CGSB 149 15-96-CAN CGSB-1996 Determination of the Overall Envelope Airtightness of Buildings by the Fan Pressurization Method Using the Building-s Air Handling Systems《建筑物空调通过加压风机法.pdf
《CGSB 149 15-96-CAN CGSB-1996 Determination of the Overall Envelope Airtightness of Buildings by the Fan Pressurization Method Using the Building-s Air Handling Systems《建筑物空调通过加压风机法.pdf》由会员分享,可在线阅读,更多相关《CGSB 149 15-96-CAN CGSB-1996 Determination of the Overall Envelope Airtightness of Buildings by the Fan Pressurization Method Using the Building-s Air Handling Systems《建筑物空调通过加压风机法.pdf(85页珍藏版)》请在麦多课文档分享上搜索。
1、STD-CGSB 149.L5-9b-CAN/CGSB-FREN 1874650 0033682 2BT 3 t .i CAN/CGSB-149.15-96 AMENDMENT NO. i MODIFICATIF N“ 1 AprilAvril 1999 % fi$ / CANADIAN GENERAL STANDARD BOARD OFFICE DES NORMES GENERALES DU CANADA DETERMINATION OF THE OVERALL THE FAN PRESSURIZATION METHOD USING DETERMINATION DE LTANCHIT A L
2、AIR LA MTHODE DE DEPRESSURISATION PAR ENVELOPE AIRTIGHTNESS OF BUILDINGS BY THE BUILDINGS AIR HANDLING SYSTEMS GLOBALE DES ENVELOPPES DE BTIMENTS PAR VENTILATEUR AU MOYEN DES SYSTMES DE TRAITEMENT DAIR DES BTIMENTS Add the following new Appendix F: Ajouter la nouvelle annexe F qui suit: Copyright Ca
3、nadian General Standards Board Provided by IHS under license with CGSBNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-F1 . F2 . F3 . F4 . F5 . F6 . F7 . F8 . F9 . APPROACHES FOR DETERMINING AIR LEAKAGE CHARACTERISTICS OF BUILDINGS TABLE OF CONTENTS BACKGROUND . F2
4、COMMENTARY F3 PREFACE F3 SCOPE AND FIELD OF APPLICATION . F5 PRINCIPLE . REFERENCED PUBLICATIONS . F8 TERMINOLOGY . F9 APPARATUS F9 CALIBRATION OF TEST APPARATUS . F9 TESTING . F9 CALCULATIONS . f14 TEST REPORT F14 ATIACHEMENT A: DATA SHEETS F15 CAN/CGSB-149.15-96 F1 Copyright Canadian General Stand
5、ards Board Provided by IHS under license with CGSBNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-STD-CGSB 149oLS-Sb-CAN/CGSB-FREN 1874650 0033b84 OS2 W rt y BACKGROUND r Air leakage into and out of a building occurs mainly through unintentional openings, such as c
6、racks formed at the joints of various envelope components. The size of the envelope leakage area of a building is a key factor in determining the magnitude of the air infiltration and exfiltration rates across the building envelope due to stack effect and wind. The pressure differences and uncontrol
7、led air leakage can cause several problems including the following: - - condensation; - - - unbalanced performance of air distribution systems; cold drafts and comfort problems; interference with proper operation of entrance doors, elevator doors and some types of smoke control systems; and much lar
8、ger heating loads and high energy consumption. Knowledge of the air leakage characteristics of a building envelope is required to prevent undesirable air movement, to ensure efficient performance of the air handling systems, and to reduce the energy consumption. Over the years, the building. shell c
9、onstruction practices have changed significantly with regards to airtightness. The 1995 National Energy Code for Buildings stipulates the requirements for the minimum air leakage performance of the building envelopes. Recent demonstrations of low energy commercial buildings, such as IDEAS Challenge
10、by CMHC and the C-2 Program by NRCan. are targeted to meet certain airtightness criteria. To address the various building airtightness requirements in new construction and the retrofits of existing buildings, a CGSB standards committee was formed to provide standardized test procedures and standard
11、methods for measuring air leakage characteristics. The CGSB standard CANKGSB-149.15-96 deals with a test procedure to determine the overall building envelope airtightness of buildings by fan pressurization or depressurization using the buildings air handling systems. A need for an accompanying comme
12、ntary for the standard was identified by the CGSB committee due to the wide variety of buildings and building air handling systems, and the complexity of test procedures. The Commentary section provides explanations of various clauses of the standard as well as guidance on practical approaches that
13、will be required to undertake testing of buildings. F2 CAN/CGSB-149-15-96 Copyright Canadian General Standards Board Provided by IHS under license with CGSBNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-SfD*CGSB L49=LS-Sb-CAN/CGSB-FREN M L874b50 O033685 T99 m COMM
14、ENTARY SECTION CGSB standard CANICGSB-149.15-96 - Determination of the Overall Envelope Airtightness of Buildings by t ization Method Using the Buildings Air Handling Sys COMMENTARY The CGSB standard CAN/CGSB-149.15-96 can be used to determine the airtightness of the entire building envelope or the
15、enclosed test section of the building. The buildings ventilation system is used for pressurizing or depressurizing the test volume. The airtightness tests can be conducted for the whole building volume or any part of the building. The test results can provide the airtightness values for building env
16、elope. It should be noted that this method does not directly determine the quantity of actual air leakage, which occurs through the building envelope under the natural influences of wind and buoyancy pressures, or as a result of pressures produced by the operation of air handling systems. The airtig
17、htness characteristics of the building envelope obtained from the test can be used in the precise modeling of airflow through the building envelope. The following sections provide the explanations of various clauses in the standard. PREFACE This Commentary pertains to the CGSB standard CANKGSB-149.1
18、5-96, Determination of the Overall Envelope Airtightness of Buildings by the Fan Pressurization Method Using the Buildings Air Handling Systems.“ The main objectives of the Commentary are to provide details on the technical requirements and to offer explanation of various clauses and also to show fe
19、asible approaches for determining the air leakage characteristics of buildings. This standard can be applied to those buildings that have sufficient built-in air handling capacity. The air handling system can be either in supply or exhaust modes. The airtightness of the building envelope is determin
20、ed using the buildings installed air handling system. The air handling system is configured to create a pressure difference across the enclosed building envelope. The enclosed test volume can either be pressurized using the supply air systems or depressurized using the exhaust air systems. Readings
21、are taken of the airflow rate required to generate the necessary pressure difference across the envelope. A minimum of four sets of pressure and airflow readings is required to develop a correlation representing the airtightness of the building envelope. This procedure helps in determining the avera
22、ge air leakage rate of the enclosed envelope at a specified pressure difference. The buildings air handling system should be capable of pressurizing the interior zone(s) up to 60 Pa. However, for buildings incapable of obtaining 60 Pa, a minimum of 30 Pa is needed in order to obtain reasonable resul
23、ts. The capacity of the air handling system, either in supply or exhaust modes, should be at least in the range of 1.0 to 2.5 L/s per square meter of the building envelope considered in the test volume. For example, for a building with an envelope area of 12 O00 m, the capacity of the air handling s
24、ystem serving the test volume capacity should be about 30 O00 L/s. One of the principal requirements is to ensure that the test volume is sufficiently isolated from other non-test areas of the building and with a minimal amount of operational interference. it is our e.rperience thnr in most commerci
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