Table of Contents
- 1 What volume of 1.5 M HCl solution do you need to use to make 500 mL of 0.25 M HCl solution by dilution?
- 2 What volume in milliliters of a 1.20 M HCl solution must be dilute in order to prepare 1.00 L of 0.0150 M HCl?
- 3 What is the volume of 1.50 M HCl?
- 4 How much of the concentrated solution would you use to prepare 500.0 mL of a 1.20 M solution?
- 5 How do you find the density of HCl?
- 6 How do you make 1M of HCl?
- 7 How do you dilute 37\% HCl solution?
- 8 What is the concentration of 32\% of HCl in water?
What volume of 1.5 M HCl solution do you need to use to make 500 mL of 0.25 M HCl solution by dilution?
83.33 mL
So, 83.33 mL of 1.5 M HCl solution is needed to make 500 mL of 0.25 M HCl solution by dilution.
What volume in milliliters of a 1.20 M HCl solution must be dilute in order to prepare 1.00 L of 0.0150 M HCl?
12.5 mL of a 1.20 M HCl solution is needed to make 1.00 L of a 0.0150 M solution.
How do you make 1m HCl from 32 HCl?
To make 1 M just make a 1/10 dilution: 1 mL 32 \% HCl to 9 mL water.
What is the molarity of 32 percent HCl?
Dilutions to Make a 1 Molar Solution
Concentrated Reagents | Density | Molarity (M) |
---|---|---|
Hydrochloric acid 36\% | 1.18 | 11.65 |
Hydrochloric acid 32\% | 1.16 | 10.2 |
Hydrofluoric acid 40\% | 1.13 | 22.6 |
Nitric acid 70\% | 1.42 | 15.8 |
What is the volume of 1.50 M HCl?
Using the given data, we can see that (1.5M)(V1)=(0.25M)(500mL) . Solving for V1 gives us approximately 83 mL of 1.5 M HCl solution.
How much of the concentrated solution would you use to prepare 500.0 mL of a 1.20 M solution?
8. If you dilute 174 mL of a 1.6 M solution of LiCl to 1.0 L, determine the new concentration of the solution. 9. One liter of a solution is prepared by dissolving 125.6 g of NaF in it.
What is molecular weight of HCl?
36.458 g/mol
Hydrochloric acid/Molar mass
How many moles of HCl are there in 75.0 mL of 0.145 M HCl?
moles HCl= 0.015 mol HCl The moles of HCl in the solution is 0.015 mol HCl.
How do you find the density of HCl?
The specific gravity (density relative to the density of water) of hydrochloric acid solution is 1.18 g/mL. If 13.7 mL of hydrochloric acid solution is taken, then [13.7 mL x (1.18 g/mL) = 16.2 g is the mass of the hydrochloric acid solution.
How do you make 1M of HCl?
- 1M HCl: add 1mol/12M = 83 ml conc. HCl to 1L of water or 8.3ml to 100ml.
- 2M HCl: add 2mol/12M = 167 ml conc. HCl to 1L of water or 16.7ml to 100ml.
What is the density of 32\% HCl?
1.18 g/ml
IUPAC NAME | Hydrogen chloride、Chlorane |
---|---|
APPEARANCE | colorless or slightly yellow |
DENSITY | 1.18 g/ml |
MELTING POINT | -35 °C (238 K),32\% solution |
BOILING POINT | 108.6 °C (381.6 K),32\% solution |
What is the volume of HCl?
Concentrated hydrochloric acid has concentration of 12.19 mol/litre, The molar mass of HCl is 36.458 g/mol. 125 g is therefore (125/36.458) = 3.4286 moles. So the volume that would contain this number of moles is going to be (3.4286 / 12.19) = 0.28126 litres or 281.26 ml.
How do you dilute 37\% HCl solution?
After the solid is completely dissolved, dilute the solution to a final volume with deionized (distilled) water. we will need to dilute 8.32 mL of 37 \% HCl to a final volume with deionized (distilled) water. Transfer the prepared solution to a clean, dry storage bottle and label it.
What is the concentration of 32\% of HCl in water?
Concentrated HCl is about 37\% HCl by mass, and is about 12 M, so 32\% would be about 10 M. To make 1 M just make a 1/10 dilution: 1 mL 32 \% HCl to 9 mL water.
How do you calculate the molarity of industrial HCl solution?
In a liter of industrial HCl you have 371.2 grams HCl… 0.32 x 1160 = 371.2 grams of HCl in 1000 mL of the industrial solution. 371.2 / 36.46 = 10.18 moles/ 1000 mL That means that the solution is 10.18 Molar. Here’s another way to do it.
How can I make 10\% HCl from 10G of HCl?
Take 10 mL of HCl and mixed with 90 mL of Distilled Water. (Take Water first i.e. in 90 mL of water add 10 mL HCl) it will give you 10\% v/v HCl. Take 10 gm of HCl powder then add 100 mL water. It will give you 10\% w/v HCl. Actually final volume should be 100. (maybe around 99.8 mL water required).