Distance between two stations
Note that the the distance between $A$ and $D$ is at least $17$. On the other side the distance between $B$ and $D$ is at most $12$. This the distance between $A$ and $B$ is at least $5$. With similar reasoning we get that the length of each section is at least $5$.
So we get that the distance between $G$ and $K$ is at least $22$ (at least $17$ for three sections and at least $5$ for the final one). Thus the distance from $A$ to $G$ is at most $56-22=34$. On the other side there are $6$ sections between $A$ and $G$, so the distance is at least $34$ (we have two times three sections). Thus we conclude that the distance between $A$ and $G$ is $34$.
On the other side the distance between $B$ and $K$ is at least $51$, as it consists of nine sections. Thus the distance $AB$ is at most $56-51=5$. From this and the first paragraph we conclude that $AB=5$ and finally
$$BG = AG - AB = 34-5=29$$
Let $\{x_1,...,x_{10}\}$ represent the distances between each section, i.e., $x_1$ is the distance between $A$ and $B$.
Note that $x_1$ and $x_{10}$ are likely to be quite small, since they are on the edges, and only have to deal with the trip along three successive sections at least 17 km. As such, $x_3$ and $x_8$ are likely to be large in order to ensure the 17 property of $x_1,x_2,x_3$, and $x_8,x_9,x_{10}$. We also know by symmetry that $x_n=x_{11-n}$
Hence, after some guess and check, I came up with
$$\{x_1,...x_{10}\} = \{5, 5, 7, 5, 6, 6, 5, 7, 5, 5\}$$
So, $\overline{BG}=5+7+5+6+6=\textbf{29}$
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A B C D E F G H I J K
From the given information we can say that any single section can be taken as the difference of some $3$ successive sections and subset of $2$ successive sections. So, a single section should be atleast $5$ km long.
Also the section JK is the total line minus $3$ sets of three successive sections AD, DG, and GJ. These three successive sections should be at least length of $51$ km. The section JK can be at most $5$ km. By symmetry AB should also be exactly $5$ km. The lay out of the $3$ sets of successive sections so as to isolate the sections DE or GH, then the same argument as above can be used to conclude that each of them is exactly $5$ km. Since the $3$ sets of $2$ successive sections remaining, namely, BD, EG, and HJ they can sum up to at most $3\cdot12=36$ km and at the same time they must cover the remaining distance. So, $56-(4\cdot5)=36$. So, these three sets of two successive sections must be exactly $12$ km. So, the total length from B to G is exactly $12+5+12=29$ km