic o an II (Δp – Q )2 a he poin P1P and he cha ac e is ic o he segmen ΔpAB
= RAB · Q
2 a he poin P2P. The o dina e o poin PP gi es he olume low a e Q 1P o an I,
he o dina e o poin P1P hen he olume low a e Q 2P o an II and he o dina e o poin P2P
gi es he o e all olume low a e Q 2 in he segmen AB.
The o dina e o poin PP gi es he p essu e g adien ΔpP in he segmen AB and p essu e
g adien s caused by he ans. (P okop e al., 1985, 2011)
3. Replacemen o a Fan by a Na u al Sou ce
o P essu e D op
When one o he ans is eplaced by a na u al sou ce o p essu e d op, a combina ion o he
an and he sou ce o na u al p essu e d op can be deal wi h. The cha ac e is ic o he sou ce o
p essu e d op is ep esen ed in he diag am Δp – Q as a pa allel o he axis Q a a dis ance o
he gi en alue o Δp.
Then h ee cases o in e ac ion be ween he main an and he sou ce o na u al p essu e d op
(na u al p essu e d op = NVP) may occu .
(1) NVP ac s syne gis ically wi h he main an,
(2) NVP ac s non-syne gis ically – agains he ac ion o he main an,
(3) The alue o NVP is so small ha i will no a ec he wo k o he main an.
In Figu e 4 we can see he ac i a ed cha ac e is ic (auxilia y ac i a ed cu e NVP = –320 Pa)
and he ep esen a ion o he ope a ing poin on he ope a ing cha ac e is ic o he an.
We can see ha he ope a ing poin will mo e by he ac i a ion o he mine cha ac e is ic
by 320 Pa downwa ds. This means ha he an only needs “ o p oduce a p essu e d op by 320 Pa
smalle ” o p oduce he equi ed olume ai low a e (Kopáček, 2003).
In addi ion o he ae odynamic esis ance o mine wo kings hemsel es, he main mine an
has o o e come he ae odynamic esis ance o he ai duc , he in e nal esis ance o he an
i sel and he ae odynamic esis ance o he di use . The o al nega i e p essu e ha has o be
p oduced by he an is hen gi en by he ollowing ela ion Δpc
Δpc = Δpdd + Δpk + Δp + Δpd ± Δpn [Pa] (1)
whe e:
Δpc — o al nega i e p essu e, [Pa],
Δpdd — p essu e g adien equi ed o o e coming he o al ae odynamic esis ance o
mine wo kings, [Pa],
Δpk — p essu e g adien equi ed o o e coming he esis ance o he ai duc , [Pa],
±Δpn (NVP) — p essu e g adien due o he na u al p essu e d op, [Pa],
Δp — p essu e g adien necessa y o o e coming he in e nal esis ance o he an
oge he wi h he esis ance o he noise dampe and di use chambe .
To he consump ion o nega i e p essu e we ha e o add he alue o dynamic ( eloci y) com-
ponen o p essu e du ing he exi o ai masses o he a mosphe e, and his is gi en by he ol-
lowing ela ion:
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505
2
2
d
p

 [Pa] (2)
whe e:
— eloci y o mine ai exi ing o he a mosphe e, [m·s–1],
ρ — densi y o e u n ai mo ed by he main an, [kg·m–3].
The magni udes o he alues o indi idual esis ances ha e he decisi e in luence on he
wo k o he main an. Tha is why i is necessa y o o m, as ea ly as du ing he s age o plan-
ning, p econdi ions o as small as possible ae odynamic esis ance o he ai duc . This can be
achie ed by sho ening he leng h o he duc , by g adual non-sha p changing he di ec ion o
ai low in ai channels, by slow changing he shape o ai channels when di iding he ai low
in o pa allel b anches, e c. (Skoczylas, 2012)
4. Model Si ua ion o Combina ion o Na u al Ai Cu en
and Mine Main Ven ila ion
On he basis o measu ed alues om he Ka iná Mine, ČSA plan , we analysed model
si ua ions o he combina ion o na u al ai cu en and mine main en ila ion (Zaple al, 2009).
Fig. 3. Ac i a ed cu e o esis ance o he mine including NVP e ec s (Kopáček, 2003)
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506
Fo he analyse we used polish so wa e Ven g aph (Dziu zynski e al., 2009, 2011). This p o-
g am is used o he en ila ion ne wo k calcula ions in he no mal condi ions and he anomalous
condi ions, like a mine i e, o me hane exhala ions. (Hudeček, 2008) The basic pa ame e s o
his analysis we e measu ed alues o d y empe a u es and comp essible calcula ion o he
en ila ion ne wo k.
Su ace empe a u e: 18.8°C,
Rela i e humidi y: 51%,
Ba ome ic p essu e: 102000 Pa,
Fan p essu e d op – upcas sha : ČSA 3 3169 Pa,
Doub a a III 2727 Pa,
Eleono a 3020 Pa.
TABLE 1
Table o pa o calcula ion a empe a u e o 18.8°C and ini ial p essu e d op o ans
B anch no. Nodal poin 1 Nodal poin 2 ρQ Δp
[kg·m–7] [m3·s–1] [Pa]
0 1 1A 1.21 212.3 0
1 1A 2 1.24 207.3 565.4
2 2 3 1.28 196.1 150.4
3 3 4 1.30 162.8 57.5
4 3 7 1.29 6.2 10.2
The ollowing able shows a change in mine ai densi y ρ, olume low a e Q and p essu e
d op Δp a a change in empe a u e in wo in ake nodes (a he nodal poin 1A om 18.8°C o
-5°C and a he nodal poin 2 om 21°C o -2°C)
TABLE 2
Table o pa o calcula ion a pa ial change in empe a u e and ini ial p essu e d op o ans
B anch no. Nodal poin 1 Nodal poin 2 ρQ Δp
[kg·m–7] [m3·s–1] [Pa]
0 1 1A 1.33 257 0
1 1A 2 1.36 250.3 824.6
2 2 3 1.34 244.2 233.2
3 3 4 1.30 202.7 88.8
4 3 7 1.29 4.7 147.3
Su ace empe a u e: –5°C,
Rela i e humidi y: 51%,
Ba ome ic p essu e: 102000 Pa,
Fan p essu e d op – upcas sha : ČSA 3 2535.2 Pa,
Doub a a III 2181.6 Pa,
Eleono a 2416 Pa.
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507
TABLE 3
Table o pa o calcula ion a pa ial change in empe a u e and a educ ion in p essu e d op o ans by 20%
B anch no. Nodal poin 1 Nodal poin 2 ρQ Δp
[kg·m–7] [m3·s–1] [Pa]
0 1 1A 1.33 242.8 0
1 1A 2 1.36 236.6 736.4
2 2 3 1.34 230.5 207.7
3 3 4 1.30 190.4 78.7
4 3 7 1.29 23.4 146.2
F om he ollowing ables Tabs. 1, 2 and 3 i is e iden ha he p og am Ven g aph can also
be used o he con ol o p essu e d ops o main ans a a change in ai empe a u e. I could be
used p o i ably in he case o combina ion o mine main en ila ion and na u al ai cu en . The
compa ison o Tables 1 and 2 shows ha a a change in su ace empe a u e, p essu e d ops in
he ne wo k b anches and olume low a es o ai will inc ease due o he na u al ai cu en . I
we howe e dec ease p essu e d ops o main ans (e.g. by 20%), hen a keeping he dec eased
empe a u e, a educ ion in p essu e d ops a nodal poin s and in olume low a es will occu .
(Gacek e al., 2007)
5. Ac ual The mal Buoyancy and A e age Tempe a u es
To e i y he p e ious conside a ions, we compa ed he ue alues om he en ila ion
balances o s ill ac i e mines. In he ollowing able, he amoun o he na u al p essu e d op
Δp e a a ious decisi e quan i ies, such as s a ic p essu e Δps , su ace empe a u e and olume
low a e Q is clea .
TABLE 4
The mal buoyancy
Mine – upcas sha P essu e d op
measu emen NVP [Pa] Su ace
empe a u e Δps [Pa] Q [m3·s–1]
ČSM – Jih May –136 14,5°C 2750 309
ČSM – Se e May –242 15°C 2650 315
DARKOV – Mí 4 May –190 15°C 2786 433
DARKOV – Su-S o III May –132 12°C 1916 230
KARVINÁ – ČSA 3 May –470 17,5°C 3875 258
KARVINÁ – Do-III May –360 17,5°C 2698 145
KARVINÁ – Lazy June –75 22°C 2089 300
PASKOV – S iadno Oc obe –230 3,5°C 2580 136
PASKOV – S aříčOc obe –305 3,5°C 3178 219
PASKOV – Chlebo ice Oc obe –205 4,5°C 2990 218
I can be deduced om Table 4 ha he mal buoyancy in mines being compa ed ac s syn-
e gis ically wi h he main ans.
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508
6. Conclusion
An impo an condi ion o he calcula ion o en ila ion ne wo k wi h he use o a i icial
en ila ion and na u al ai cu en and con ol o p essu e d ops caused by main ans is he con-
side a ion o a possible change in empe a u e a all nodal poin s, especially hen a he nodal
poin s o main downcas and upcas sha s. Thus he o e all in luence o na u al en ila ion on
he whole en ila ion ne wo k will mani es i sel .
Mine en ila ion is a e y impo an pa ame e o ac i e mines and cos s o mine en ila ion
hemsel es a e usually a e y signi ican i em o he o e all cos s o he mine. I he na u al ai
cu en was easonably used in mine en ila ion, a educ ion in elec ical ene gy consump ion
could be achie ed, because ans would no wo k a hei usual pe o mance and hus also he
cos s o mine en ila ion i sel could be dec eased.
Re e ences
Dziu zynski W., K ach A., Palka T., 2009. Me hod o Regula ing Elemen s o he Me hane D ainage Ne wo k Using
Compu e Simula ion. A ch. Min. Sci., Vol. 54, No 2, p. 159-187.
Dziu zynski W., K uczkowski J., 2011. Va iabili y o he olume ic ai low a e in a mine an channel o a ious
dampe posi ions. A ch. Min. Sci., Vol. 56, No 4, p. 641-650.
Gacek Z., Olajossy A., 2007. Ma e ial balance in a pseudo-s eady s a e o na u al gas low. A ch. Min. Sci., Vol. 52,
No 2, p. 171-193.
Hudecek V., 2008. Analysis o Sa e y P ecau ions o Coal and Gas Ou bu s – Haza dous S a a. Jou nal o Mining
Science, Vol. 44, No 5, p. 42-50.
Kopáček F., 2003. The coope a ion o he p essu e sou ces wi h he subsu ace en ila ion. Associa e p o esso hesis,
VŠB – TU Os a a.
P okop P. e al., 1985. Ven ila ion o deep mines. VŠB – TU Os a a, ex book, 1985.
P okop P., Zaple al P., Peg imek I., 2011. P ognosis o esidual coal gas capaci y made by he “exp ess” me hod. In e -
na ional Jou nal o Mine als, Me allu gy and Ma e ials, 18 (2011), No.2, p.127.
Skoczylas N., 2012. Coal seam me hane p essu e as a pa ame e de e mining he le el o he ou bu s isk – labo a o y
and in si u esea ch. A ch. Min. Sci., Vol. 57, No 4, p. 861-869.
Suchan L., 1984. Deep Mine Ven ila ion, Libo Suchan, P ague 1984.
Zaple al P 2009. P oposal o P inciples o Con ol o Ven ila ion Ne wo k in a Fi e-A ec ed A ea. Ph.D. hesis, VŠB
– TU Os a a.
Rec ei ed: 19 Augus 2013
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