Pool construction method for water supply of water tower
A construction method and technology for water supply pools, applied in water supply devices, water supply pool configuration, construction, etc., can solve the problem that the concrete compressive strength and impermeability of the pool are easily affected, the later maintenance cost of the pool is increased, and the maintenance and repair of the pool is troublesome and other issues, to achieve the effect of reducing maintenance cost and maintenance cost in the later period, enhancing the anti-ultraviolet performance and impermeability performance, and reducing the maintenance cost and maintenance cost
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Embodiment 1
[0071] A pool construction method for water tower water supply, comprising the following steps:
[0072] S1. Excavation of foundation pit, details are as follows:
[0073] Determine and mark the construction position of the pool according to the design drawings, and excavate the foundation pit for the construction of the water supply pool according to the marked position.
[0074] S2. Build a template, as follows:
[0075] Determine the specific construction location of the pool according to the design drawings, and build the pouring steel skeleton according to the actual construction location of the pool. After the steel skeleton is built, build the pouring formwork.
[0076] S3. Concrete pouring, details are as follows:
[0077] Concrete is poured into the pouring formwork. After the concrete pouring is completed, the concrete is covered with a plastic film for curing. The curing temperature is controlled at 35°C and the curing time is controlled for 35 days.
[0078] S4....
Embodiment 2
[0085] The difference with embodiment 1 is:
[0086] Concrete consists of the following components:
[0087] Portland cement 22.5kg; water 7.5kg; sand 50kg; stone 50kg; silane coupling agent 1kg; 1-(2-pyridylazo)-2-naphthol 3kg; 2,6-bis(2-pyridyl) -4(1H)-pyridone 0.5kg; zinc phthalocyanine 0.1kg.
[0088] Concrete is prepared as follows:
[0089] Add 22.5kg of Portland cement into a 150L stirring tank, stir at a speed of 250r / min at room temperature, add 7.5kg of water while stirring, after stirring evenly, raise the temperature to 75°C, and add silane while stirring Coupling agent 1kg, 1-(2-pyridylazo)-2-naphthol 3kg, 2,6-bis(2-pyridyl)-4(1H)-pyridone 0.5kg, phthalocyanine zinc 0.1kg, stir After uniformity, stir under natural conditions until the temperature in the stirring tank drops to room temperature, and finally add 50kg of sand and 50kg of stone while stirring, and mix well to obtain concrete.
Embodiment 3
[0091] The difference with embodiment 1 is:
[0092] Concrete consists of the following components:
[0093] Portland cement 25kg; water 5kg; sand 45kg; stone 55kg; silane coupling agent 2kg; 1-(2-pyridylazo)-2-naphthol 1kg; (1H)-pyridone 1kg; zinc phthalocyanine 0.2kg.
[0094] Concrete is prepared as follows:
[0095] Add 25kg of Portland cement into a 150L stirring tank, stir at a speed of 250r / min at room temperature, add 5kg of water while stirring, after stirring evenly, raise the temperature to 75°C, add silane coupling while stirring Agent 2kg, 1-(2-pyridylazo)-2-naphthol 1kg, 2,6-bis(2-pyridyl)-4(1H)-pyridone 1kg, phthalocyanine zinc 0.2kg, after stirring evenly, Stir under natural conditions until the temperature in the stirring tank drops to room temperature, and finally add 45kg of sand and 55kg of stone while stirring, and mix well to obtain concrete.
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