Owners of medium and large cottages should plan the cost of maintaining housing. Therefore, the task often arises of calculating the gas consumption for heating a house 200 m2 or larger area. The original architecture usually does not allow you to use the method of analogies and find ready-made calculations.
However, there is no need to pay money to solve this problem. All calculations can be done independently. This will require knowledge of certain regulations, as well as an understanding of physics and geometry at the school level.
We will help to understand this urgent issue for a home economist. We will show you by what formulas the calculations are made, what characteristics you need to know to get the result. The article we have presented provides examples on the basis of which it will be easier to make your own calculation.
Finding the value of energy loss
In order to determine the amount of energy that a house loses, it is necessary to know the climatic features of the area, the thermal conductivity of materials and ventilation rates. And in order to calculate the required volume of gas, it is enough to know its calorific value. The most important thing in this work is attention to detail.
Heating a building should compensate for heat loss that occurs for two main reasons: heat leakage around the perimeter of the house and the influx of cold air through the ventilation system. Both of these processes are described by mathematical formulas, according to which you can independently carry out calculations.
Thermal conductivity and thermal resistance of the material
Any material can conduct heat. The intensity of its transmission is expressed through the coefficient of thermal conductivity λ (W / (m × ° C)). The lower it is, the better the structure is protected from freezing in winter.
The heating costs depend on the thermal conductivity of the material from which the house will be built. This is especially important for the "cold" regions of the country.
However, buildings can be folded or insulated with materials of various thicknesses. Therefore, in practical calculations, the heat transfer resistance coefficient is used:
R (m2 × ° C / W)
It is associated with thermal conductivity by the following formula:
R = h / λ,
Where h - material thickness (m).
Example. We determine the coefficient of resistance to heat transfer of different width aerated concrete blocks of the brand D700 at λ = 0.16:
- width 300 mm: R = 0.3 / 0.16 = 1.88;
- width 400 mm: R = 0.4 / 0.16 = 2.50.
For insulation materials and window blocks, both the thermal conductivity coefficient and the heat transfer resistance coefficient can be given.
If the enclosing structure consists of several materials, then when determining the coefficient of resistance to heat transfer of the entire “pie”, the coefficients of its individual layers are summed.
Example. The wall is built of aerated concrete blocks (λb = 0.16), 300 mm thick. Outside, it is insulated with extruded polystyrene foam (λp = 0.03) 50 mm thick, and lined with lining from the inside (λv = 0.18), 20 mm thick.
There are tables for various regions in which the minimum values of the total heat transfer coefficient for the perimeter of the house are prescribed. They are advisory in nature.
Now you can calculate the total coefficient of resistance to heat transfer:
R = 0.3 / 0.16 + 0.05 / 0.03 + 0.02 / 0.18 = 1.88 + 1.66 + 0.11 = 3.65.
The contribution of layers that are insignificant in the “heat saving” parameter can be neglected.
Calculation of heat loss through building envelopes
Heat loss Q (W) through a homogeneous surface can be calculated as follows:
Q = S × dT / R,
Where:
- S - area of the considered surface (m2);
- dT - temperature difference between the air inside and outside the room (° C);
- R - surface heat transfer resistance coefficient (m2 * ° C / W).
To determine the total indicator of all heat losses, perform the following actions:
- allocate areas that are uniform in coefficient of resistance to heat transfer;
- calculate their area;
- determine the indicators of thermal resistance;
- calculate heat loss for each of the sites;
- summarize the obtained values.
Example. Corner room 3 × 4 meters on the top floor with a cold attic. The final ceiling height is 2.7 meters. There are 2 windows measuring 1 × 1.5 m.
We find the heat loss through the perimeter at an air temperature inside of “+25 ° C“, and outside - “–15 ° C”:
- Let us single out sections that are uniform in coefficient of resistance: ceiling, wall, windows.
- Ceiling area SP = 3 × 4 = 12 m2. Window area Sabout = 2 × (1 × 1.5) = 3 m2. Wall area Swith = (3 + 4) × 2.7 – Sabout = 29.4 m2.
- The coefficient of thermal resistance of the ceiling is composed of the overlap index (board thickness of 0.025 m), insulation (mineral wool slabs 0.10 m thick) and the wooden floor of the attic (wood and plywood with a total thickness of 0.05 m): RP = 0.025 / 0.18 + 0.1 / 0.037 + 0.05 / 0.18 = 3.12. For windows, the value is taken from the passport of a two-chamber double-glazed window: Rabout = 0.50. For a wall folded as in the previous example: Rwith = 3.65.
- QP = 12 × 40 / 3.12 = 154 watts. Qabout = 3 × 40 / 0.50 = 240 watts. Qwith = 29.4 × 40 / 3.65 = 322 W.
- General heat loss of the model room through the building envelope Q = QP + Qabout + Qwith = 716 watts.
Calculation using the above formulas gives a good approximation, provided that the material matches the declared thermal conductivity and there are no errors that may be made during construction. Also a problem may be the aging of materials and the structure of the house as a whole.
Typical wall and roof geometry
The linear parameters (length and height) of a structure when determining heat losses are usually taken to be internal rather than external. That is, when calculating heat transfer through the material, the contact area of warm, not cold air, is taken into account.
Considering the internal perimeter, it is necessary to take into account the thickness of the interior partitions. The easiest way to do this is according to the plan of the house, which is usually applied to paper with a large-scale grid.
Thus, for example, when the dimensions of the house are 8 × 10 meters and the wall thickness is 0.3 meters, the inner perimeter Pint = (9.4 + 7.4) × 2 = 33.6 m, and the outer Pout = (8 + 10) × 2 = 36 m.
The interfloor overlap usually has a thickness of 0.20 to 0.30 m. Therefore, the height of two floors from the floor of the first to the ceiling of the second from the outside will be equal to Hout = 2.7 + 0.2 + 2.7 = 5.6 m. If you add up only the finishing height, you get a lower value: Hint = 2.7 + 2.7 = 5.4 m. Interfloor overlapping, unlike walls, does not carry the function of insulation, therefore, for calculations it is necessary to take Hout.
For two-story houses with dimensions of about 200 m2 the difference between the area of the walls inside and outside is from 6 to 9%. Similarly, in terms of internal dimensions, the geometric parameters of the roof and floors are taken into account.
The calculation of the wall area for simple cottages in geometry is elementary, since the fragments consist of rectangular sections and pediments of the attic and attic rooms.
The fronts of the attics and attics in most cases have the shape of a triangle or a pentagon symmetrical vertically. Calculating their area is quite simple
When calculating heat loss through the roof, in most cases it is enough to apply formulas to find the areas of a triangle, rectangle and trapezoid.
The most popular forms of roofs of private houses. When measuring their parameters, it must be remembered that the internal dimensions are substituted in the calculations (without eaves)
The area of the laid roof cannot be taken when determining heat losses, since it also goes to overhangs that are not taken into account in the formula. In addition, often the material (for example, roofing or profiled galvanized sheet) is placed with a slight overlap.
Sometimes it seems that calculating the roof area is quite difficult.However, inside the house, the geometry of the insulated fencing of the upper floor can be much simpler
The rectangular geometry of the windows also does not cause problems in the calculations. If the double-glazed windows have a complex shape, then their area can not be calculated, but learned from the product passport.
Heat loss through the floor and foundation
Calculation of heat loss to the ground through the floor of the lower floor, as well as through the walls and floor of the basement, is considered according to the rules prescribed in Appendix “E” SP 50.13330.2012. The fact is that the rate of heat propagation in the earth is much lower than in the atmosphere, therefore, soils can also be conditionally attributed to insulation material.
But since they are characterized by freezing, the floor is divided into 4 zones. The width of the first three is 2 meters, and the remainder is referred to the fourth.
The heat loss zones of the floor and basement repeat the shape of the perimeter of the foundation. The main heat loss will go through zone No. 1
For each zone, determine the coefficient of resistance to heat transfer, which adds soil:
- zone 1: R1 = 2.1;
- zone 2: R2 = 4.3;
- zone 3: R3 = 8.6;
- zone 4: R4 = 14.2.
If the floors are insulated, then to determine the total coefficient of thermal resistance add up the indicators of insulation and soil.
Example. Suppose that a house with external dimensions of 10 × 8 m and a wall thickness of 0.3 meters has a basement with a depth of 2.7 meters. Its ceiling is located at ground level. It is necessary to calculate the heat loss to the soil at an internal air temperature of “+25 ° C” and an external temperature of “–15 ° C”.
Let the walls be made of FBS blocks 40 cm thick (λf = 1.69). Inside, they are lined with a board 4 cm thick (λd = 0.18). The basement floor is poured with expanded clay concrete, 12 cm thick (λto = 0.70). Then the coefficient of thermal resistance of the basement walls: Rwith = 0.4 / 1.69 + 0.04 / 0.18 = 0.46, and the floor RP = 0.12 / 0.70 = 0.17.
The internal dimensions of the house will be equal to 9.4 × 7.4 meters.
The scheme of dividing the basement into zones for the task. The calculation of areas with such simple geometry reduces to determining the sides of the rectangles and their multiplication
We calculate the areas and coefficients of resistance to heat transfer by zones:
- Zone 1 runs only along the wall. It has a perimeter of 33.6 m and a height of 2 m. Therefore S1 = 33.6 × 2 = 67.2. Rs1 = Rwith + R1 = 0.46 + 2.1 = 2.56.
- Zone 2 on the wall. It has a perimeter of 33.6 m and a height of 0.7 m. Therefore S2c = 33.6 × 0.7 = 23.52. Rz2s = Rwith + R2 = 0.46 + 4.3 = 4.76.
- Zone 2 on the floor. S2p = 9.4 × 7.4 – 6.8 × 4.8 = 36.92. Rz2p = RP + R2 = 0.17 + 4.3 = 4.47.
- Zone 3 is only on the floor. S3 = 6.8 × 4.8 – 2.8 × 0.8 = 30.4. Rh3 = RP + R3 = 0.17 + 8.6 = 8.77.
- Zone 4 is only on the floor. S4 = 2.8 × 0.8 = 2.24. Rs4 = RP + R4 = 0.17 + 14.2 = 14.37.
Heat loss of the basement Q = (S1 / Rs1 + S2c / Rz2s + S2p / Rz2p + S3 / Rh3 + S4 / Rs4) × dT = (26.25 + 4.94 + 8.26 + 3.47 + 0.16) × 40 = 1723 W.
Accounting for unheated premises
Often when calculating heat losses, a situation arises when the house has an unheated, but insulated room. In this case, energy transfer occurs in two stages. Consider this situation in the attic.
In a warm, but not heated attic, in a cold period, the temperature is set higher than on the street. This is due to the transfer of heat through the floor.
The main problem is that the area of overlap between the attic and the upper floor is different from the area of the roof and gables. In this case, it is necessary to use the condition of heat transfer balance Q1 = Q2.
It can also be written in the following way:
K1 × (T1 - T#) = K2 × (T# - T2),
Where:
- K1 = S1 / R1 + … + Sn / Rn for overlapping between the warm part of the house and the cold room;
- K2 = S1 / R1 + … + Sn / Rn for overlapping between a cold room and the street.
From the equality of heat transfer, we find the temperature that will be established in a cold room with known values in the house and on the street. T# = (K1 × T1 + K2 × T2) / (K1 + K2) After that, substitute the value in the formula and find the heat loss.
Example. Let the internal size of the house is 8 x 10 meters. The roof angle is 30 °. The air temperature in the rooms is “+25 ° С”, and outside “–15 ° С”.
The coefficient of thermal resistance of the ceiling is calculated as in the example given in the section for calculating heat losses through building envelopes: RP = 3.65. The overlap area is 80 m2, so K1 = 80 / 3.65 = 21.92.
Roof area S1 = (10 × 8) / cos(30) = 92.38. We consider the coefficient of thermal resistance, taking into account the thickness of the tree (crate and finish - 50 mm) and mineral wool (10 cm): R1 = 2.98.
Window area for pediment S2 = 1.5.For an ordinary two-chamber double-glazed window thermal resistance R2 = 0.4. The area of the pediment is calculated by the formula: S3 = 82 × tg(30) / 4 – S2 = 7.74. The coefficient of resistance to heat transfer is the same as that of the roof: R3 = 2.98.
Heat transfer through windows is a significant part of all energy losses. Therefore, in regions with cold winters, you should choose “warm” double-glazed windows
We calculate the coefficient for the roof (not forgetting that the number of pediments is two):
K2 = S1 / R1 + 2 × (S2 / R2 + S3 / R3) = 92.38 / 2.98 + 2 × (1.5 / 0.4 + 7.74 / 2.98) = 43.69.
We calculate the air temperature in the attic:
T# = (21.92 × 25 + 43.69 × (–15)) / (21.92 + 43.69) = –1.64 ° С.
We substitute the obtained value into any of the formulas for calculating heat losses (if they are balanced, they are equal) and we obtain the desired result:
Q1 = K1 × (T1 – T#) = 21.92 × (25 - (–1.64)) = 584 W.
Ventilation cooling
A ventilation system is installed to maintain a normal microclimate in the house. This leads to the influx of cold air into the room, which also must be taken into account when calculating heat loss.
The requirements for the volume of ventilation are spelled out in several regulatory documents. When designing an intra-house cottage system, first of all, it is necessary to take into account the requirements of §7 SNiP 41-01-2003 and §4 SanPiN 2.1.2.2645-10.
Since watt is the generally accepted unit for measuring heat loss, the heat capacity of air c (kJ / kg × ° C) must be reduced to the dimension “W × h / kg × ° C”. For air at sea level, you can take the value c = 0.28 W × h / kg × ° C.
Since the ventilation volume is measured in cubic meters per hour, it is also necessary to know the air density q (kg / m3) At normal atmospheric pressure and average humidity, this value can be taken q = 1.30 kg / m3.
Household ventilation unit with recuperator. The declared volume, which it misses, is given with a small error. Therefore, it does not make sense to accurately calculate the density and heat capacity of air in the area up to hundredths
The energy consumption for the compensation of heat losses due to ventilation can be calculated using the following formula:
Q = L × q × c × dT = 0.364 × L × dT,
Where:
- L - air consumption (m3 / h);
- dT - temperature difference between room and incoming air (° С).
If cold air enters the house directly, then:
dT = T1 - T2,
Where:
- T1 - indoor temperature;
- T2 - temperature outside.
But for large objects, a recuperator (heat exchanger) is usually integrated into the ventilation system. It allows you to significantly save energy, as the partial heating of the incoming air occurs due to the temperature of the outlet stream.
The effectiveness of such devices is measured in their efficiency k (%). In this case, the previous formula will take the form:
dT = (T1 - T2) × (1 - k / 100).
Gas flow calculation
Knowing the total heat loss, you can simply calculate the required flow rate of natural or liquefied gas for heating a house with an area of 200 m2.
The amount of energy released, in addition to the volume of fuel, is affected by its heat of combustion. For gas, this indicator depends on the humidity and chemical composition of the supplied mixture. Distinguish the highest (Hh) and lower (Hl) calorific value.
The lower calorific value of propane is less than that of butane. Therefore, in order to accurately determine the calorific value of liquefied gas, you need to know the percentage of these components in the mixture supplied to the boiler
To calculate the amount of fuel that is guaranteed to be sufficient for heating, the lower calorific value, which can be obtained from the gas supplier, is substituted into the formula. The standard unit of calorific value is “mJ / m3”Or“ mJ / kg ”. But since the units of measurement and power of the boilers and heat losses operate with watts, not joules, it is necessary to perform the conversion, given that 1 mJ = 278 W × h.
If the value of the lower calorific value of the mixture is unknown, then it is permissible to take the following averaged figures:
- for natural gas Hl = 9.3 kW × h / m3;
- for liquefied gas Hl = 12.6 kW × h / kg.
Another indicator necessary for calculations is the boiler efficiency K. Usually it is measured in percent. The final formula for gas flow over a period of time E (h) has the following form:
V = Q × E / (Hl × K / 100).
The period when centralized heating in houses is turned on is determined by the average daily air temperature.
If over the past five days it does not exceed “+ 8 ° С”, then according to the Decree of the Government of the Russian Federation No. 307 of 05/13/2006, heat supply to the house must be provided. For private homes with autonomous heating, these figures are also used in calculating fuel consumption.
The exact data on the number of days with a temperature not exceeding “+ 8 ° C” for the area where the cottage is built can be found in the local branch of the Hydrometeorological Center.
If the house is located close to a large settlement, then it is easier to use the table. 1. SNiP 23-01-99 (column No. 11). Multiplying this value by 24 (hours per day) we get the parameter E from the equation for calculating gas flow.
According to climatic data from table. 1 SNiP 23-01-99 calculations are carried out by construction organizations to determine the heat loss of buildings
If the volume of air inflow and the temperature inside the premises are constant (or with slight fluctuations), then the heat loss through the building envelope and due to the ventilation of the rooms will be directly proportional to the outdoor temperature.
Therefore per parameter T2 in the equations for calculating heat loss, you can take the value from column No. 12 of the table. SNiP 23-01-99.
Example for a 200 m cottage2
We calculate the gas consumption for a cottage near the city of Rostov-on-Don. Duration of heating period: E = 171 × 24 = 4104 h. Average street temperature T2 = - 0.6 ° C. Desired temperature in the house: T1 = 24 ° C.
Two-storey cottage with an unheated garage. The total area is about 200 m2. The walls are not additionally insulated, which is acceptable for the climate of the Rostov region
Step 1. We calculate the heat loss through the perimeter, excluding the garage.
To do this, select homogeneous sections:
- Window. In total there are 9 windows 1.6 × 1.8 m in size, one window 1.0 × 1.8 m in size and 2.5 round windows 0.38 m in size2 each one. Total window area: Swindow = 28.60 m2. According to the passport of products Rwindow = 0.55. Then Qwindow = 1279 watts
- Doors There are 2 insulated doors measuring 0.9 x 2.0 m. Their area: Sthe door = 3.6 m2. According to the product passport Rthe door = 1.45. Then Qthe door = 61 watts.
- Blank wall. Section “ABVGD”: 36.1 × 4.8 = 173.28 m2. Plot “YES”: 8.7 × 1.5 = 13.05 m2. Plot “DEJ”: 18.06 m2. The area of the roof gable: 8.7 × 5.4 / 2 = 23.49. Total blank wall area: Swall = 251.37 – Swindow – Sthe door = 219.17 m2. The walls are made of aerated concrete with a thickness of 40 cm and a hollow facing brick. Rwalls = 2.50 + 0.63 = 3.13. Then Qwalls = 1723 W.
Total heat loss through the perimeter:
Qperim = Qwindow + Qthe door + Qwalls = 3063 watts
Step 2 We calculate the heat loss through the roof.
Insulation is a continuous crate (35 mm), mineral wool (10 cm) and lining (15 mm). Rthe roof = 2.98. Roof area above the main body: 2 × 10 × 5.55 = 111 m2and above the boiler room: 2.7 × 4.47 = 12.07 m2. Total Sthe roof = 123.07 m2. Then Qthe roof = 1016 watts.
Step 3 Calculate heat loss through the floor.
The areas for the heated room and the garage must be calculated separately. The area can be determined exactly by mathematical formulas, or it can also be done using vector editors such as Corel Draw
Resistance to heat transfer is provided by the boards of the rough flooring and plywood under the laminate (5 cm in total), as well as basalt insulation (5 cm). Rgender = 1.72. Then the heat loss through the floor will be equal to:
Qfloor = (S1 / (Rfloor + 2.1) + S2 / (Rfloor + 4.3) + S3 / (Rfloor + 2.1)) × dT = 546 watts.
Step 4 We calculate the heat loss through a cold garage. Its floor is not insulated.
From a heated house, heat penetrates in two ways:
- Through the bearing wall. S1 = 28.71, R1 = 3.13.
- Through a brick wall with a boiler room. S2 = 11.31, R2 = 0.89.
We get K1 = S1 / R1 + S2 / R2 = 21.88.
From the garage, the heat goes out as follows:
- Through the window. S1 = 0.38, R1 = 0.55.
- Through the gate. S2 = 6.25, R2 = 1.05.
- Through the wall. S3 = 19.68, R3 = 3.13.
- Through the roof. S4 = 23.89, R4 = 2.98.
- Across the floor. Zone 1. S5 = 17.50, R5 = 2.1.
- Across the floor. Zone 2. S6 = 9.10, R6 = 4.3.
We get K2 = S1 / R1 + … + S6 / R6 = 31.40
We calculate the temperature in the garage, subject to the balance of heat transfer: T# = 9.2 ° C. Then the heat loss will be equal to: Qgarage = 324 watts.
Step 5 We calculate the heat loss due to ventilation.
Let the calculated ventilation volume for such a cottage with 6 people staying there be 440 m3/hour. A recuperator with an efficiency of 50% is installed in the system.Under these conditions, heat loss: Qvent = 1970 W.
Step. 6. We determine the total heat loss by adding all the local values: Q = 6919 watts
Step 7 We calculate the amount of gas needed to heat the model house in the winter with a boiler efficiency of 92%:
- Natural gas. V = 3319 m3.
- Liquefied gas. V = 2450 kg.
After calculations, you can analyze the financial costs of heating and the feasibility of investments aimed at reducing heat loss.
Thermal conductivity and heat transfer resistance of materials. Calculation rules for walls, roof and floor:
The most difficult part of the calculations to determine the volume of gas needed for heating is finding the heat loss of the heated object. Here, first of all, you need to carefully consider geometric calculations.
If the financial costs of heating seem excessive, then you should think about additional insulation of the house. Moreover, the calculations of heat loss show well the freezing structure.
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