AIR CURTAINS VAZDU[NE ZAVESE V H

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AIR CURTAINS V 15.000 H 21.000 KLIMA Co.

2 KLIMA Co. Flow and system stress should be known factors in air flow. The flow is gas quantity flowing through the system during given time unit and is measured as m 3/sec or m 3/h. System stress is the amount of energy that each kg of gas must have in order to be able to flow through the system in particular quantity per given time unit and is expressed as J/kg or J/m 3. System characteristics are the relation between the flow and system stress. Some ratios of important ventilator parameters arising from the law of simmilar flow A- At the change of number of revolutions: - Volume of flow has a linear relation in regard to the change of ventilator"s number of revolutions V1 n1 V2 n2 - Pressure (static, dynamic and total) is in proportion to the square of change in number of revolutions D1 (n1) 2 2 D2 (n2) - Required driving power supplied to ventilator shaft is proportional to the cube of change in number of revolutions P1 (n1) 3 3 P2 (n2) B- At the change of air temperature: - Pressure alters in linear proportion of air temperature - Required driving power supplied to ventilator shaft is in proportion to square of change to air temperature P1 (T1) 2 P2 (T2) 2 Za strujanje vazduha u kanalima treba poznavati protok i napor sistema. Protok je koli~ina gasa koja proti~e u jedinici vremena kroz sistem i meri se u m 3/s ili m 3/h. Napor sistema predstavlja koli~inu energije kojom svaki kilogram gasa mora da raspola`e da bi proticao u odre enoj koli~ini u jedinici vremena kroz sistem i meri se u J/kg ili J/m 3. Veza izme u protoka i napora sistema data je karakteristikom sistema. Neki odnosi me u va`nim parametrima ventilatora koji proisti~u iz zakona sli~nog strujanja A - pri promeni broja obrtaja: - zapreminski protok se menja sa promenom broja obrtaja ventilatora linearno V1 n 1 V2 n 2 - Napor (stati~ki, dinami~ki i ukupni) menja se proporcionalno kvadratu promene broja obrtaja. Dp1 (n1) 2 2 Dp2 (n2) - Potrebna pogonska snaga dovedena vratilu ventilatora menja se proporcionalno tre}em stepenu promene broja obrtaja P1 (n1)3 3 P2 (n2) B - pri promeni temperature vazduha: - Napor se menja proporcionalno promeni temperature vazduha - Potrebna pogonska snaga dovedena vratilu ventilatora menja se proporcionalno kvadratu promene temperature vazduha P 1 ( T 1 ) 2 P 2 (T2) 2 Dlæ te~eniæ vozduha v kanalah neobhodimo znatý rashod i napor sistemÿ. Rashod eto koli~estvo gaza prohodæåego v edinicu vremeni ~erez sistemu i izmeræetsæ v m 3/sek 3 ili m /~as. Napor sistemÿ predstavlæet koli~estvo çnergii, kotoroî obladaet ka`dÿî kilogramm gaza dæa togo ~tobÿ protekatý v opredelennuõ edinicu vremeni ~erez sistemu i izmeræetsæ v J/kg ili 3 J/m. Vzaimosvæzý me`du rashodom i naporom sistemÿ dana v harakteristike sistemÿ. Nekotorÿe sootno{eniæ me`du va`nÿmi parametrami ventilætora kotorÿe proishodæat iz zakona podobnogo te~enie A - pri izmenenii ~isla oborotov: - Emkostnÿî rashod izmenæetsæ s izmeneniem ~isla oborotov ventilæatora linearno. V1 n1 V2 n2 - Napor (stati~eskiî, dinami~eskiî i obåiî) menæetsæ proporcionalýno kvadratu izmeneniæ ~isla oborotov. Dp1 (n1) 2 Dp2 (n2) 2 - Neophodimaæ privodnaæ mo{nost podvedennæ na val ventilætora menæetsæ proporcionalýno tretýeî stepeni izmeneniæ ~isla oborotov. P1 (n1) 3 P2 (n2) 3 B- pri izmenenii temperaturÿ vozduha: - napor izmenæetsæ s izmeneniem temperaturÿ vazduha linearno - Neophodimaæ privodnaæ moånostý podvedennaæ na val ventilæatora izmenæetsæ proporcionalýno kvadratu izmeneniæ temperaturÿ vozduha P1 (T1) 2 P 2 (T 2 ) 2

KLIMA Co. 3 AMBIENT AIR CURTAIN HLADNA VAZDU[NA ZAVESA V15.000/0 VRATA AxH (mm) PROTOK VAZDUHA (m3/h) SNAGA NOMIN. STRUJA PRI 380V(A) NIVO BROJ ZVU^NOG OBRTAJA PRITISKA (o/min) (dba) PRESEK A1(mm) H1(mm) DU@INA L(mm) TE@INA (kg) V15.030/1 V15.030/2 V15.030/3 x x x 750 1170 10 0,08 0,2 13 13 13 56 56 28 V15.035/1 V15.035/2 V15.035/3 x0 x0 x0 990 15 2120 59 32 50 V15.040/1 V15.040/2 V15.040/3 x3000 x3000 x3000 1450 2280 3110 0,24 0,55 62 62 37 57 70 V15.041/1 V15.041/2 V15.041/3 x4000 x4000 x4000 2170 3430 46 0,29 6 6 65 67 67 2 2 2 38 58 V15.045/1 V15.045/2 V15.045/3 x5000 x5000 x5000 2890 4550 6210 0,39 1,0 69 40 73 V15.050/1 V15.050/2 V15.050/3 x00 x00 x00 3690 5800 7920 0, 72 74 74 43 63 76 DIMENSIONS NAPOMENA: Vrednosti za nivo zvu~nog pritiska (dba) svedeni su na liniju "A" (Hz) a merene su na udaljenosti od 1m od ventilatora

KLIMA Co. HOT AIR CURTAIN TOPLA VAZDU[NA ZAVESA H21.000/0 H21.135/1 H21.135/2 H21.135/3 H21.140/1 H21.140/2 H21.140/3 H21.141/1 H21.141/2 H21.141/3 H21.145/1 H21.145/2 H21.145/3 H21.150/1 H21.150/2 H21.150/3 H21.156/1 H21.156/2 H21.156/3 VRATA AxH (mm) x x x x0 x0 x0 x3000 x3000 x3000 x4000 x4000 x4000 x5000 x5000 x5000 x00 x00 x00 PROTOK VAZDUHA (m3/h) KAPACITET 0 6,3 1110 11,8 1520 13,0 940 8,2 1480 15,7 2020 17,2 11,8 2170 22,3 29 24,2 2070 16,6 32 32,4 4 35,3 2750 21,8 4330 40,7 5910 45,7 3510 27,4 5520 52,9 7 57,0 SNAGA 0,24 0,29 0,39 0, 0,63 1,26 1,26 NOMIN. STRUJA PRI 380V(A) 0,55 6 6 1,0 1,2 2,4 2,4 BROJ OBRTAJA (o/min) NIVO ZVU^NOG PRESEK DU@INA PRITISKA A1(mm) H1(mm) L(mm) (dba) PRIKLJU~CI ( ) 330 ¾ 56 330 ¾ 56 330 ¾ 59 350 ¾ 350 ¾ 350 ¾ 3 ¾ 62 3 ¾ 62 3 ¾ 65 370 ¾ 67 370 ¾ 67 370 ¾ 69 390 1 390 1 390 1 72 400 740 1 74 400 740 1 74 400 740 1 TE@INA (kg) 37 72 70 82 83 50 80 90 95 105 100 110 DIMENSIONS n NAPOMENA: Vrednosti za nivo zvu~nog pritiska (dba) svede i su na liniju "A" (Hz) a merene su na udaljenosti od 1m od ventilatora

AIR HEATING CAPACITY IN DEPENDENCE ON INTERNAL AMBIENT AIR TEMPERATURE H21.135/1 x H21.135/2 x H21.135/3 x H21.140/1 x0 H21.140/2 x0 H21.140/3 x0 H21.141/1 x3000 H21.141/2 x3000 H21.141/3 x3000 H21.145/1 x4000 H21.145/2 x4000 H21.145/3 x4000 H21.150/1 x5000 H21.150/2 x5000 H21.150/3 x5000 H21.156/1 x00 H21.156/2 x00 H21.156/3 x00 PROMENA KAPACITETA GREJA^A ZAVISNO OD AMBIJENTALNE TEMPERATURE VAZDUHA PROTOK VRATA AxHVAZDUHA (mm) (m3/h) 0 1110 1520 940 1480 2020 2170 29 2070 32 4 2750 4330 5910 3510 5520 7 NAPOMENA: RADNI FLUID TOPLA VODA 90 / 70 6,3 13,8 5,9 17,8 5,5 21,7 5,2 25,6 4,8 29,5 11,8-10 13,0 1-5 17,0 10,5 0 21,0 9,8 5 25,0 9,2 10 29,0 13,0 12,9 12,3 16,9 11,5 20,9 10,7 24,9 9,9 28,8 8,2 13,2 7,7 17,2 7,2 21,2 6,7 25,1 6,2 28,9 15,7-10 12,8 14,8-5 16,9 13,9 0 21,0 13,0 5 24,9 12,1 10 28,7 17,2 12,7 16,2 16,8 15,1 2 14,1 24,7 13,1 28,6 11,8 12,9 1 16,9 1 2 9,7 24,7 8,9 28,6 22,3-10 12,1 21,0-5 16,2 20,2 0 20,3 18,8 5 24,1 17,6 10 28,5 24,4 1 22,9 16,0 21,4 20,0 19,9 24,0 18,9 28,4 16,6 11,4 15,6 15,4 14,5 19,4 13,5 23,4 13,0 28,1 32,4-10 11,3 30,6-5 15,4 28,7 0 19,4 26,8 5 23,4 25,5 10 27,8 35,3 11,3 33,2 15,4 3 19,4 29,0 23,4 26,9 27,8 21,8 11,2 20,5 15,3 19,2 19,3 17,9 23,3 16,5 27,3 40,7-10 10,9 38,9-5 14,9 37,6 0 18,9 35,2 5 22,9 32,9 10 26,9 45,7 10,9 42,9 14,9 40,2 18,9 36,2 22,9 34,1 26,9 27,4 1 25,7 14,9 24,0 19,0 22,4 23,0 20,7 26,9 52,9-10 10,5 49,0-5 14,3 46,8 0 18,7 43,8 5 22,7 41,4 10 26,7 57,0 10,5 53,6 14,3 5 18,7 47,4 22,7,0 26,7 O C V15.000/2 V15.000/2 INSTALLATION PRIMERI UGRADNJE V15.000/3 V15.000/3 L3000 mm L4000 mm V15.000/3 V15.000/3 V15.000/1 V15.000/3 V15.000/3 V15.000/3 L5000 mm L00 mm