=== dc2020-12-0026-guidelines-pages-61.ppm === includes less than 25 hours per year of running time at the standby rating. b) Prime Power Rating - Prime power rated generators shall be used in applications where the user does not purchase power from a public utility. The prime power rating is the maximum power available for an unlimited number of hours per year in a variable load setting. It is not advisable that the variable load exceed 70% of the average prime power rating during any operational period of 250 hours. If the engine is running at 100% prime power, yearly hours shall not exceed 500. Prime power is accessible for a limited number of hours in non-variable load situations. Limited prime power is intended for circumstances where power outages are expected, such as a planned utility power reduction. Engines in generator sets may operate up to 750 hours per year at power levels less than the maximum prime power rating. In these situations, it is important to never exceed the prime power rating. c) Continuous Power Rating - Continuous power rating is used in applications where supplying power is at a constant 100% load for an unlimited number of hours each year. Continuous power rated units are most widely used in applications where the power grid is unreachable or unreliable. Such applications include mining, agriculture or military operations. For buildings with ten storeys or higher, an automatic transfer switch (ATS) shall be installed to transfer the power source from the usual local power utility to the emergency/back-up power source, after a short delay, during commercial power interruptions. The generator set’s fuel consumption at 100% rated capacity shall not go over 0.28 liters per kWh. Accordingly, every generator set shall be equipped with fuel flow meter and electric power meter. J. Metering for Energy Auditing 1. Covered buildings shall have metering facilities capable of measuring voltage, current, power factor, power quality, maximum demand and energy consumption. In addition, it shall have provision for feeder metering facilities. Where possible, a feeder circuit shall serve only a particular group of loads sharing the same function for better monitoring and control. These loads can be grouped as follows: a) Lighting Load b) Chiller c) Air Handling Units, Unitary Air Conditioning Systems d) Other Motor Loads (exhaust fan, pumps, etc.) Energy meters and instrument transformers utilized for billing purposes shall have an accuracy class rating of at least 0.5. Otherwise, such devices shall have an accuracy class rating of at least 1.0. In multiple tenant buildings, each tenant unit shall have a provision for measuring the tenant's energy consumption. Power for common utilities such as water pump, elevator, etc. shall also be metered. In order to facilitate metering safely and quickly by qualified personnel, an adequate working space in front of the electrical paneis and meters shall be provided. Page 61 of 74 === dc2020-12-0026-guidelines-pages-62.ppm === 9.4 Building Management System A. Buildings are encouraged to install Building Management Systems (BMS) to have centralized monitoring and control of the many individual systems within the building, such as, but not limited, to the following: HVAC system CCTV system Security system Lighting system of common areas Smoke and fire alarm system Elevators system Emergency power supply system Alternative power supply system Smart garden system . Energy monitoring system . Indoor air quality system . Public address system . Communication system CONAABWN > aw a WhO B. BMS with analytics and optimization software can realize significant energy savings for a building. C. BMS with internet connections shall be protected by a firewall to prevent hackers from entering the system. 9.5 Smart Home System A. Residential dwelling buildings, such as condominiums, are encouraged to employ smart home technologies in every home unit, which shall be equipped with sensors, devices and appliances that are connected to the Internet of Things (IoT) and are able to be remotely monitored, controlled and accessed by the home owner. Any or all of the following may be utilized towards this end: Lighting Control System Smart lamps/light bulbs HVAC Control System Home security such as CCTV, burglar alarm, etc. Security access such as smart door locks Home energy monitor Smart appliances such as refrigerators, laundry machines, coffee maker, TV, radio, etc. Smart devices such as smoke detector, etc. . Smart garden irrigation 10. Other similar systems Co NOOaARWN> B. Smart home systems shall be protected from possible hackers through the use of hardware and/or software solutions. 9.6 Regular Inspection, Maintenance, and Audit A. Buildings shall conduct annua! inspection and maintenance of its electrical systems, such as thermal scanning of the transformers, panel boards and conductors to check for hot spots, which are sources of losses in a distribution system and, at the same time, possible causes of electrical fires. Page 62 of 74 === dc2020-12-0026-guidelines-pages-63.ppm === 9.7 10.1 B. C. Buildings, at the onset of operation, shall monitor and record their monthly energy consumption in order to establish a baseline value. Covered buildings shall conduct regular energy audit of its facilities. Required Design Documentation The following documents shall be required for the building permit application: A. Electrical plan showing the power supply layout and single line diagrams of the building’s connection to the local power utility supply, the internal distribution system, transformer, protection, metering, and back-up (e.g., emergency gensets) and alternative power systems (e.g., RE power supply system), containing, among others, the load schedule, calculations, technical specifications and other details required by the latest edition of the PEC Part 1. The electrical plan shall show the UPS supplied circuits, particularly for emergency lighting. Design drawings, calculations, and technical specifications of the lightning protection system and surge suppression/protection system. . Brochures and technical data sheets of main transformer, protection, metering, UPS, emergency generator sets, lightning protection system, and surge suppression system. . Building plans and specifications shall include, but are not limited to, the following: 1. The type and location of the EVSE 2. The design of the raceway(s) 3. Electrical calculations to substantiate the design of the EV supply system, to include the rating of equipment and any on-site distribution transformers to ensure sufficient capacity to simultaneously charge all required EVs at full-rated amperage. Section X. Renewable Energy (RE) Systems and Equipment RE Power Supply Systems A. Buildings shall install RE power supply systems within their facility, whenever it is technically feasible, either at their rooftops, fagades, grounds and/or roofed parking spaces to reduce demand, energy costs, and, indirectly, reduce greenhouse gas (GHG) emissions. RE power supply system capacity can be sized to either supply partially the energy requirements of the facility (own use), or supply entirely the energy requirements of the facility (Net Zero Energy Building) or, aside from satisfying its own power requirements, sell the excess energy to the local power utility (Net Metering, which, presently, is up to 100 kW only but may be raised by ERC in the future). RE power supply systems shail be designed and installed in accordance with the relevant provisions of the latest editions of the Philippine Electrical Code Part 1, the Philippine Distribution Code, applicable rules and regulations issued by ERC and the Office of the Building Official and by the rules and interconnection procedures established by the local distribution utility under which franchise the Page 63 of 74 === dc2020-12-0026-guidelines-pages-64.ppm === 10.2 building is covered. D. Buildings are encouraged to use systems or equipment that utilizes RE, such as solar photovoltaic (PV) and/or wind power supply systems, solar water heaters, solar air conditioners, solar powered lighting systems, and the like, whichever is applicable, to reduce demand for commercial power. E. Solar PV power supply systems shall employ either grid tie inverters or hybrid inverters, equipped with active harmonic filters and surge protection. Grid tie inverters need the grid voltage to synchronize in order to start generating power. Hence, when there is a commercial power interruption, the solar PV power supply system also shuts down for safety reasons. Therefore, grid tie inverters are not able to do islanding operation. On the other hand, hybrid solar inverters are more flexible and can support not only commercial power but multiple power sources, such as battery system, gasoline/diesel generator sets, etc. and, therefore, able to operate on island mode. However, hybrid inverters are more costly than grid tie inverters. In places where the commercial/utility power supply is unreliable (i.e., frequent and/or long power interruptions), hybrid inverters shall be used to achieve resiliency. F. RE power supply systems shall be equipped with at least two (2) meters; one measuring, among others, the quantity of RE power being supplied to the building, and the other measuring the quantity of commercial power (i.e., from the local electric utility) being supplied to the building. G. In evaluating the economic feasibility of RE power supply systems and equipment, Life Cycle Cost or Cost of Ownership shall be considered and not the initial cost only. H. Buildings, being end users of electricity, are encouraged to avail of the Green Energy Option Program (GEOP) and demand from their local electric utility/cooperative or Retail Electricity Supplier (RES) that the energy to be supplied to the building shall be from RE sources to avail of the incentives under R.A. 9513 (Renewable Energy Act). Annual Energy Requirements from RE A. Covered buildings shall source, initially, a minimum of one percent (1%) of their projected annual energy requirements (i.e., same level as the RPS) to reduce demand for commercial power through the installation of any or a combination or all of the following: RE Power Supply Systems Solar Water Heaters Solar Cooling Systems Solar-Powered Lighting Systems Any other similar system or equipment AWN > B. Availing of the GEOP by a Building shall also satisfy the above stated requirement (i.e., in A.) C. The above requirement (in A.) may be increased by the DOE from time to time, in accordance with its mandate. Page 64 of 74 === dc2020-12-0026-guidelines-pages-65.ppm === 10.3 Required Design Documentation The following documents shall be required for the building permit application: A. Electrical plan showing the power supply layout and single line diagram of the building’s connection to the local power utility supply, the internal distribution system, protection, metering, and back-up (e.g., emergency gensets) and alternative power systems (e.g., RE power supply system), showing the technical specifications of the protection, metering, emergency generator sets, and RE power supply system (whichever is applicable) B. Brochures and technical data sheets of the main components of the RE power supply system (if applicable) C. Electricity power supply contract. APPENDICES Appendix A: Obligations of Building Owners Integrate an energy management system policy into the business operation based on iSO 50001 or any similar framework; Set up programs to develop and design measures that promote energy efficiency, conservation, and efficiency that may include installation and/or utilization of renewable energy technologies or sources; . Set up annual targets, plans, and methods of measurements and verification for the implementation of energy efficiency and conservation projects; Keep records on monthly energy consumption data and other energy related data; Improve average specific energy consumption in accordance with the annual reduction targets to be established by the DOE in the NEECP; Submit an annual ECCR to the DOE by the 15th of April every year; . Conduct an energy audit once every three (3) years, by engaging either a certified energy auditor or an accredited ESCO, and submit an energy audit report to the DOE upon completion of the energy audit; . Employ a CECO for Type 1 establishments, and a CEM for Type 2 designated establishments; provided, that the CECO and the CEM may be chosen from within the organization or hired through external recruitment; and Duly notify the DOE on the appointment or separation from the service of their respective CECOs or CEMs within ten (10) working days from the effective date of these personnel actions. Page 65 of 74 === dc2020-12-0026-guidelines-pages-66.ppm === Sample Calculations for Overall Thermal Transfer Value (OTTV) Appendix B VE LO ME Yy 105 Wore HaEE, ) Source: EU -ASEP, 2020 Page 66 of 74 === dc2020-12-0026-guidelines-pages-67.ppm === Appendix C: Thermal Conductivities of Building Materials i co Tt Building Material | Percentage (%) Building Material Percentage (%) + r T Brick {common} ; Ground Cover Light red i 55 Asphalt pavement q3 Red | 68 Grass. green after rain G7 Marbic Sand, in wnaay 67,89 ar ! and, dry i 82 White i 48 Sand. wet cH Dark i 66 Sand, white powdered | 45 Polished i 50 60 Water | 9a i { Vegetabie fields and shrubs. wiltrd 30 Metals i Common vegetable fields and shrubs 72°96 sic as Sicracrgae 78 80 Galvanized iron, new i 64 . “ee 30 Galvanized tron, dirty | a2 Copper. polished i 18 roe nee nena as anemia ess nan aa nas amines ~ Copper. tarnished . ce tye . . pper. fan's 4 Where specific material is nol mentioned above, an approximate value may Lead sheet, atd i 3 be assioned with the use af the following color guide: i 79 & iB g t Zinc, polished i ec oe ie vise neuen yt vp ve eneeee a *° [ Color (%) Absorption Paints ‘ae . 4 _ orp - White emulsion \ 12.20 White paint. 4.3 mm on aluminum i 20 White. smooth surfaces 25.40 White enamel an iran H > Gray to dark gray. rant green 40 50 i 25-45 2 Aturminum oil base pat i 45 Green to dark green. red, brown i 50 70 Gay paint Hl 75 Dark brown, dlue 70 80 Rod! olf base paint ! 74 Dark tuo, black 80 90 \ ' ok na Black gloss paint : Ya) Peweectly Black wo Green al base paint | 50 Fa wate prwidored 45 c ors aoe, iB 5 Black paint, 4.3 mm on ahininurm a4 98 Water oa Vegetable fields and shrubs, wited 70 Roofing materials i | Commen vegetable tieits and shrubs ' 72.76 Tile clay. red 64 i Graund, dry and plowed 75 BO Tile | 65 91 Bare meust ground 90 i Miscetlancaus i Aluminum. polishod 1S Nodis Mil astesie ce rabbinic materia viel! br oamtted Goupphy aber ceatent frond Concrete ! 60 Concrete. rough | uy 6 Plastor white wall i ae Wood i 60 Aluminum foi 15 i A ee nee | Page 67 of 74 === dc2020-12-0026-guidelines-pages-68.ppm === Appendix D: K-Value of Basic Materials i Thermat | Construction Materials Density (kam?) Conductivity | (Wire 1 ! asphalt. roofing 2240 1226 i bitumen 1.208 : back ) fa} common 1925 O72 ib} face 2085 1297 1 concrete 2400 saz : 64 ores | concrete, light weight G60 0.303 ' N20 0.346 i 1280 0476 | cork board 144 0.642 i fiber board 264 0.052 i filer giass (sco glass wool and mineral | wool) + glass shect 2012 1053 } glass wool. mat or guilt (dng 32 0.035 | gypsum plaster board B80 oro . hard board } ie standard 24 O21 i by mediuen 640 0423 | metals | (a) aluminum atlay, typical 2672 2% : tp copper. commercial R794 385 i fe) steel 7e8an ATG mineral wool, felt 32-104 9.032.0.035 | plaster | fa} gypsum 1246 O.370 | (2) perlite 66 O15 i c) sandécoment 7568 0533 , (a) vermiculite 640.960 O.202 0.303 | polystyrene, expanded 16 0.035 | polyurethane. foam 24 0.024 | pve flooring 1360 0713 i Sait loasely packed 1200 O375 ) Stone. tic | fa) sandstone £000 1.208 | IB} granite 2640 2027 Pie) marbletcrazze/coramic mosaic 2640) 12a8 | Tike. rao 1890 0.836 ) timber \ fa) across grain softwood 608 Q4i25 i iP} harchyooc Foz O135 i c) plywood S28 O36 Vormicuite. loase granules 80.12 0.065 ! Woed chipboard SOC O144 | Woociwool slab $00 0.086 48C chat Page 68 of 74 === dc2020-12-0026-guidelines-pages-69.ppm === Appendix E: K-Value of Basic Materials f —T | Construction Materials Density (kg/m?) { | Asbestos cement shect 1488 Asbestes insulating board 720 asphalt, roofing 2240 bitumen brick la} dry (covered by plaster or uies outside 760 | (bo) common brickwall (brickwall | directly exposed to weather avtsicde} T6G i | concrete 2400 64 concrete. light weight OB N20 : J28D i cork board J44 | fiber board 26d fiber glass (see glass wool and mireral i week | qlass sheet 2572 | glass wool matoar guilt (dry) 32 gypsum plaster board 880 nard board : {a} standard 24 i (db) medium 640 + metals 6272 S784 i Fea ! mineral wool, felt 32. 104 | plaster fa) gypsum 12%6 (b} perlite 616 ic} sandicement 1568 i {dh vermiculite 640 960 i polystyrene, expanded 16 | polyurethane, foam 24 pve THooring 1360 Soul, jaosely packed 1200 Roce rte een atts aetiemnt ope seein eunn 4 we tas Stone tile {aj Sand stone 2000 {b) Granite en0 (c} Marbletterrazzoscoramic/mosaic 1R9O Tile, roof Timber (a) Across grain softwood 608 (bo) Hardwood 702 {ch Plywood 528 Vermiculite, loose granules BOND Wood chipboard BOO Woodwool slab ADO 480 Thermal Conductivity O31? 6108 1.226 1298 O807 1154 C1442 O144 3.303 0.346 0.476 O04? Q.052 1.053 G.O35 O70 0.276 O123 aii 385 476 G.035 0.032 o77G O75 9.533 0.202 0.303 C035 0.024 O73 0.375 O125 O38 GI3E 0.065 O14 C086 10% Page 69 of 74 === dc2020-12-0026-guidelines-pages-70.ppm === Appendix F: Air Space Resista Types of Air Space Air space resistance (R.} for Walls Vertical air space {Heat flows horizontally) {a} High Emissivity (b) Low Emissivity Air Space Resistancec, (R-) for Reof Horizontal ar sloping air space (Heat flaws downward} fa} High Emissivity tL} Horizontal air space (.) Sloped air space 22.5° iii} Sloped ar space 45° (o) Low Emissivity (i) Horizontal air space (ii) Sloped air space 22.5" {iii} Sloped ar space 45° Attic Space Resistances (Rattic} jap High Enussreity fb) Low Emissivity Notes: Ordinarily, high emissivity is assumed for air spaces bounded by building materials of moderately smooih surfaces. Low emissivity applies where one or both sides of the air space is bounded by a Thermal Resistance (M?—"CeW} nces for Walls and Roofs perenne er ne ee re cre natant nna tn + 0.160 0.606 ow74 oes | D158 1423 1.095 0.768 Interpolation within the range of pitch angles from horizontal to 45° is permitted. For angle beyond 45°, the value of 45° can be used; no extrapolation is needed. Interpolation within the range of thickness from 5 mm to 100 mm is permitted. For air space less than 5 mm, extrapolation basing on Ra = 0 for zero thickness is allowed; otherwise R is assumed to be zero. For air space greater than 100 mm, the Ra for 100 mm should be used, i.e. extrapolation is not 1. teflective surface such as that of an aluminum foil. 2. 3. permitted. 4. in the case of air space in roof, reflective foil used should be installed within the reflective surface facing downward as dust deposit will render an upward-facing surface ineffective after a while. Appendix G: Surface Film Resistances Thermal Resistance Walls Roots Flat or sloped Types of Air Space (m?~°C/W) i | nside surface . ween | on Smooth finishes a 9.30 ! Reflective tinishes D04 Outside surface Insicle surface . ore ie ae sua | ons ‘5° sloped (smooth finishi ped fame | 0.80 Flat [reflective finish} 035 45° sloped (reflective finish) Qutside surface H O56 Note: Interpolation between angles of slope from horizontal to 45° is valid. Page 70 of 74 === dc2020-12-0026-guidelines-pages-71.ppm === Appendix H: Exhaust Air Energy Recovery Requirements 4 U-Value (Glass only} Glass Type (Wim?—°C} _ _ . Exposed | Sheitered | | Flat glass 5.03 4.50 Single pane, clear | Single pane, with low emittance coating | oe G60 5.68 4.54 © 0.40 51 3.97 / © - 0.20 426 Biz Insulating glass i Double pane. clear 4.8 mm a space 3.69 3.29 | 6.4 mm ar space 3.46 3.2 i 12.5 mm air space 28 295 Double panc, with iow emittance | coating | e° 0.60 * ae | e 0.40 ; 244 | e° 0.20 To account for outside or inside sashes/frames, the following correction factors shall be used: Correction Factors Inside : Outside | Sheltered ' Exposed Sheltered t | Glass Type | Exposed Single pane clear } Lowe | Double panc | clear ; Lowe { Page 71 of 74 === dc2020-12-0026-guidelines-pages-72.ppm === Appendix |: Glass Performance Data TO , ~ 7 Glass Type Clear-12 [Dark Green-12; Bronze-12 | Dark Blue-12 Glass Type Clear-40 i ark Green-10| Bronze-10 {Dark Biue-10| — a 5 oo —T ee cence ete enema r ponent ne ete en nee een ee oo — Cade FL DNFL {BFL DHL Code FL ONFL. BFL | DHFL ‘ { Colar Clear Dark Green | Bronze Dark Bluc Color Clear 1 Dark Green Bronze | Bark Bluc Thickness 12mm 12mm ; t2mm W2mm Thickness mm i 10 mn 1 mm i mm | Substrate None None , None Nore Substrate Nance | None Nore} Nonc | { \ 5 i - | Visible Light, 84.50 5250 | 2210 | 36.00 Visible Light. % | Transmittance 9.00 6.50 i 5.30 570 Transmittance 85.60 | 57.50 2790 | 4200 | | Reflectance, out 9.00 650 i 530 5.70 Reflectance, out 910 | 6.80 540} 600 | Reflectance, 1 i Reflectance, in a0 | 6.80 540 | 6.00 i : | i Solar Energy, t | Saiar Energy, “S { t | Transouttance 72.00 45.50 2 23.00 20.70 Transmittance 7510 | 2070 28.90 | 250 | Reftectance, out 790 5.30 ; 5.30 $20 Reflectance, aut B00 | 5.20 550 | 5.40 Refirctance, in 790 5.10 { 5.30 $20 Reflectance. in ROO | 5.20 550 | 5.40 { | Absomptance 2010 7940 | 7170 74.00 Absorptanee 690 | 74.06 6560 | 6810 | j i : i Shading Coctiicient 0.89 0.43 , O49 0.47 Shading Coctficient om | 0.48 0.54 | 0.52 U-value, Summer Wim2 °K S75 6.29 i 6.23 625 U value, Summer Wim? *K 57s] 632 626 | 6.28 ! U value, Winter Wim2 °K 6.7 617 / 0.43 647 U value, Winter Wim °K &27 | 6.26 626 | 626 | Salar heal gain cocticent O77 0.37 ; OAF | Oat Saiar beat gain cacfficient OF | 0.44 cr 045 i Relative heat gain Wim? "kK | 603 326 » 358 346 Relative Heat gain Wim “K[ G20 | 349 38g | a7 i i i es oe _ cereale es courcenetee ce ba cgunececnenees pagent inet escent ibe gn oo a L som - ; - T ame a ae arn nn ee an Glass Type Monolithic Monolithic | Glass Type Clear | Dark Green-8! Bronze-8 | Dark Blue | pe SE ERI SEE ER ER Ol oe eee 7 | eee Code FL FL | | Cotte FL DNFL OFL DHEL Color Cloar Cioas i 4 Color | Cheat Dark Geen {| Branzo | Dark Blue Thickness sSmm 19mm ; | Thickness Bmm @mm ; 8mm Boimm Substrate None None P| Substrate None None bo None Nore Bot ! Visible Light, Po) Visible Light, % i Transmittance Tv 83.10 8170 | | Transmittance 86.50 6290 ; 3530 4368.90 Reflectance, out RV 8.80 870 i 1 Reflectance. out 920 7.20 i 570 6.30 Reflectance. 1n RV 8.80 870 | | Reflectance. in 9.20 220 ; 572 | 630 Satar Eneray, % ; | Solar Energy, % | Transmitlance TE 6840 62.90 { Transmittance 7790 2780 ' 36.30 | 33.80 Reflectance, out RE 740 7.20 i Refiectance, cut 1 8.20 5.40 ; 70 5.60 Reflectance, in RE 760 720 Reflrctanes. 4 i 820 5.460 i 570 5.60 Absorptance AE 24.40 23.90 Absamtance 13.90 66 70 ' $8.00 60.50 Poof Hy i Shading Coefficient sc 0.85 0.81 | Shading Coeficiest + O94 O52 i 0.60 i 0.58 U-value, Summer Wand °K U 570 5.63 ! Uvaluic, Summer Wii °K 5381 6.34 1 6.27 629 U-valuc, Winter Wim2 °K UW 6.05 5.89 po | Mevalue, Weiter Wim2 °K 6.36 635 t &35 6.35 Solar heat gain cocfficient SHGC O74 ava ii Solar heat gain cocticiwat 08 046 Hy 0.52 i O61 Relative heat gain Wind °K RHG SB2 $54 i i Relative beat gain Wim? *K 635 386 i 428 as fof 4 | tot hoe . i I... - oe Notes: 1. Above data is on monolithic substrate only. 2. Calculation of U-value, Relative Heat Gain based on ASHRAE condition (GSBDLGL) Page 72 of 74 === dc2020-12-0026-guidelines-pages-73.ppm === Appendix J: Exhaust Air Recovery Requirements Source: ASHRAE Standard 169-2013 Table G.3.6.1.2-1 bahaust Air Emory Hecewory Requirements ter Ventiaton Systens Operating Less than 8000 Hours per Year 18 4B 400 5A NFR MR NA Ht HR h WR CH VR ARC ME NR MR SA TOnRE fab PACER {rey “SCR ARE Tat} Pins Cn ESL OB JE TEST APY HT Sh MENT At EA GN rs BD to SUUt eed LSA! 1a Bre tat In} NEL Me theg. erat Yeble 6.9 6.1.2-2 banaust Air Eoorgy Hecowory Requirements for Ventiiation Systenia Operitag Greater inan or Equal te 2000 Hours sar Year wa HR KR + RR NR NH AK “a CSOT SRE at HR Aa Ba) fee a fh PADS a, dB. 2REn a0 ris 1x: a 446 AQ nA HAT A POS oO OM ah / FEE Bet an WA Kory ee Page 73 of 74 === dc2020-12-0026-guidelines-pages-74.ppm === Appendix K: Philippine Stations and Climate Zones Priippines (PHL ELALSUN CASA AN DE TRE Cid, BPR CATARDUANES RADAR CATEALOGAM CLARK AB OLERE Beh EE Dune | DAGUEAN Cava AIRPIIR FT DUMAGLE Yb GES SANTIS ha hon INF ANT A Lares LE GASH LUM EA A Re MAaACTAN Bi FRA RY TAIL aE BUN? KING AQCINOUIN TE Say PUEATD PRINT ESA, Loa Sah JOSE SARGLE YT PONT SCIEKCE GARDEN SuSE TACIOEAN TATA AB AR TANABE AS CAMBCARGA OB TSAO ac: Mie Wg wae BET at HEE Had, Bie Lay EER Si Bed adedt} UnFaPS FESS OWFETS and 2Sn MESRAST HAASE CMe ey O86 ES TIRE SHS TTG EA SSS AAS Lear ane JOSAH: “PA Mt? Fr a8 1245 14 50 14d Ve ye fe ON] VEOBu heb tt Lard Su 120,43 4208S H2a an feu 1k oth Ce hue eee nerd wr) SS Pete WETS tat Es 1210} VR WG ht AB 472.07 rhe c Source: ASHRAE Standard 169-2013 nes yy it Ty ta mA eats yAeA Sag tart 19% BA ay TAY Tall Page 74 of 74